Block and three cords. In the figure below, a block B of mass M-19.1 kg hangs by a cord from a knot K of mass my, which hangs from a ceiling by means of two cords. The cords have negligible mass, and

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Answer 1

The block and three cords are shown in the figure below. A block B with a mass of 19.1 kg is suspended from a knot K with a mass of my by means of a cord, which in turn is suspended from a ceiling by two cords with negligible mass the initial and final energies and solving for the unknown mass, my, we obtain my = (1/3)m.

This system's energy changes when the block is lowered to the lowest position, so we can apply the principle of energy conservation to solve for the unknown mass, my.

Using the principle of energy conservation, we can equate the initial energy (when the block is lifted to a height h above the lowest position) to the final energy (when the block reaches the lowest position).

The initial energy is equal to mgh, where m is the mass of the block, g is the acceleration due to gravity, and h is the height of the block above the lowest position.

The final energy is equal to the sum of the kinetic energy of the block and the potential energy of the knot and the cords.The kinetic energy of the block is equal to (1/2)mv^2, where v is the velocity of the block when it reaches the lowest position.

The potential energy of the knot and the cords is equal to the product of the mass of the knot and the acceleration due to gravity, myg, and the distance that the knot and the cords travel when the block is lowered to the lowest position, which is equal to h.

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Related Questions

Suppose there is a solid uniform spherical planet of mass M = 1.024 × 1026 kg and radius R = 24,600 km, which is spinning with an initial angular velocity wi = 3.49 × 10-5 rad. Suppose a relatively

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a)  The gravitational force between the small object and the planet is approximately 6.67 × 1[tex]0^1^2[/tex] N.

b) The gravitational potential energy of the small object is approximately -6.67 ×[tex]10^1^0[/tex] J.

c) The gravitational potential energy of the small object at this position is approximately -1.33 × [tex]10^1^1[/tex]J.

d)The change in kinetic energy of the small object is approximately -6.67 × [tex]10^1^0[/tex]J.

e) The total mechanical energy of the small object at a distance of 5,000 km from the planet's center is approximately -1.33 × [tex]10^1^1[/tex] J.

a) To calculate the gravitational force between the small object and the planet, we can use Newton's law of universal gravitation:

F = G * (m * M) [tex]/ r^2[/tex]

where F is the gravitational force, G is the gravitational constant (approximately[tex]6.67430 × 10^-11 m^3/(kg * s^2)[/tex]), m is the mass of the small object, M is the mass of the planet, and r is the distance between their centers.

Plugging in the values, we have:

F = [tex](6.67430 × 10^-11) * (0.1 * 1.024 × 10^26) / (10,000,000)^2[/tex]

b) The gravitational potential energy (U) of the small object at this position can be calculated using the formula:

U = -G * (m * M) / r

Plugging in the values, we have:

U = -(6.67430 ×[tex]10^-11[/tex]) * (0.1 * 1.024 × 10^26) / (10,000,000)

c) When the small object reaches a distance of 5,000 km from the planet's center, the gravitational potential energy can be calculated using the same formula as in part (b):

U = -(6.67430 ×[tex]10^-^1^1[/tex]) * (0.1 * 1.024 × [tex]10^2^6[/tex]) / (5,000,000)

d) The change in kinetic energy (ΔK) of the small object can be calculated by subtracting the initial gravitational potential energy from the final gravitational potential energy:

ΔK = [tex]U_final - U_initial[/tex]

    = (-1.33 × [tex]10^1^1[/tex]) - (-6.67 × [tex]10^1^0[/tex])

    = -6.67 × [tex]10^1^0[/tex] J

e) The total mechanical energy (E) of the small object at a distance of 5,000 km from the planet's center is the sum of its kinetic energy (K) and gravitational potential energy (U):

E = K + U

  = 0 + (-1.33 × [tex]10^1^1[/tex])

  = -1.33 ×[tex]10^1^1[/tex]J

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The question probable may be:

A solid uniform spherical planet has a mass M = 1.024 × 10^26 kg and a radius R = 24,600 km. The planet is initially spinning with an angular velocity ωi = 3.49 × 10^-5 rad/s. Suppose a small object with mass m = 0.1 kg is placed at a distance r = 10,000 km from the center of the planet.

a) Calculate the gravitational force between the small object and the planet.

b) Determine the gravitational potential energy of the small object in this position.

c) If the small object is released from rest at this position, calculate its gravitational potential energy when it reaches a distance of 5,000 km from the planet's center.

d) Calculate the change in kinetic energy of the small object as it moves from its initial position to a distance of 5,000 km from the planet's center.

e) Determine the total mechanical energy of the small object at a distance of 5,000 km from the planet's center.

Stopping a Motorcycle The State of Illinois Cycle Rider Safety Program requires riders to be able to brake from 30 mph (44 ft/sec) to 0 in 45 ft. What constant deceleration does it take to do that? (Hint: See Exercise 53.) 314 56. Motion with Constant Acceleration The standard equation for the position s of a body moving with a constant acceleration a along a coordinate line is s="t2 + vt + so dollars per item. Find the cost function c(x) if c(0) = 400.

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Therefore, the cost function is:c(x) = 3x + 400

The formula for the position of a body moving with a constant acceleration along a coordinate line is

s = at^2/2 + vt + s0

where s0 is the initial position, v is the initial velocity, a is the acceleration, t is time and s is the position of the object. Therefore, if a motorcycle rider is required to brake from 30 mph to 0 in 45 ft, the deceleration can be calculated by using the following steps:

Step 1: Convert mph to ft/s as follows:1 mph = 1.47 ft/s

Therefore, 30 mph = 44.1 ft/s

Step 2: Use the formula for motion with constant acceleration as follows:

s - s0 = at^2/2 + vt

where s0 = 0 since the motorcycle is coming to a stop, v = 44.1 ft/s, and s = 45 ft.

Step 3: Solve for a by rearranging the equation as follows:at^2/2 = s - vt

Therefore,

a = 2(s - vt)/t^2 = 2(45 - 44.1(1))/1^2 = 18 ft/s^2

Therefore, the constant deceleration required to stop the motorcycle is 18 ft/s^2.

Cost function c(x) if c(0) = 400

The cost function c(x) is the function that gives the cost of producing x items.

If it costs $3 to produce each item and there is a fixed cost of $400, the cost function c(x) can be written as follows:

c(x) = 3x + 400

If c(0) = 400, then the fixed cost is $400.

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the magnitude of the electric field at a point p for a certain electromagnetic wave is 570 n/c. what is the magnitude of the magnetic field for that wave at p? group of answer choices

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The magnitude of the magnetic field for that wave at point p is 1.9 × 10-6 T.

The given question is related to the electromagnetic wave. The magnitude of the electric field at a point p for a certain electromagnetic wave is 570 N/C.

We need to determine the magnitude of the magnetic field for that wave at p.

So, we know that an electromagnetic wave consists of an electric field and a magnetic field perpendicular to each other.

We can use the formula to find the relation between the electric and magnetic fields for an electromagnetic wave.c = E/B Where,c is the speed of light (3 x 108 m/s)E is the electric field intensityB is the magnetic field intensity

Using the above equation, we can find the magnetic field for that wave at point P.

Magnitude of the electric field, E = 570 N/CMagnitude of the speed of light, c = 3 x 108 m/s

Putting values in the above formula;570 = B x 3 x 108B = 570/3 x 108B = 1.9 × 10-6 T

Therefore, the magnitude of the magnetic field for that wave at point p is 1.9 × 10-6 T.

Thus, the magnitude of the magnetic field for that wave at point p is 1.9 × 10-6 T.

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1.The concept of confidence intervals reinforces the fact
that:
A: Sample estimates are not reliable estimates
B: When the sample size is large,population is assumed to be
normally distributed
C: non

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Confidence intervals reinforce the fact that statistical inference is uncertain. When the sample size is large, population is assumed to be normally distributed. Therefore, option (B) is correct.

A confidence interval (CI) is a range of values that is likely to contain a population parameter with a specified degree of confidence. It is constructed from a sample statistic and is used to estimate the value of an unknown population parameter.

For example, a 95 percent confidence interval is a range of values within which we are 95 percent confident that the population parameter lies. Confidence intervals reinforce the fact that statistical inference is uncertain because we are never entirely certain that the population parameter is in the interval.

A larger sample size results in a more precise estimate of the population parameter and a narrower confidence interval. In general, the larger the sample size, the more precise the estimate, and the narrower the confidence interval.

Conversely, a smaller sample size yields a less precise estimate and a wider confidence interval. When the sample size is large, the distribution of sample means will approach normality, regardless of the shape of the population distribution.

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w
Two point charges, +3 C and -6 C, are separated by 20 cm. They are NOT free to move. K 9X10^9. a) What is the magnitude of the electrostatic (Coulomb) force between the charges? b) What is the electri

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a) The magnitude of the electrostatic (Coulomb) force between the +3 C and -6 C charges is 2.7 × 10⁹ N.

b) The electric field at a point due to the +3 C charge is 1.35 × 10⁹ N/C, and the electric field due to the -6 C charge is -2.7 × 10⁹ N/C.

a) To calculate the magnitude of the electrostatic force between two point charges, we can use Coulomb's law: F = k * |q₁| * |q₂| / r²,

where F is the force, k is Coulomb's constant (9 × 10⁹ N m²/C²), q₁ and q₂ are the charges, and r is the separation between the charges.

Substituting the given values into the equation, we have:

F = (9 × 10⁹ N m²/C²) * |3 C| * |-6 C| / (0.2 m)²

  = (9 × 10⁹ N m²/C²) * 3 * 6 / (0.04 m²)

  = 2.7 × 10⁹ N.

Therefore, the magnitude of the electrostatic force between the +3 C and -6 C charges is 2.7 × 10⁹ N.

b) The electric field at a point due to a point charge is given by:

E = k * q / r²,

where E is the electric field, k is Coulomb's constant, q is the charge, and r is the distance from the charge.

For the +3 C charge:

E₁ = (9 × 10⁹ N m²/C²) * (3 C) / (0.2 m)²

   = 1.35 × 10⁹ N/C.

For the -6 C charge:

E₂ = (9 × 10⁹ N m²/C²) * (-6 C) / (0.2 m)²

   = -2.7 × 10⁹ N/C.

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determine the energy stored per unit length in the internal magnetic field of an infinitely long, straight wire of radius a, carrying uniform current i.

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The energy stored per unit length in the internal magnetic field of an infinitely long, straight wire of radius a, carrying uniform current i is μ₀ I² / (2πa).

An infinitely long wire with a radius of 'a' carrying uniform current 'i' creates an internal magnetic field. The energy stored per unit length in the internal magnetic field of an infinitely long, straight wire of radius a carrying uniform current i can be determined as follows:

We know that the magnetic field due to an infinitely long straight wire can be determined as follows: \[\mu _{0}I/2\pi r\]

Where,

μ₀ = Permeability of free space

I = Current

r = Distance from the wire

The formula for the energy stored in the internal magnetic field of a long wire carrying current can be given as:

E = μ0 I² ln(b/a) / (2π)

Here, b = radius of the outside boundary of the wire. Since the wire is infinitely long, b is not really an important value because no matter how big it gets, the logarithm's value remains unaffected, which means the magnetic energy per unit length is not affected. Hence, b can be taken as infinity to get rid of the logarithm and simplify the calculation.

The magnetic energy per unit length can then be determined as:

E/L = μ₀ I² / (2πa)

Therefore, the energy stored per unit length in the internal magnetic field of an infinitely long, straight wire of radius a, carrying uniform current i is μ0 I² / (2πa).

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a 2 kilogram cart has a velocity of 4 meters per second to the right. it collides with a 5 kilogram cart moving to the left at 1 meter per second. after the collision, the two carts stick together. can the magnitude and the direction of the velocity of the two carts after the collision be determined from the given information

Answers

Yes, the magnitude and direction of the velocity of the two carts after the collision can be determined using the conservation of momentum principle.

The solution to the given problem can be obtained through the application of the law of conservation of momentum which is given as;M1V1i + M2V2i = (M1 + M2)Vf where:M1 is the mass of cart 1V1i is the initial velocity of cart 1M2 is the mass of cart 2V2i is the initial velocity of cart 2Vf is the final velocity of the carts after collision.Since the two carts move in opposite directions before the collision, the direction will be to the right since it has a higher velocity of 4 m/s.To find the final velocity of the carts, substitute the given values into the conservation of momentum principle.M1V1i + M2V2i = (M1 + M2)Vf (2 kg) (4 m/s) + (5 kg)(-1 m/s) = (2 kg + 5 kg) VfVf = (8 kg m/s) / (7 kg) = 1.14 m/sThe final velocity of the two carts is 1.14 m/s to the right. This means that the direction of motion is to the right and the magnitude is 1.14 m/s.

To find the direction of motion of the two carts after the collision, we need to analyze the situation before and after the collision. Before the collision, the 2-kilogram cart is moving to the right with a velocity of 4 meters per second, while the 5-kilogram cart is moving to the left with a velocity of 1 meter per second. The two carts collide, and they stick together. After the collision, the two carts move as a single object. The law of conservation of momentum states that the total momentum of an isolated system remains constant if no external forces act on it. In this case, the two carts are the system, and there are no external forces acting on them. Therefore, the total momentum of the two carts before the collision is equal to the total momentum of the two carts after the collision. We can write this as:M1V1i + M2V2i = (M1 + M2)Vfwhere M1 is the mass of cart 1, V1i is the initial velocity of cart 1, M2 is the mass of cart 2, V2i is the initial velocity of cart 2, and Vf is the final velocity of the two carts after the collision.Substituting the values we have into the equation, we get:(2 kg)(4 m/s) + (5 kg)(-1 m/s) = (2 kg + 5 kg)VfSimplifying this equation, we get:8 kg m/s - 5 kg m/s = 7 kg Vf3 kg m/s = 7 kg VfVf = (3 kg m/s)/(7 kg) = 0.43 m/sSince the velocity of the two carts is to the right, we can ignore the negative sign. Therefore, the velocity of the two carts after the collision is 0.43 m/s to the right.

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Use conservation of energy to find the boxes' speed when box B has fallen a distance of 0.50 m. Assume a frictionless upper surface.
Boxes A and B in the figure have masses of 11.5 kg and 2.5 kg, respectively. The two boxes are released from rest.

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The speed of the boxes when box B has fallen a distance of 0.50 m is 1.24 m/s.

The potential energy is initially possessed by box B is converted to kinetic energy when it has fallen down to 0.50 m. Therefore, the kinetic energy of the system at this point is equal to the potential energy of box B when it is at rest, and it can be calculated using the formula of potential energy given by mgh, where m is the mass of the object, g is the acceleration due to gravity, and h is the height from the reference point. Here, the reference point is the height of the box B when it is at rest. The potential energy of the system is given by:

Ep = mgh = 2.5 kg × 9.8 m/s2 × 0.50 m = 12.25 J

According to the principle of conservation of energy, the total energy of a system is conserved. This means that the sum of kinetic and potential energy is constant and is equal to the initial energy of the system. At the beginning, the system has only potential energy, which is given by:

Ei = Ep = 11.5 kg × 9.8 m/s2 × 1.00 m = 112.7 J

When box B has fallen a distance of 0.50 m, the potential energy of the system is converted into kinetic energy, which is given by:

Ek = Ep = 12.25 J

The kinetic energy of the system can also be calculated using the formula of kinetic energy given by 1/2 mv2, where v is the velocity of the object. Therefore, we have:

Ek = 1/2 mv2

v = sqrt(2Ek/m)

v = sqrt(2 × 12.25 J / 11.5 kg)

v = 1.24 m/s

Therefore, the speed of the boxes when box B has fallen a distance of 0.50 m is 1.24 m/s.

The given problem involves the use of the principle of conservation of energy to find the speed of the boxes when box B has fallen a distance of 0.50 m. The principle of conservation of energy states that the total energy of a system is conserved. This means that the sum of kinetic and potential energy is constant and is equal to the initial energy of the system. In this problem, the initial energy of the system is the potential energy of the boxes when they are at rest, which is converted into kinetic energy when box B has fallen a distance of 0.50 m. Therefore, we can use the principle of conservation of energy to find the speed of the boxes at this point.

The speed of the boxes when box B has fallen a distance of 0.50 m is 1.24 m/s.

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The cyclist travels to point A, pedaling until he reaches speed v_A = 8 m/s. He then coasts freely up the curved surface. Determine the normal force he exerts on the surface when he reaches point B. The total mass of the bike and man is M = 75 kg. Neglect friction, the mass of the wheels, and the size of the bicycle

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Therefore, the normal force exerted by the cyclist at point B is 735.75 N when friction is neglected.

When the cyclist reaches point A, he has a kinetic energy of `1/2*M*V^2`

The velocity at point A is `v_A = 8 m/s`.

The total mass of the bike and the man is `M = 75 kg`

The kinetic energy of the cyclist when he reaches point A is `1/2*M*v_A^2 = 2400 J`

When the cyclist coasts freely, his velocity decreases as the potential energy stored in the gravitational field of the earth increases. The sum of kinetic and potential energy at any point on the curve is equal to the total energy at point A, where the kinetic energy is maximum, and the potential energy is zero.

Therefore, when the cyclist reaches point B, his kinetic energy is zero, and his potential energy is maximum.

Hence, the normal force the cyclist exerts on the surface when he reaches point B is equal to the gravitational force acting on the cyclist.

We can calculate the gravitational force using `F = M*g`, where `g` is the acceleration due to gravity.

The gravitational force on the cyclist is given by:

F = M*g

= 75*9.81

= 735.75 N

Thus, the normal force exerted by the cyclist at point B is 735.75 N when friction is neglected.

The normal force the cyclist exerts on the surface when he reaches point B is equal to the gravitational force acting on the cyclist, which is given by

F = M*g

= 75*9.81

= 735.75 N.

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The impact of our actions on our attitudes is best illustrated by the:
A) bystander effect.
B) fundamental attribution error.
C) foot-in-the-door phenomenon.
D) mere exposure effect.
E) frustration-aggression principle.

Answers

The impact of our actions on our attitudes is best illustrated by the foot-in-the-door phenomenon. Therefore, option C is correct.

The foot-in-the-door phenomenon refers to the tendency for people to be more likely to comply with a large request after they have first agreed to a smaller, initial request.

Once individuals take a small action or make a small commitment, they tend to align their attitudes with their actions to maintain consistency. This phenomenon demonstrates how our behavior can influence and shape our attitudes over time.

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if total pressure is 750 mmhg and helium is collected over water at 25c what is the pressure of helium

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When helium is collected over water at 25°C and the total pressure is 750 mmHg, the pressure of helium can be calculated using Dalton's law of partial pressure.

According to the law, the total pressure of a mixture of gases is equal to the sum of the partial pressures of the individual gases. Here, the gas mixture consists of helium and water vapor. Water vapor is a gas, so it exerts a partial pressure that contributes to the total pressure.

To find the pressure of helium, the partial pressure of water vapor must first be determined. This can be done using the vapor pressure of water at 25°C, which is 23.8 mmHg. The partial pressure of water vapor in the gas mixture is equal to the vapor pressure of water at the given temperature minus the pressure of the gas mixture: Partial pressure of water vapor = vapor pressure of water - total pressure of gas mixture Partial pressure of water vapor = 23.8 mmHg - 750 mmHg Partial pressure of water vapor = -726.2 mmHg

The negative result indicates that the vapor pressure of water is less than the total pressure of the gas mixture, which makes sense because the gas mixture is not pure water vapor, it also contains helium. Next, the partial pressure of helium can be found by subtracting the partial pressure of water vapor from the total pressure of the gas mixture:

Partial pressure of helium = total pressure of gas mixture - partial pressure of water vapor Partial pressure of helium = 750 mmHg - (-726.2 mmHg)Partial pressure of helium = 1476.2 mmHgTherefore, the pressure of helium collected over water at 25°C is approximately 1476.2 mmHg.

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when a coin is placed 11.1 cm11.1 cm away from the center of a concave mirror, its image is located 50.9 cm50.9 cm behind the mirror. what is the focal length of the mirror?

Answers

The focal length of the mirror is -11.09 cm.

When a coin is placed 11.1 cm away from the center of a concave mirror, its image is located 50.9 cm behind the mirror. The question asks us to determine the focal length of the mirror. To solve this problem, we can use the mirror formula.

Mirror formula: 1/f = 1/u + 1/v Where,f is the focal length,u is the distance between the object and the mirror,v is the distance between the image and the mirror.

Given that the object distance is u = −11.1 cm (negative sign indicates that the object is on the opposite side of the mirror), and the image distance is v = −50.9 cm (negative sign indicates that the image is formed behind the mirror).

Now, substituting the given values in the mirror formula, we get,1/f = 1/u + 1/v1/f = 1/-11.1 + 1/-50.91/f = -0.0901f = -11.09 cmThe focal length of the concave mirror is −11.09 cm.

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the figure shows an r-l circuit with a 0.21-h inductor and a 54.8-ω resistor but no other source of emf. if the current is 5.26 a at t = 0, find the current at t = 7.3 ms.

Answers

To find the current at t = 7.3 ms in the given R-L circuit, we can use the formula for the current in an inductor: I(t) = I₀ * e^(-t/τ)

where I(t) is the current at time t, I₀ is the initial current, t is the time, and τ is the time constant given by τ = L/R, where L is the inductance and R is the resistance. Given:

Inductance (L) = 0.21 H

Resistance (R) = 54.8 Ω

Initial current (I₀) = 5.26 A

Time (t) = 7.3 ms = 7.3 × 10^(-3) s

First, let's calculate the time constant τ: τ = L / R = 0.21 H / 54.8 Ω ≈ 0.00383 s. Now, we can substitute the values into the formula to find the current at t = 7.3 ms: I(t) = I₀ * e^(-t/τ)

I(7.3 × 10^(-3) s) = 5.26 A * e^(-7.3 × 10^(-3) s / 0.00383 s)

Calculating this expression, we find: I(7.3 × 10^(-3) s) ≈ 5.26 A * e^(-1.905) ≈ 5.26 A * 0.1494 ≈ 0.784 A. Therefore, the current at t = 7.3 ms in the R-L circuit is approximately 0.784 A.

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Use work and energy to find an expression for the speed of the block in the following figure just before it hits the floor. (Figure 1) v Part A Find an expression for the speed of the block if the coefficient of kinetic friction for the block on the table is Express your answer in terms of the variables M, m, h, uk, and free fall acceleration g. IVALO ? U= Submit Request Answer Part B Find an expression for the speed of the block if the table is frictionless. Express your answer in terms of the variables M, m, h, and free fall acceleration

Answers

To find the speed of the block just before it hits the floor, we can use the conservation of energy principle. The initial energy of the system is the gravitational potential energy of the block, which is mgh. The final energy of the system is the kinetic energy of the block, which is 1/2 mv^2. Since there is no friction or other non-conservative forces, the initial and final energies are equal. Therefore, we have:

mgh = 1/2 mv^2

Solving for v, we get:

v = sqrt(2gh)

This is the expression for the speed of the block just before it hits the floor.

Part A

If there is friction between the block and the table, then some of the initial energy is lost as heat due to friction. The work done by friction is equal to the force of friction times the distance traveled by the block on the table, which is L. The force of friction is equal to the coefficient of kinetic friction times the normal force, which is Mg. Therefore, we have:

W_f = u_k Mg L

The final energy of the system is now reduced by this amount. Therefore, we have:

mgh - u_k Mg L = 1/2 mv^2

Solving for v, we get:

v = sqrt(2gh - 2u_k g L)

This is the expression for the speed of the block if there is friction on the table.

Part B

If the table is frictionless, then there is no work done by friction and the initial and final energies are equal as in the first case. Therefore, we have:

v = sqrt(2gh)

This is the same expression as before.

About Energy

Energy or power is a physical property of an object, transferable through fundamental interactions, which can be changed in form but cannot be created or destroyed.

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the expression for the speed of the block becomes:

v = √(2gh)

The coefficient of kinetic friction (μk) to zero, the expression for the speed of the block becomes v = √(2gh).

To find the expression for the speed of the block in both scenarios, we can use the principle of conservation of mechanical energy.

Part A: Block on a table with kinetic friction (coefficient of kinetic friction is μk)

In this case, the work done by friction will be negative, as it opposes the motion. The initial potential energy of the block at height h is converted into the final kinetic energy just before it hits the floor.

The initial potential energy of the block is given by:

[tex]PE_{\text{initial}} = mgh[/tex]

The final kinetic energy of the block just before hitting the floor is given by: [tex]KE_{\text{final}} = \frac{1}{2}mv^2[/tex]

The work done by friction is given by:

[tex]W_{\text{friction}} = -\mu_kNd[/tex]

where N is the normal force and d is the distance traveled by the block.

The normal force can be calculated as:

N = Mg

where M is the mass of the table and g is the acceleration due to gravity.

Since the block travels a distance of h, we have:

d = h

Now, applying the principle of conservation of mechanical energy:

[tex]PE_{\text{initial}} - W_{\text{friction}} = KE_{\text{final}}[/tex]

Substituting the values and rearranging the equation, we get:

[tex]mgh - (-\mu_kMgh) = \frac{1}{2}mv^2[/tex]

Simplifying further, we have:

[tex]gh(m + \mu_kM) = \frac{1}{2}mv^2[/tex]

Dividing both sides by m, we get:

[tex]gh + \mu_kgh\left(\frac{M}{m}\right) = \frac{1}{2}v^2[/tex]

Finally, solving for v, we have the expression for the speed of the block:

v = √[2gh(1 + μk(M/m))]

Part B: Block on a frictionless table

In this case, there is no work done by friction. The initial potential energy is again converted into the final kinetic energy just before it hits the floor.

Following the same steps as above, but setting the coefficient of kinetic friction (μk) to zero, the expression for the speed of the block becomes:

v = √(2gh)

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an astronaut attempts to use a pendulum to measure the gravitational acceleration on a newly discovered planet. The pendulum consists of a 1.5 kg mass at the end of a 50 cm string. The astronaut finds that it takes the pendulum 1.8 seconds to complete one oscillation. Calculate g on this unknown planet.

Answers

Gravitational acceleration on a newly discovered planet is calculated to be 9.65 m/s2. To do that, we can use the relationship between gravitational acceleration and mass to determine the gravitational force acting on the mass in this new location.

Gravitational acceleration, g is related to the period of a simple pendulum by the equationT = 2π √(L/g)where T is the period of oscillation, L is the length of the string and g is gravitational acceleration.First of all, we must find the length of the pendulum's string:50cm = 0.5mNow, we can use the equation above to find g:1.8 = 2π √(0.5/g)1.8/2π = √(0.5/g)(1.8/2π)2 = 0.5/g3.24/0.5 = g6.48 = g.We know that the mass of the pendulum is 1.5 kg and the length of the pendulum string is 50 cm. Using this, we can determine the force of gravity acting on the mass:mg = F1 = (1.5 kg)(9.8 m/s2) = 14.7 N Now, we can determine the gravitational acceleration on this newly discovered planet:g2 = F2/m = (14.7 N)/(1.5 kg) = 9.8 m/s2Therefore, the gravitational acceleration on this newly discovered planet is calculated to be 9.65 m/s2 (rounded to two significant figures).

Gravitational acceleration, g is related to the period of a simple pendulum by the equation T = 2π √(L/g)where T is the period of oscillation, L is the length of the string and g is gravitational acceleration.1.8 = 2π √(0.5/g)1.8/2π = √(0.5/g)(1.8/2π)2 = 0.5/g3.24/0.5 = g6.48 = g. This value represents gravitational acceleration in m/s2. However, we need to determine the gravitational acceleration on this newly discovered planet. Since gravitational force is directly proportional to mass and acceleration is constant, the gravitational acceleration on this planet will be:g2/g1 = F2/F1, where g1 = 9.8 m/s2 is the gravitational acceleration on Earth, and F1 is the force of gravity acting on the mass of the pendulum on Earth.mg = F1 = (1.5 kg)(9.8 m/s2) = 14.7 NNow, we can determine the gravitational acceleration on this newly discovered planet:g2 = F2/m = (14.7 N)/(1.5 kg) = 9.8 m/s2Therefore, the gravitational acceleration on this newly discovered planet is calculated to be 9.65 m/s2 (rounded to two significant figures).

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An astronaut exploring the moon of another planet uses a simple
pendulum to estimate gravity on that moon. The pendulum has a
length of 1 mm and does 100 complete oscillations in 194s .
Calculate the

Answers

Using a pendulum with a length of 1 mm and completing 100 oscillations in 194 seconds, the estimated acceleration due to gravity on the moon's surface is approximately 1.633 m/s².

To estimate the acceleration due to gravity on the moon's surface using a simple pendulum, we can use the formula:

[tex]\( g = \frac{4\pi^2L}{T^2} \)[/tex]

Where:

g is the acceleration due to gravity,

L is the length of the pendulum, and

T is the time period for one oscillation.

Given that the length of the pendulum is 1 mm (0.001 m) and it completes 100 full oscillations in 194 seconds, we can calculate the time period for one oscillation by dividing the total time by the number of oscillations:

[tex]\( T = \frac{194}{100} = 1.94 \) s[/tex]

Plugging the values into the formula, we get:

[tex]\( g = \frac{4\pi^2(0.001)}{(1.94)^2} \)[/tex]

Calculating the expression, we find:

[tex]\( g \approx 1.633 \) m/s^2[/tex]

Therefore, the estimated acceleration due to gravity on the moon's surface is approximately 1.633 m/s².

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Complete question:

An astronaut exploring the moon of another planet uses a simple pendulum to estimate gravity on that moon. The pendulum has a length of 1 mm and completes 100 full oscillations in 194 seconds. Calculate the acceleration due to gravity on the moon's surface.

what is the power of the eye when viewing an object 57.0 cm away? assume the lens-to-retina distance is 2.00 cm , and express the answer in diopters.

Answers

The power of the eye when viewing an object 57.0 cm away is approximately 40 diopters.

The power of the eye when viewing an object 57.0 cm away can be calculated using the lens formula and then expressing the answer in diopters. The lens formula is given as1/f = 1/v - 1/uwhere f is the focal length of the eye lens, u is the distance of the object from the eye, and v is the distance of the image from the eye lens.

The power of the eye is given as P = 1/f. The distance of the image from the retina is given as v' = v - u, where u is the lens-to-retina distance. Hence, we can rewrite the lens formula as:1/f = 1/(u + v') - 1/u = (v' - u)/(u * v')Substituting u = 2.00 cm and v = 57.0 cm, we have:v' = v - u = 55.0 cm1/f = (v' - u)/(u * v') = (55.0 cm)/(2.00 cm * 55.0 cm) = 0.025 P.

The power of the eye is thus P = 1/f = 40 diopters (approximate). Therefore, the power of the eye when viewing an object 57.0 cm away is approximately 40 diopters.

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a car which is traveling at a velocity of 9.6 m/s undergoes an acceleration of 4.2 m/s2 over a distance of 450 m. how fast is it going after that acceleration?

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The car is going at 24.6 m/s after undergoing an acceleration of 4.2 m/s2 over a distance of 450 m.

The velocity of the car initially was 9.6 m/s and the distance covered by the car is 450 m. The acceleration of the car is 4.2 m/s2. We need to determine the velocity of the car after undergoing an acceleration of 4.2 m/s2. We can use the kinematic formula to determine the final velocity of the car. v2 = u2 + 2aswherev = final velocityu = initial velocitya = acceleration of the objectss = distance covered by the caru = 9.6 m/sa = 4.2 m/s2s = 450 mLet's plug in the values and solve for the final velocity of the car. We have:v2 = u2 + 2asv2 = (9.6)2 + 2(4.2)(450)v2 = 92.16 + 3780v2 = 3872.16Taking the square root of 3872.16, we get:v = 62.22 m/s. Therefore, the car is going at 24.6 m/s after undergoing an acceleration of 4.2 m/s2 over a distance of 450 m.

Given that the velocity of the car initially was 9.6 m/s, the distance covered by the car is 450 m, and the acceleration of the car is 4.2 m/s2. We need to determine the velocity of the car after undergoing an acceleration of 4.2 m/s2.The kinematic equation we use is:v2 = u2 + 2asaWherev = final velocityu = initial velocitya = acceleration of the objectss = distance covered by the carWe have:v2 = u2 + 2asv2 = (9.6)2 + 2(4.2)(450)v2 = 92.16 + 3780v2 = 3872.16Taking the square root of 3872.16, we get:v = 62.22 m/sTherefore, the car is going at 24.6 m/s after undergoing an acceleration of 4.2 m/s2 over a distance of 450 m.

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Co What's the temperature? The temperature in a certain location was recorded each day for two months. The mean temperature was 60.6°F with a standard deviation 5.7°F. What can you determine about t

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The mean temperature in a certain location was recorded as 60.6°F, with a standard deviation of 5.7°F, which can be used to calculate the temperature range.

The mean and standard deviation are used in statistics to calculate the temperature range. The mean temperature is the arithmetic mean of a given set of temperatures, which in this scenario is 60.6°F. The standard deviation is a statistical measure of variability, or the degree to which temperature values deviate from the mean value. In this case, the standard deviation is 5.7°F.By applying the formula to the data given, we can calculate the temperature range. The temperature range is calculated by multiplying the standard deviation by two and adding or subtracting the result from the mean temperature. The result is the upper and lower boundaries of the temperature range. Hence, the temperature range would be 49.2°F to 72°F.

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the uniform l-shaped bar pivots freely at point p of the slider, which moves along the horizontal rod. determine the steady-state value of the angle θ if (a) a = 0 and (b) a = 0.31 g

Answers

The steady-state value of the angle θ will be 30.66° when a = 0.31g.

Given Information The uniform L-shaped bar pivots freely at point P of the slider, which moves along the horizontal rod. Determine the steady-state value of the angle θ if (a) a = 0 and (b) a = 0.31g.

Explanation(a) When a = 0When a = 0, the steady-state value of angle θ will be zero.S

teady state can be defined as when the system reaches a constant, it is said to be in the steady-state.

Explanation(b) When a = 0.31gWhen a = 0.31gThe formula for steady-state angle is,θ=gsinθ/L

where,g = acceleration due to gravity = 9.8 m/s²θ = angle

L = Length of L-shaped rod = 2 metersa = 0.31 g = 0.31 × 9.8 = 3.038 m/s²

Now, substitute all the values in the above formula and get the value of θ.θ = (3.038 × sin θ)/2We know that θ ≠ 0So,θ = (3.038/2) × tan θ

Applying Newton-Raphson Method with initial guess = 0.1θ1= θ0 - f (θ0)/f'(θ0) f(θ) = (3.038/2) × tan θ - θθ2= θ1 - f (θ1)/f'(θ1)θ3= θ2 - f (θ2)/f'(θ2)

After several iterations, we get the final value of θ as,θ = 0.5356 radian ≈ 30.66°

Thus, the steady-state value of the angle θ will be 30.66° when a = 0.31g.

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The sound from a single source can reach point O by two different paths.One path is 20.0m long and the second path is 21.0m long.The sound destructively interferes at point O. What is the minimum frequency of the source if the speed of sound is 340m/s?
A. 340 Hz
B. 6800 Hz
C. 520 Hz
D. 170 Hz

Answers

The minimum frequency of the source if the sound destructively interferes at point O is 170 Hz. Therefore, option D is the correct answer.

When two sound waves of the same frequency encounter each other, they either amplify or cancel each other out based on the phase difference between them. The principle of superposition applies to waves; when two waves of the same frequency meet at a point, the displacement of the medium at that point is the sum of their individual displacements. When the displacements of the waves have the same magnitude but opposite directions, destructive interference occurs. For destructive interference to occur, the phase difference between the two waves must be 180°.

Destructive interference of two waves with equal amplitudes occurs when the path difference between the two waves is equal to an odd integer number of half-wavelengths (λ/2) of the waves. The shortest distance between two points is the straight line connecting them, so the difference in path length between the two waves can be calculated using the Pythagorean theorem. Using the values provided in the question:

Difference in Path Length = 21 m - 20 m = 1 m

For destructive interference, the difference in path length should be an odd integer multiple of half-wavelengths (λ/2) of the sound wave. The frequency of the sound wave can be calculated using the speed of sound and the wavelength of the wave: f = v/λ

Given:v = 340 m/s

λ/2 = 1 m ⇒ λ = 2 m

So, f = v/λ= 340 m/s / 2 m = 170 Hz

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an electron is to be accelerated from a velocity of 3.50×10^6 m/s to a velocity of 7.00×106 m/s . through what potential difference must the electron pass to accomplish this? (V1-V2 = ? v)
(b) Through what potential difference must the electron pass if it is to be slowed from 7.00 x 10^6 m/s to a halt?

Answers

(a) The potential difference (V1 - V2) through which the electron must pass to accelerate from a velocity of 3.50×10^6 m/s to a velocity of 7.00×10^6 m/s is 1.40 × 10^6 V.

The change in kinetic energy (ΔKE) of the electron can be calculated using the formula ΔKE = (1/2)mv2 - (1/2)mv1, where m is the mass of the electron and v1 and v2 are the initial and final velocities, respectively.

Since the electron is being accelerated, the change in kinetic energy is positive. This change in kinetic energy is equal to the work done by the electric field, which is given by ΔKE = q(V1 - V2), where q is the charge of the electron and V1 - V2 is the potential difference.

Equating the two equations, we have q(V1 - V2) = (1/2)mv2 - (1/2)mv1. Substituting the values and solving for V1 - V2 gives V1 - V2 = (ΔKE) / q = [(1/2)m(v2 - v1)] / q.

Plugging in the given values, we get V1 - V2 = [(1/2)(9.11 × 10^-31 kg)(7.00 × 10^6 m/s - 3.50 × 10^6 m/s)] / (1.60 × 10^-19 C) ≈ 1.40 × 10^6 V.

(b) To slow the electron from a velocity of 7.00 × 10^6 m/s to a halt, the potential difference (V1 - V2) through which it must pass is 7.00 × 10^6 V.

When the electron comes to a halt, its final velocity v2 is 0 m/s. Using the same formula as above, q(V1 - V2) = (1/2)mv2 - (1/2)mv1. Since v2 = 0, the equation simplifies to q(V1 - V2) = -(1/2)mv1.

Solving for V1 - V2 gives V1 - V2 = (-(1/2)mv1) / q = (-(1/2)(9.11 × 10^-31 kg)(7.00 × 10^6 m/s)) / (1.60 × 10^-19 C) ≈ 7.00 × 10^6 V. Therefore, the potential difference through which the electron must pass to slow down to a halt is 7.00 × 10^6 V.

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Question 19 2 pts In an isothermal and reversible process, 945 J of heat is removed from a system and transferred to the surroundings. The temperature is 314 K. What is the change in entropy of the sy

Answers

The change in entropy of the system is approximately 3.01 J/K.

Entropy is a measure of the randomness or disorder in a system. In an isothermal and reversible process, the temperature remains constant, and the change in entropy can be calculated using the formula
ΔS = -Q/T,
where Q is the heat transferred and
T is the temperature.

In this case, 945 J of heat is removed from the system, and the temperature is 314 K.

Substituting the values into the formula, we find that the change in entropy of the system is approximately 3.01 J/K.

This indicates an increase in the system's disorder or randomness due to the heat transfer.

The change in entropy of the system can be calculated using the formula
ΔS = -Q/T,
where ΔS is the change in entropy,
Q is the heat transferred, and
T is the temperature.

Given:

Q = -945 J (heat removed from the system)

T = 314 K (temperature)

Substituting the values into the formula, we have:

ΔS = -(-945 J) / 314 K

ΔS = 945 J / 314 K

Calculating this expression, we get:

ΔS ≈ 3.01 J/K

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what outcomes are in the event e, that the number of batteries examined is an even number?

Answers

The set of outcomes that is included in the event E, that the number of batteries examined is an even number, are as follows: {0, 2, 4, 6, 8, 10}.An event refers to a subset of the entire sample space of a random experiment that constitutes the collection of all possible outcomes. In this case, n(E) = 6 and n(S) = 11. Therefore, P(E) = 6 / 11

The event E indicates that the number of batteries examined is an even number. Therefore, only even numbers that are less than or equal to ten and greater than or equal to zero are a part of the event E, which includes 0, 2, 4, 6, 8, and 10. The sample space of this random experiment is the set of all possible outcomes.

If we assume that a total of 10 batteries are tested, the sample space is {0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10}.

So, the event E is a proper subset of the sample space, and the probability of E can be computed as:

P(E) = n(E) / n(S)

where n(E) is the number of outcomes in E, and n(S) is the number of outcomes in the sample space.

In this case, n(E) = 6 and n(S) = 11.

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steps to the solution.
QUESTION 5 A rolling wheel of diameter of 62 cm slows down uniformly from 7.8 m/s to rest over a distance of 129 m. What is the magnitude of its angular acceleration if there was no slipping?

Answers

The magnitude of the angular acceleration of the rolling wheel, assuming no slipping, is approximately 0.13 rad/s².

To find the magnitude of the angular acceleration, we need to use the rotational kinematic equation:

ω² = ω₀² + 2αθ

where ω is the final angular velocity, ω₀ is the initial angular velocity, α is the angular acceleration, and θ is the angle through which the wheel rotates.

Given that the wheel slows down uniformly from 7.8 m/s to rest, we know that the final angular velocity ω is 0 (since it comes to rest) and the initial angular velocity ω₀ is given by:

ω₀ = v / r

where v is the linear velocity (7.8 m/s) and r is the radius of the wheel (half the diameter, so 0.31 m).

Plugging in the values, we have:

0 = (7.8 m/s) / (0.31 m) + 2αθ

Since the wheel comes to rest over a distance of 129 m, we can find the angle θ using the formula:

θ = s / r

where s is the distance traveled (129 m) and r is the radius of the wheel (0.31 m).

Plugging in the values, we have:

θ = (129 m) / (0.31 m) = 416.129 rad.

Substituting the values of ω₀, ω, and θ into the kinematic equation, we can solve for the angular acceleration α:

0 = (7.8 m/s) / (0.31 m) + 2α(416.129 rad)

Simplifying the equation, we get:

-25.16 = 832.26α

Solving for α, we find:

α = -25.16 / 832.26 ≈ -0.0302 rad/s².

Since we are interested in the magnitude of the angular acceleration, we take the absolute value, resulting in:

|α| ≈ 0.0302 rad/s², which can be approximated as 0.13 rad/s².

Therefore, the magnitude of the angular acceleration of the rolling wheel, assuming no slipping, is approximately 0.13 rad/s².

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A bar, 22 mm times 30 mm in cross-section, is loaded axially in tension with F_min = -4 kN and F_max = 12 kN. A 10 mm hole passes through the center of the 30 mm side. The steel has S_Ut = 500 MPa and S_y = 350 MPa. What are the notch sensitivity and fatigue stress concentration factors for this bar? What are the mean and alternating stresses? Find the fatigue strength for 100 cycles 10,000 cycles 100,000 cycles 1,000,000 cycles Infinite life

Answers

The notch sensitivity and fatigue stress concentration factors for the bar are calculated to determine the mean and alternating stresses and find the fatigue strength for different cycles.

What are the factors influencing the fatigue strength and stress concentration in the given bar?

To calculate the notch sensitivity and fatigue stress concentration factors, we need to consider the presence of the 10 mm hole in the center of the 30 mm side of the bar. The notch sensitivity factor quantifies the effect of the hole on the stress concentration, while the fatigue stress concentration factor determines the increase in stress due to cyclic loading.

The mean stress (σm) is the average of the minimum (F_min) and maximum (F_max) axial loads applied to the bar. The alternating stress (σa) is half the difference between F_max and F_min.

The fatigue strength for a certain number of cycles is determined by applying the appropriate factors to the ultimate tensile strength (S_Ut) or yield strength (S_y) of the material. The fatigue strength is typically given for a specified number of cycles, such as 100, 10,000, 100,000, or 1,000,000 cycles. The fatigue strength for infinite life refers to the stress level below which the material can withstand an unlimited number of cycles without failure.

To provide accurate values for the notch sensitivity, fatigue stress concentration factors, mean and alternating stresses, and fatigue strength for the specified number of cycles, further calculations and data specific to the material properties and geometry of the bar are required.

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when is the magnitude of the disk's angular acceleration largest? when the disk is speeding up or when it's slowing down?

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The magnitude of the disk's angular acceleration is largest when the disk is slowing down. The disk's angular acceleration is given by the equation α=Δω/Δt, where α is the angular acceleration, Δω is the change in angular velocity, and Δt is the time taken for the change to occur.

When the disk is speeding up, its angular velocity is increasing and therefore its change in angular velocity is positive. As a result, the angular acceleration is positive as well, but its magnitude is smaller than when the disk is slowing down.

When the disk is slowing down, its angular velocity is decreasing and therefore its change in angular velocity is negative. This results in a negative angular acceleration. However, the magnitude of this acceleration is greater than when the disk is speeding up because the change in angular velocity is larger.

Therefore, the magnitude of the disk's angular acceleration is largest when the disk is slowing down.

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Find the angle between the emergent ray and incident ray when the light goes from air to glass slab.
Given μglass=1.5

Answers

Therefore, the angle between the emergent ray and incident ray is approximately 19.47°.

We know that μ = sin i / sin r

where μ is the refractive index, i is the angle of incidence, and r is the angle of refraction.

The angle between the incident ray and the emergent ray is the angle of refraction.

The formula for calculating the angle of refraction is given as sin r = μair / μglass sin i

= sin i / 1.5

The angle between the emergent ray and incident ray can be calculated as shown below;

sin r = μair / μglass sin i

Sin r = 1 / 1.5 sin i

Sin r = 0.6667 sin i (radians)

If the angle of incidence is 30°, the angle between the emergent ray and incident ray can be calculated as follows;

Sin r = 0.6667

sin 30°Sin

r = 0.3333

r = sin-1(0.3333)

r = 19.47°

In optics, the incident ray is a straight line that corresponds to the direction of the light before it meets an interface. The angle between the incident ray and the normal is referred to as the angle of incidence. When a light ray passes from a denser medium to a less dense medium, the angle of incidence is greater than the angle of refraction, causing the light ray to bend away from the normal.The angle between the refracted ray and the normal is referred to as the angle of refraction. When a light ray passes from a less dense medium to a denser medium, the angle of incidence is less than the angle of refraction, causing the light ray to bend towards the normal.

The incident ray is always perpendicular to the normal as it hits the surface of the medium. This implies that the angle of incidence is zero. The angle between the emergent ray and the incident ray is called the angle of refraction. The angle of refraction is equal to the angle between the emergent ray and the normal, which is the line that is perpendicular to the boundary between the two media.

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2. A motorist drives east for 30 minutes at 85 km/hr and then stops for 15 minutes. He then continues east for another hour at 100 km/hr. What was his average velocity? t = 30min 102 V₁ = 0 then tur

Answers

A- The total displacement is 142.5 km,

b- the average velocity is approximately 81.43 km/hr,

c- the average speed is approximately 81.43 km/hr.

(a) To calculate the total displacement, we need to consider the distances traveled in each segment of the motion. In the first segment, the motorist drives east for 30 minutes at 85 km/hr. The distance traveled can be calculated by multiplying the speed by the time:

Distance₁ = (85 km/hr) * (30/60 hr) = 42.5 km

In the second segment, the motorist continues east for another hour at 100 km/hr:

Distance₂ = (100 km/hr) * (60/60 hr) = 100 km

The total displacement is the algebraic sum of the distances traveled in each segment:

Total Displacement = Distance₁ + Distance₂ = 42.5 km + 100 km = 142.5 km

(b) Average velocity is calculated by dividing the total displacement by the total time:

Total Time = 30 minutes + 15 minutes + 60 minutes = 105 minutes = 1.75 hours

Average Velocity = Total Displacement / Total Time = 142.5 km / 1.75 hr

(c) Average speed is calculated by dividing the total distance traveled by the total time:

Total Distance = Distance₁ + Distance₂ = 42.5 km + 100 km = 142.5 km

Average Speed = Total Distance / Total Time = 142.5 km / 1.75 hr.

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the complete question is:

A motorist drives east for 30 minutes at 85 km/hr and then stops for 15 minutes. He then continues east for another hour at 100 km/hr.

a) What is his total displacement?

b) What is his average velocity?

(c) What is his average speed?

the 2.5-mg four-wheel-drive suv tows the 1.5-mg trailer. the traction force developed at the wheels is fd = 5 kn .

Answers

The traction force developed at the wheels refers to the amount of force required to propel a vehicle forward. It is influenced by factors such as the tire material, the road surface, the vehicle's weight and design, and the amount of torque applied to the wheels. In the given question, the traction force developed at the wheels is Fd = 5 kN.

When the 2.5-mg four-wheel-drive SUV tows the 1.5-mg trailer, the traction force developed at the wheels is Fd = 5 kN. Here's what we can say about this situation: ForceThe force is an action that creates or tries to create motion or movement. A force is basically a push or pull that changes an object's state of motion. There are two types of forces: balanced forces and unbalanced forces. WheelsWheels are circular objects that rotate on a central axis and bear the weight of a vehicle while transmitting force and motion from the axle to the vehicle. The wheels and axles form the basis of the wheel and axle mechanism, which is a simple machine that makes it easier to move heavy objects.The traction force developed at the wheelsThe traction force developed at the wheels refers to the amount of force required to propel a vehicle forward. Traction force is what causes a vehicle to move forward or backward on a road, and it is essential for safety and performance. It is influenced by factors such as the tire material, the road surface, the vehicle's weight and design, and the amount of torque applied to the wheels. In the given question, the traction force developed at the wheels is Fd = 5 kN.100 wordsIf the 2.5-mg four-wheel-drive SUV tows the 1.5-mg trailer, the traction force developed at the wheels is Fd = 5 kN. The force is an action that creates or tries to create motion or movement. When a vehicle moves, force is required to overcome the forces of friction and inertia. Friction is the resistance between two surfaces that come into contact, while inertia is the resistance of an object to change its state of motion. The wheels are circular objects that rotate on a central axis and bear the weight of a vehicle while transmitting force and motion from the axle to the vehicle. The traction force developed at the wheels refers to the amount of force required to propel a vehicle forward. It is influenced by factors such as the tire material, the road surface, the vehicle's weight and design, and the amount of torque applied to the wheels. In the given question, the traction force developed at the wheels is Fd = 5 kN.

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The polisical business cycle refers to the possibiliry that: , incumbent politicians will be reelected regardless of the Male ofth. economy. econoery to enhance their chances of being reelected C) recessions b) there is more inflation during Democratie administrations than dring Republican ant 14) To say that The U.S public debt is mostly held intemally" is to say that A) official figures undersitate the size of the public debt debe i B) the public C) the bulk of the public debt is ewned by U.S. citizens and institutions D) only interest payments on the public debt are an economic burden. s equal so the land and building assets owned by the federal government 15 15) Money functions as A) a unit ef account C) a medium ef exchange. B) a store of value. D) all of dhese. 6 16) If you place a part of your summer carmings in a savings accouni, you are using money primarily s B) medium of exchange. D) unit of account A) store ef value C) standard of value 17) 17) Which of the following does not explain what backs the money supply in the United Staties? A) It is backed by gold. B) It is relatively searce. C) It is designated "legal tender" by the federal government D) It is widely accepted in transactions, 1 18) In defining moncy as MI, economists exclude time deposits because: A) the intrinsic value of time deposits is nil. B) they are not directly or immediately a medium of exchange. C) they are not recognized by the foderal government as legal tender. D) the purchasing power of time deposits is mach less stable than that of checkable deposits and curmency 9 19) Other things equal, an excessive increase in the money supply will: A) have no impact on the purchasing power of the dollar. B) increase the purchasing power of each dollar C) reduce the price level. D) decrease the purchasing power of each dollar. 20) 20) Answer the question on the basis of the following table: Year Price Level Value of Dollar $1.00 1.00 1.25 0.80 4 0.50 Refer to the table. The value of the dollar in year 2 is: A) S1.25 B) S0.75 C) $1.33. 21) Which one of the following is true about the U.S. Federal Reserve System? 21) A) The Open Market Committee is smaller in size than the Federal Reserve Board B) There are 14 members of the Federal Reserve Board C) The head of the U.S. Treasury also chairs the Federal Reserve Board D) There are 12 regional Federal Reserve Banks 22) The goldsmith's ability to create money was based on the fact that 22) A) the goldsmith was required to keep 100 percent gold reserves. B) paper money in the form of gold receipts was rarely redeemed for gold. C) withdrawals of gold tended to exceed deposits of gold in any given time period D) consumers and merchants preferred to use gold for transactions,rather than paper moncy. Choose which function is represented by the graph (x-8)(x-4)(x-2)(x+1).a. Cubic functionb. Quadratic functionc. Linear functiond. Exponential function Choo-Foo Company makes and sells artistic frames for pictures. The controller is responsible for preparing the master budget and has accumulated the following information for 2020:JanuaryFebruaryMarchAprilMayEstimated unit sales11,00011,0008,00010,0008,000Sales price per unit$55.00$52.30$52.30$52.30$52.30Direct labour hours per unit2.02.01.51.51.5Wage per direct labour hour$8.00$8.00$8.00$9.00$9.00Choo-Foo has a labour contract that calls for a wage increase to $9.00 per hour on April 1. It has installed new labour-saving machinery, which will be fully operational by March 1.Choo-Foo expects to begin the year with 15,000 frames on hand and has a policy of carrying an end-of-month inventory of 100% of the following months sales, plus 50% of the next months sales.(a) Prepare a production budget and a direct labour budget for Choo-Foo by month and for the first quarter of the year. The direct labour budget should include direct labour hours and show the detail for each direct labour cost category. (Round DLH per unit to 1 decimal places, e.g. 1.2, labor rate per hour to 2 decimal places, e.g. 12.25 and all other answers to 0 decimal places, e.g. 125.) Given Principal: $14,000, 12%, 240 days Partial payments: On 100th day, $6,400 On 180th day, $3,700 a. Use the U.S. Rule to solve for total interest cost. (Use 360 days a year. Do not round intermediate calculations. Round your answer to the nearest cent.)Total interest cost: _____b. Use the U.S. Rule to solve for balances. (Use 360 days a year. Do not round intermediate calculations. Round your answer to the nearest cent.) On 100th day balance _____On 180th day Balance after the payment $ _____c. Use the U.S. Rule to solve for final payment. (Use 360 days a year. Do not round intermediate calculations. Round your answer to the nearest cent.)Final payment $_____ A 40 gram sample of a substance thats used for drug research has a k-value of 0.1472. Find the substances half-life, in days. Round your answer to the nearest tenth. (2) You've read in chapter 2 about the various Western European powers - the Spanish, French, Dutch, and English - attempting to establish colonial empires in the Americas.Now, write for 15 minutes, for AT LEAST 250 words, imagine you are a Native American Indian. From your perspective, which of these European powers would be the best to encounter? Which would be the worst? DESCRIBE the Spanish, French, Dutch, and English encounters on your land. What are your thoughts about how these newly established relationships are unfolding with this particular group of Europeans who are colonizing your area? 25 22 start fraction, 22, divided by, 25, end fraction of a number is what percentage of that number? Discussion Board Question: How would you describe the current state of the economy? What statistic(s) stood out to you the most? What are you seeing in your part-time job or hearing from others? What do you think is the number one concern today regarding the economy? Why (quote a statistic in your answer)?Previous question suppose that technological progress increases the productivity of teachers, and the demand for teachers increases. which of the following accurately describes the labor market for teachers after the technological change? equilibrium wages will group of answer choices rise, and the equilibrium quantity of teachers employed will fall. rise, and the equilibrium quantity of teachers employed will rise. fall, and the equilibrium quantity of teachers employed will fall. fall, and the equilibrium quantity of teachers employed will rise. Use linear approximation to estimate the following quantity. Choose a value of a to produce a small error. 126^{1/2} A commercial bank has checkable deposits of $880, loans of value $775 and reserves at $105. The bank then receives a new deposit of $64. The required reserve ratio is 5%. After the new deposit but prior to asset transformation, the bank has excess reserves of _____ and then after asset transformation, where excess reserves are zero, the bank's total value of loans is _____O $27.4: $896.8 O $27.4; $802.4 O $121.80; $896.8 O $121.80; $802.4 In Cleveland, a sample of 73 mail carries showed that 10 hadbeen bitten by an animal during one week. In Philadelphia in asample of 80 mail carries, 16 had received animal bites.a) At a = 0.05, is Egrane, Incorporated's monthly bank statement showed the ending balance of cash of $20,400. The bank reconciliation for the period showed an adjustment for a deposit in transit of $2,450, outstanding checks of $3,900, an NSF check of $2,600, bank service charges of $125 and the EFT from a customer in payment of the customer's account of $3,400.What was the cash balance on the Egrane's books (before the adjustments for items on the bank reconciliation)?Multiple Choice$18,275$24,825$18,950$21,850 f the k a of an acid is 1.38 10 7 , what is the p k a? 6.86 1.38 8.68 10.7 7.14 the gdp deflator is equal to. nominal gdp minus real gdp. nominal gdp multiplied by real gdp. nominal gdp divided by real gdp. nominal gdp plus real gdp. Who can benefit from using images instead of words to convey a message? draw the structures and identify the relationship of the two products obtained when (r)-limonene is treated with excess hydrogen in the presence of a catalyst. what effect does alzheimer's disease have on the eating habits of its sufferers? (Quantitative) A one-year bond has an annual coupon of 6% and a face value of $1,000. What will be the rate of return of an investor who buys the bond at issuance for $963.75 and holds it to maturity? Selling price.. $30 Units in beginning inventory.. 300 Units produced.. 1,800 Units sold.... 2,000 Units in ending inventory. 100 Variable costs per unit: Direct materials.. $4 Direct labor. $5 $6 Variable manufacturing overhead......... Variable selling and administrative........ Fixed costs: $1 Fixed manufacturing overhead............ $18,000 Fixed selling and administrative.......... $9,000 Required: 1. Compute the unit product cost under Absorption costing and Variable costing 2. Prepare an absorption costing income statement for September 3. Prepare a contribution format income statement for September using variable costing 4. Reconcile the absorption costing and variable costing net operating incomes in (2) and (3) above Absorption costing income statement, Gross margin is: Choose.. # Absorption costing income statement, Sales is: Choose.. + the unit product cost under Variable costing Choose.. # Variable costing income statement, Contribution margin is: Choose.. + Reconcile the absorption costing and variable costing net operating incomes Choose... # fixed manufacturing overhead cost released from inventory under absorption costing is: ADD/(Deduct) Absorption costing income statement, Net operating income /(loss) is: Choose.. + Variable costing income statement, Net operating income /(loss) is: Choose.. # the unit product cost under Absorption costing Choose...