an object is found to be moving in a circle with a constant speed. is there a force acting on the particle? if so, in what direction is this force. if not, why not? explain your reasoning.

Answers

Answer 1

Because the object's motion is moving in the same direction as the velocity vector, the velocity vector is also pointed in a tangent direction to the circle.

While it moves in a circle, an object constantly changes its direction. The path of the object is always perpendicular to the circle. Given that its direction matches the motion of the item, the velocity vector is also oriented tangent to the circle. While it moves in a circle, an object constantly changes its direction. The path of the object is always perpendicular to the circle. Given that its direction matches the motion of the item, the velocity vector is also oriented tangent to the circle. Within, there is force.

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Related Questions

1 The speeds of a car travelling on a straight road are given below at successive intervals of 1 second. Time/s Speed/m/s 0 0 1 2 2 4 3 6 4 8 Calculate a the average speed of the car in m/s b the distance the car travels in 4s c the constant acceleration of the car. 2 If a train travelling at 10 m/s starts to accelerate at 1 m/s2 for 15s on a straight track, calculate its final speed in m/s.​

Answers

The average speed = 2 m/ s

The distance traveled in 4s is 16m

the constant acceleration is

2. the final speed is 25 m/s

How to solve for the values

Average speed = distance / time

= 2 + 4 + 6 + 8 / 1 + 2 + 3 + 4

= 20 / 10

= 2

The distance in 4s:

we would solve using the formula

ut + 1/2at^2

0 + 1/2 * 2 * 4^2

= 16 meters

2. If the train is at 10 m /s for 15 s, we would use the formula

v = u + at

u = 10

a = 1

t = 15

then

v= 10 + 1× 15

=v= 25 m/ sec

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The load across a battery consists of two resistors, with values of 15 Ω and 47 Ω, connected in series. What is the equivalent resistance of the load?

Answers

The load across a battery consists of two resistors, with values of 15 Ω and 47 Ω, connected in series. 62 Ω is the equivalent resistance of the load.

A series circuit's overall resistance equals the sum of its individual resistances. The total of the individual voltage drops is equal to the voltage supplied to a series circuit. In a series circuit, the voltage drop across a resistor is exactly proportional to its size. When resistors are linked in series, they are connected one after the other.

To calculate the total overall resistance of a series of resistors connected in this manner, add the individual resistances together. This is accomplished by applying the following formula:

R = R₁ + R₂ + .... + Rₙ

In this problem, we have two resistors connected in series:

R₁ = 15 Ω

R₂ = 47 Ω

Now, the equivalent resistance of the circuit is

R = R₁ + R₂

  = 15 Ω + 47 Ω

  = 62 Ω

A series of n identical resistors of resistance R ohm have an effective resistance of X ohm when connected in series, whereas a parallel connection has an effective resistance of Y ohm. A parallel circuit's total current is the sum of the individual branch currents.

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you are rescuing a person who has fallen down a well. the rope with which you are lifting the person will withstand a maximum tension of 850 n without breaking. the weight of the person being lifted is 700 n. the magnitude of the largest acceleration with which you raise the person is

Answers

Magnitude of the largest acceleration with which you raise the person is calculated as 1.214 m/s².

What is tension?

The tension in the rope is directly related to the acceleration of person being lifted according to Newton's second law of motion:

Given, maximum tension the rope can withstand is 850 N, and weight of the person being lifted is 700 N.

As tension = mass x acceleration

Since the mass of the person is constant, we can write this equation:

Acceleration = Tension / mass

Acceleration = 850 N / 700 kg

= 1.214 m/s^2

Therefore, the magnitude of the largest acceleration with which you can raise the person is 1.214 m/s^2.

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D Pressure is directly proportional to temperature at constant volume. True False​

Answers

Answer: I think false!

Explanation: hope this helps and I hope everyone is having a good day/Friday&weekend^^

a horizontal wire of length 3.0 m carries a current of 6.0 a and is oriented so that the current direction is 50o s of w. the horizontal component of the earth's magnetic field is due north at this point and has a strength of 0.14 x 10-4 t. what is the size of the force on the wire?

Answers

[tex]1.6 x 10^{-4} N[/tex] of magnetic force is exerted towards the Earth on wires carrying current. surface.  

What is magnetic force?

When electrically charged particles are in motion, a magnetic force, attraction, or repulsion results from their motion. It is the fundamental force behind phenomena like how electric motors operate and how magnets are drawn to iron. Among fixed electric charges, there are electric forces; among moving electric charges, there are both electric and magnetic forces. The influence of a magnetic field generated by one charge on another charge can be referred to as the magnetic force between two moving charges. The direction of the magnetic force acting on a moving charge is at a right angle to the plane formed by the direction of the charge's motion and the direction of the magnetic field around it.

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Is the flux of electric field through a closed surface is zero then?

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If the flux of the electric field through the closed surface is zero then the electric field at points on that surface must be zero.

On the off chance that the electric field going through a shut surface is uniform and opposite to the surface, the electric transition through the surface will be zero. This happens on the grounds that the electric field lines enter and leave the surface at equivalent rates, prompting a net transition of nothing. Be that as it may, in the event that the electric field is non-uniform or not opposite to the surface, the electric transition through the surface won't be zero. The electric motion through a shut surface is connected with how much charge encased by the surface, as given by Gauss' regulation. In this way, deciding the electric motion through a closed surface can give data about the charge circulation inside the surface.

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5. Express the following quantities in their basic dimensions: a) Electric resistance (2), (R = V = q = 1xt) b) Universal Gas constant (J/K mol) 1​

Answers

Answer:

a) Electric resistance: The basic dimensions of electric resistance are resistance (R) which has the dimension of [mass] x [length]^2 / [time]^3.

b) Universal Gas Constant: The basic dimensions of the Universal Gas constant (R) are [energy]/[temperature x amount of substance]. These dimensions can be expressed as [mass] x [length]^2 / [time]^2 / [temperature] x [amount of substance].

Explanation:

if all of the dimensions of the block double (to become 20 cm wide, 8 cm tall, and 6 cm deep), what happens to the resistance along each axis?

Answers

The resistance of the block to motion along each axis will also increase by a factor of 8.

The resistance of a block to motion in a particular direction is determined by its mass and the coefficient of friction between the block and the surface.

Assuming that the surface and the coefficient of friction remain the same, and the block's density is also constant, the mass of the block will increase by a factor of

[tex]2^3 = 8[/tex] when all of its dimensions double.

Therefore, the resistance of the block to motion along each axis will also increase by a factor of 8. This is because the force required to move the block along each axis is proportional to the mass of the block, and the mass is directly proportional to the volume of the block, which in turn is proportional to the product of its three dimensions.

In other words, if the original block had a certain resistance to motion along each axis, the new, larger block will require eight times the force to be moved along each axis, as its mass will be eight times greater.

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for a person wearing these shoes, what??s the maximum angle (with respect to the horizontal) of a smooth rock that can be walked on without slipping?

Answers

The maximum angle (with respect to the horizontal) of a smooth rock that can be walked on without slipping is 50°.

Friction is a force that acts between two rough shells, whenever one tries to move one face against the other. When a force F pushes an object in one direction, there appears a disunion force in the contrary direction. Before stir thresholds, we're in the governance of static disunion.

Once the applied force is increased, the static disunion increases at the same rate, until it's reached a outside, denoted by maximum static disunion, and defined by the formula

[tex]f_s = \mu_s N[/tex]

The static measure between the shoe and the smooth gemstone is μs= 1.2

and hence the maximum static disunion is given by,

[tex]f_s = \mu_s N[/tex]

where N is the magnitude of the normal force. The forces acting on the shoe are

The gravitational force wielded by the Earth, of magnitude

F = mg

The normal force N wielded by the face of the gemstone, directed typically outwards from the gemstone.

The( static) disunion, wielded by the gemstone, in the direction overhead the gemstone( opposed to the tendency of slipping).

N - Fcosθ

N = Fcosθ

f = μFcosθ,

μFcosθ = Fsinθ

μ = sinθ/cosθ

Given by is the maximum (or critical) angle.

[tex]\theta_m_a_x = arctan\mu_s = arctan(1.2) = 50^0[/tex]

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Complete question:

Shoes made for the sports of bouldering and rock climbing are designed to provide a great deal of friction between the foot and the surface of the ground. Such shoes on smooth rock have a coefficient of static friction of 1.2 and a coefficient of kinetic friction of 0.90. For a person wearing these shoes, what is the maximum angle (with respect to the horizontal) of a smooth rock that can be walked on without slipping?

a person flying in a plane over easter island notices that the water around the island appears bluer than the surrounding water. what property of light waves causes the water to be a different color to the observer?

Answers

The property of light waves that causes the water around Easter Island to appear bluer than the surrounding water is called "scattering". Scattering occurs when light waves interact with particles in the atmosphere or in a medium such as water.

In the case of the water around Easter Island, the blue color is due to the scattering of sunlight by the water molecules in the ocean. Sunlight is composed of different wavelengths of light, and when it enters the ocean, the water molecules scatter the shorter, blue wavelengths more than the longer, red wavelengths. This means that more of the blue light is scattered in all directions, including towards the observer in the plane, making the water appear blue.

The blueness of the water is more noticeable around Easter Island because the island is surrounded by deep ocean water, which absorbs longer wavelengths of light and allows more of the blue light to be scattered. In contrast, the surrounding shallower waters or other parts of the ocean may have more particles, such as algae or sediment, that scatter more of the longer wavelengths of light, making the water appear a different color, such as green or brown.

Overall, the scattering of light waves by particles in the atmosphere or in a medium is a common phenomenon that can cause objects or substances to appear different colors to an observer. The specific color that is observed depends on the properties of the light waves, the properties of the particles, and the angle and distance of the observer.

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you are riding an elevator. an object has been hung from a spring balance attached to the elevator ceiling. the scale reads the weight of the object as w when the elevator is stationary. the elevator then starts moving. the scale then reads the weight of the object as 0.75w. what is the acceleration of the elevator?

Answers

According to the question the acceleration of the elevator is 0.25w/t.

What is acceleration?

Acceleration is defined as the rate of change of velocity, or the rate at which an object's speed or direction is changing. It is a vector quantity, meaning it has both magnitude and direction. Acceleration can be either positive or negative, depending on the direction of the change in velocity.

The acceleration of the elevator can be calculated by using the following equation:a = (w-0.75w)/t
where 'a' is the acceleration of the elevator, 'w' is the weight of the object when the elevator is stationary, and 't' is the time it takes for the elevator to move.
Since the time it takes for the elevator to move is unknown, we can rearrange the equation to solve for 't':
t = (w-0.75w)/a
By substituting the known values of w and 0.75w into the equation and solving for 'a', we can calculate the acceleration of the elevator:
a = (w-0.75w)/t = (w-(0.75*w))/t = (w(1-0.75))/t = 0.25w/t
Therefore, the acceleration of the elevator is 0.25w/t.

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at what distance (in mm) from a long, straight wire carrying a current of 16 a will the magnitude of the magnetic field be 1.2 mt?

Answers

The distance from the wire at which the magnetic field has a magnitude of 1.2 mt is 26.7 mm.

What is magnetic field?

A region of space where the magnetic forces of a magnet or a moving electric charge can be felt is called a magnetic field. Moving electric charges, such the spinning electrons in an atom or the electrons in a wire, create magnetic fields. They can also be created by the Earth's core or permanent magnets.

The strength and direction of magnetic fields define them. A magnetic field's direction can be determined by calculating the force it would apply to a compass's north pole. The amount of force that a magnetic field would apply to a charged particle travelling through the field provides an indication of its intensity.

According to question:

To calculate the distance at which the magnetic field has a magnitude of 1.2 mt from a long, straight wire carrying a current of 16 A, we can use the formula for the magnetic field of a current-carrying wire:

B = (μ0 / 2π) * (I / r)

where B is the magnetic field, I is the current, r is the distance from the wire, and μ0 is the permeability of free space (4π x 10^-7 T·m/A).

Rearranging the formula to solve for r, we get:

r = (μ0 / 2π) * (I / B)

Plugging in the given values, we get:

r = (4π x 10^-7 T·m/A / 2π) * (16 A / 1.2 x 10^-3 T)

r = 2.67 x 10^-5 m = 26.7 mm

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the potential energy of an object u as a function of x looks like the plot shown above. 1)where is the force the biggest in the negative x direction?

Answers

The force on  an object is the rate of decrease in potential energy. Hence, in the plot the region having a negative slope is the one with biggest force. Then, c is correct.

What is potential energy ?

Potential energy of a body is generated by virtue of the position of the object. Hence, this form of energy is stored in the object when it is at rest. When the object starts moving its potential energy converts to kinetic energy.

Force is an external agent acting on a body to change its motion. The relation between potential energy force applied is given as:

F = - dU/dx

where potential energy U = mgh

then

F = - d/dx (mgh)

From the plot of potential energy,

F = -slope.

Hence, the x component with maximum slope have the biggest force. Here, it is the region C.

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The image related to your question is given here:

on a scale in which the distance from the sun to the earth is about 15 meters, the distance from the earth to the moon is .

Answers

On a scale where the distance from Earth to the Sun is about 15 meters, the distance from Earth to the Moon is 38.54 millimeters .

Distance earth-sun= 149.6 x 10^9m

Distance earth-moon= 384.4 x 10^6m

It's the division between the distance earth-sun by the 15 meters:

149.6 x 10^9m / 15m = 9973333333m

Give us the number of meters in the scale equivalent to distance earth-moon.

384.4 x 10^6m / 9973333333m = 0.0385

Converting the answer to millimeters (knowing that 1m=1000mm)

= 38.54mm

Distance is a measure of the physical separation between two objects or locations. It is often described in terms of how far apart two points are from each other. In physics, distance is typically measured in units such as meters, kilometers, or miles.The concept of distance is important in many areas of study, including mathematics, physics, and geography.

Distance can be calculated using various methods, including using instruments such as rulers, tape measures, or GPS systems. It can also be estimated by using landmarks or other points of reference. The precise measurement of distance is crucial in many fields, from construction and engineering to astronomy and space exploration.It is used to determine the spatial relationship between objects or locations, and is often used to calculate travel times and navigation routes.

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Complete Question: -

On a scale where the distance from Earth to the Sun is about 15 meters, the distance from Earth to the Moon is __________.

a constant friction force of 30 n acts on a 60 kg skier for 20 s. what is the skier's change in velocity?

Answers

The skier's change in velocity is 10 m/s.

To calculate the change in velocity of the skier, we can use the equation for average force:

F = m * a

where F is the force, m is the mass, and a is the acceleration. We can rearrange this equation to solve for the acceleration:

a = F / m

We can then use the equation for average acceleration:

a = (vf - vi) / t

where vf is the final velocity, vi is the initial velocity, and t is the time. We can rearrange this equation to solve for the change in velocity:

vf - vi = a * t

Substituting the known values into these equations, we get:

a = F / m = 30 N / 60 kg = 0.5 m/s²

vf - vi = a * t = 0.5 m/s² * 20 s = 10 m/s

Therefore, the skier's change in velocity is 10 m/s. Note that the direction of the change in velocity is opposite to the direction of the friction force.

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a medical linear accelerator is used to accelerate electrons to create high energy beams that can destroy tumors with minimal impact on surrounding healthy tissue. the beam energy fluctuates between 200 and 210 mev. the cumulative distribution function is

Answers

The cumulative distribution function for a medical linear accelerator is a graph that shows the probability of the electron beam energy fluctuating between 200 and 210 MeV. The cumulative distribution function is calculated by adding up the probabilities of all the individual beam energies between 200 and 210 MeV. The cumulative distribution function gives a visual representation of the probability of the electron beam energy fluctuating within a certain range.
Final answer:

A medical linear accelerator accelerates electrons to create high-energy beams, with energy levels fluctuating between 200 and 210 MeV, which is used to destroy tumors while preserving healthy tissue. The beam energy fluctuations could be represented using a cumulative distribution function in statistics.

Explanation:

A medical linear accelerator is a device used in cancer treatment. It utilizes electromagnetic fields to accelerate electrons to high speeds, creating a beam of high energy. This energy, typically oscillating or fluctuating between 200 and 210 MeV (mega-electron volts), targets cancerous tumors, destroying them with minimal damage to surrounding healthy tissues. In statistics, the cumulative distribution function could be utilized to understand or describe the probability associated with these energy fluctuations of the electron beam.

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A 10 kg red ball travels with a velocity of 6 m/s toward a 8 kg blue ball that is traveling at a speed of 11 m/s in the opposite direction. What is the velocity of the blue ball after collision if the velocity of the red ball after collision is 6 m/s? (Note: the balls have changed direction.)

Answers

Assuming the red ball was moving in a positive direction when it first collision with the blue ball, the blue ball's velocity after the impact is -9 m/s (indicating it is moving in the opposite direction).

A collision is what?

When two bodies, such as two pool cues, a golf club and a ball, a hammer and a nail, two railroad cars when united, or a falling object and a floor, abruptly and forcefully meet in close proximity to one another, it results in a collision, also known as an impact.

Before the impact, the system's total momentum is:

p before = m1v1 + m2v2

Substituting the given values:

p before = (10 kg)(6 m/s) + (8 kg)(-11 m/s) = -2 kg m/s

Following the collision, the system's overall momentum is:

p after = m1v1' + m2v2'

The law of conservation of momentum states that the total momentum of the system before and after the collision is the same, so:

p before = p after

Using the given values as substitutes, find v2':

-2 kg m/s = (10 kg)(6 m/s) + (8 kg)(v2')

v2' = (-2 kg m/s - 60 kg m/s) / 8 kg

v2' = -9 m/s

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Do some research and find out the acceleration due to gravity on the Moon and on each planet
listed in the table. For each site, calculate the gravitational force that would act on a 70-kilogram
person on the surface of each site. Use your calculations to complete the table. Remember to
use the same units in each calculation.
Planet or Moon
Venus
Earth
Earth's Moon
Mars
Jupiter
Acceleration due to gravity
Force experienced by 70 kg
person

Answers

The acceleration due to gravity varies according to the size of the planet.

What is the list of the acceleration due to gravity on the moon and on all the planets?

Here is a list of the acceleration due to gravity (g) on the Moon and on the planets in our Solar System:

Moon:

g = 1.62 m/s^2

Mercury:

g = 3.7 m/s^2

Venus:

g = 8.87 m/s^2

Earth:

g = 9.8 m/s^2

Mars:

g = 3.71 m/s^2

Jupiter:

g = 24.79 m/s^2

Saturn:

g = 10.44 m/s^2

Uranus:

g = 8.87 m/s^2

Neptune:

g = 11.15 m/s^2

It's worth noting that the acceleration due to gravity is affected by the mass and size of a celestial body. Larger and more massive objects have a stronger gravitational pull and therefore a higher acceleration due to gravity.

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. What voltage is required to move 2mA through 0.5kΩ?mm DS m. M m m. Feed

Answers

Answer: The voltage required to move a current of 2mA through a resistor with a resistance of 0.5 kΩ can be calculated using Ohm's law, which states that the voltage across a resistor is equal to the current flowing through it multiplied by the resistance:V = I * RV = 2mA * 0.5 kΩV = 1VSo, the voltage required to move 2mA through 0.5 kΩ is 1 Volt.

The first basic step in solving force and motion problems generally involves identifying all of the forces acting on an object. This tactics box provides a step-by-step method for identifying each force in a problem. 1. Identify the object of interest. This is the object whose motion you wish to study. 2. Draw a picture of the situation. Show the object of interest and all other objects—such as ropes, springs, or surfaces-that touch it. 3. Draw a closed curve around the object. Only the object of interest is inside the curve, everything else is outside. 4. Locate every point on the boundary of this curve where other objects touch the object of interest. These are the points where contact forces are exerted on the object. 5. Name and label each contact force acting on the object. There is at least one force at each point of contact: there may be more than one.

Answers

Crate is the subject of attention. Forces are applied to the crate via rope, wood board, and earth. Below is a picture that corresponds to this query.

Although feeble, gravitational force has a very vast range. Additionally, it always looks good. Since mass is its source, it operates between any two particles of matter in the universe.

Neutrino interactions and radioactive decay are both caused by the weak forces. It has a rather small range. It is quite weak, as its name suggests. Beta-decay, or the decay of a neutron into a proton, an electron, and an antineutrino, is brought on by the weak force.

The electromagnetic force has electric and magnetic effects, such as the attraction of bar magnets or the repelling of electrical charges that are similar to one another. Despite being considerably weaker than the strong force, it has a considerable range. It only works between particles of matter carrying an electrical charge and can be either attracting or repulsive. magnetism, electricity.

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6. Determine the work done by the external force when a charge = 20 nC is displaced from an initial point at potential 300 V to a final po…

Answers

Answer: W = 20 x 10^-9 C * (Vf - 300 V)

Explanation:The work done by an external force when a charge is displaced from one point to another in an electric field is given by the equation:

W = q * (Vf - Vi)

where W is the work done, q is the charge of the particle, Vf is the final potential and Vi is the initial potential.

Given a charge of 20 nC (20 x 10^-9 C) and an initial potential of 300 V, the final potential can be any value. To determine the work done, we simply plug in the values into the equation:

W = 20 x 10^-9 C * (Vf - 300 V)
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what causes the direction of the wind to change from day to night?

Answers

The direction of the wind is largely influenced by the temperature differences in the atmosphere.

During the day, the sun heats up the Earth's surface, causing the air to warm and rise, leading to the formation of a low-pressure area. As the air rises, cooler air from higher atmospheric levels moves in to replace it, causing wind to blow towards the low-pressure area.

At night, the Earth's surface cools down, leading to a drop in temperature, and the air cools and contracts. The air near the ground becomes denser and heavier, causing a high-pressure area to form. The cool and dense air sinks, displacing the warmer air, and creating wind that blows from the high-pressure area to the low-pressure area.

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Which is the measure of the average kinetic energy of atoms or molecules that compose a substance?
a) Heat
b) Temperature

Answers

Answer:

The correct answer is b) Temperature.

Explanation:

Temperature is a measure of the average kinetic energy of atoms or molecules that compose a substance. Heat is the amount of energy transferred from one object to another.

if the earth goes around the sun, why is the ecliptic not lined up with the celestial equator? the ecliptic is a circle fixed in the sky, but the celestial equator is different for observers at different latitudes the earth's axis is tilted by about 23 degrees from the vertical the earth's orbit is not a circle but an ellipse the land mass of the earth is more concentrated in the northern hemisphere the pull of the other planets makes the earth wobble significantly in the course of a year additional materials

Answers

The tilt of Earth's axis causes the ecliptic to intersect the celestial equator at two points, creating the seasons.

The ecliptic is the unmistakable method of the Sun on the heavenly circle as seen from Earth. It isn't concurred with the magnificent equator, which is the projection of the World's equator onto the heavenly circle, considering the way that the World's center is moved by around 23.5 degrees relative with the plane of its circle around the Sun. Consequently, over the range of a year, the World's Northern and Southern Parts of the globe then again slant towards and away from the Sun, causing the seasons. The ecliptic meets the eminent equator at two spots, known as the equinoxes, where the length of every day of the week is generally same. The inclination of the World's turn, got together with the World's circle around the Sun, prompts the changing seasons and the moving spot of the ecliptic near with the superb equator.

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the energy driving the global water cycle is provided by the energy driving the global water cycle is provided by tides. wind. rotation of the earth on its axis. solar energy.

Answers

The energy driving the global water cycle is primarily provided by solar energy.

The Sun's energy heats the Earth's surface, causing water to evaporate from the surface and form water vapor in the atmosphere.

This water vapor then condenses to form clouds and precipitation, which returns water to the surface and completes the water cycle. Solar energy is the primary driver of temperature differences across the Earth's surface, which in turn creates atmospheric circulation patterns that distribute heat and moisture. Tides are a result of the gravitational forces of the Moon and Sun on the Earth's oceans, and wind is a result of atmospheric pressure differences caused by uneven heating of the Earth's surface. While tides and wind can affect the distribution and movement of water in the oceans and atmosphere, they are not the primary source of energy driving the global water cycle.

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at which time or times shown is the acceleration zero? 2. at which time or times shown is the kinetic energy a maximum? 3. at which time or times shown is the potential energy a maximum?

Answers

On analysis of the figure

1)- B, D

2. B , D

3. A, , C At bath position :- acceleration due to centripetal gravity - acceleration. Hence; net acceleration is zero.

When a point or object accelerates or decelerates, it is moving forward directly. While moving at the same speed, a circle moves faster because its direction is constantly shifting. All of these effects hasten the progress of every other movement.Acceleration is a vector quantity since it has both a magnitude and a direction. A vector quantity is also velocity. The change in velocity vector during a time interval divided by the time interval is the definition of acceleration. The instantaneous acceleration is given by the upper bound of the ratio of the change in velocity during the instantaneous period (at a certain time and location).

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The average person has a surface area of 1.5-2.0 m². If the person is lying on flat ground, let's assume that about 40% of the person's surface area is in contact with the ground, which would be about 0.6-0.8 m².

(a) A student with a mass of 50. kg is lying on the floor of the classroom. The area of the student that is in contact with the floor is 0.6 m². What is the pressure between the student and the floor?

(b) Mr. Bigler's bed of nails was built with approximately 3300 nails evenly spread over an area of 1.11 m². The head of each nail has an area of approximately 0.1 mm²=
1 x 10-7 m². Based on these numbers and the surface area of contact for the student
in part #6a, what is the pressure between the student and each of the nails?

Answers

(a) The pressure between the student and the floor is 817 Pa.

(b) The pressure between the student and each nail 14,848 Pa.

What is the pressure between the student and the floor?

Pressure is calculated by dividing force by area. The force exerted on the floor by the student is equal to their weight, which is the force of gravity acting on their mass.

The weight of the student can be calculated as follows:

W = mg

W = 50 kg (9.8 m/s²)

W = 490 N

So the pressure between the student and the floor can be calculated as follows:

P = F / A

P = 490 N / 0.6 m²

P = 817 Pa

To find the pressure between the student and each nail, we need to divide the student's weight by the total area of the nails' heads.

A (nails) = NA

A (nails) = 3300 x 1 x 10⁻⁷ m²

A (nails) = 0.033 m²

So the pressure between the student and each nail can be calculated as follows:

P = F / A

P = 490 N / 0.033 m²

P = 14,848 Pa

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two charged copper spheres are placed in space. if the charge on each sphere is halved and the distance between the spheres is also halved, the electric force between the spheres will

Answers

The distance between the spheres is halved. The force of repulsion between the two spheres, Therefore, the force between the two spheres is 0.243 N.

Let us consider, the charge on sphere A  [tex]q_A[/tex] and on sphere B  [tex]q_B[/tex] According to the question,

q_A= 6.5 × 10−7 C

q_B= 6.5 × 10−7 C

r=distance between A and B=50cm=50×10^-2

From Coulomb's law, the force between the two spheres is

F= [tex]\frac{9*6.5&6.5* 10^-5}{50*50*10^-4} = 1.521*10^-2N[/tex]

According to the question, if the charge is doubled

Distance between them is halved i.e., r'=r/2

F = 16F 16*1.521*10^-2N = 0.243 N

In physics, pressure is an influence that may exchange the motion of an item. A force can purpose an object with mass to alternate its velocity (e.g. moving from a nation of relaxation), i.e., to boost up.  its miles are measured inside the SI unit of newton (N). force is represented with the aid of the symbol F (formerly P).

The unique form of Newton's 2d regulation states that the net pressure appearing upon an object is identical to the fee at which its momentum modifications with time. If the mass of the item is steady, this regulation implies that the acceleration of an item is immediately proportional to the internet force appearing on the object, is within the direction of the internet force, and is inversely proportional to the mass of the object.

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Complete Question:

Two insulated charged copper spheres A and B have their centers separated by a distance of 50 cm. What is the mutual force of electrostatic repulsion if the charge on each is 6.5 × 10−7 C? The radii of A and B are negligible compared to the distance of separation. (b) What is the force of repulsion if each sphere is charged double the above amount, and the distance between them is halved?

A wave with a frequency of 3kHz was found to
oscillate 440 times.
Over what time period was it measured?
Give your answer to 2 decimal places.

Answers

The time interval is 0.15 s

What is the frequency of oscillation?

The frequency of oscillation refers to the number of cycles of a periodic waveform that occur per unit of time, usually measured in hertz (Hz), which represents cycles per second.

Based on the information that can get in the question that has been put before us here and now;

Note that;

Frequency = Number of oscillations/Time

3 * 10^3 = 440/time

Time = 440/3 * 10^3

Time = 0.15 s

Thus we can see from the calculation that the time that is taken is 0.15 s

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2. A weight lifter lifts a set of weights a vertical distance of 2.00 m. If a con-
stant net force of 350 N is exerted on the weights, what is the net work done
on the weights?

Answers

The work done by the weightlifter which covers a distance of 2 m and a constant net force of 350 N is 700 Joules.

What is Work done?

The work done by a force is the product of the displacement of object and the component of applied force of the object in the direction of displacement of the object. When we push a block with some force 'f', then the body moves with some amount of acceleration, and work is done.

The force exerted to lift the weight, F is 350 N

The work done by the body is defined as the product of the force applied by the body to the displacement it caused.

W = F x s

W = 350 N x 2 m

W = 700 J

The work done by the weightlifter, W = 700 J

The time taken by the weightlifter to lift the weight, t = 2 s

The power is given by the equation,

P = W / t

P = 700 J / 2 s

P = 350 watts

Hence, the power of the weightlifter, P = 350 watts.

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