A particale's position function is given by X= 3t³+5²-6 with X in meter and t in second What is the particle's displacement between t1=2s and t2=6s
A particale's position function is given by X= 3t

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Answer 1

A particle's position function is  X= 3t³+5²-6 with X in meter and t in second then the particle's displacement between t1 = 2s and t2 = 6s is 784 meters.

To calculate the particle's displacement between t1 = 2s and t2 = 6s, we need to find the difference between the position at t2 and the position at t1. The position function given is X = [tex]3t^3 + 5t^2[/tex] - 6.

First, let's find the position at t1 = 2s:

X1 =[tex]3(2^3) + 5(2^2) - 6[/tex]

X1 = 3(8) + 5(4) - 6

X1 = 24 + 20 - 6

X1 = 38

Next, let's find the position at t2 = 6s:

X2 =[tex]3(6^3) + 5(6^2) - 6[/tex]

X2 = 3(216) + 5(36) - 6

X2 = 648 + 180 - 6

X2 = 822

Now we can calculate the displacement:

Displacement = X2 - X1

Displacement = 822 - 38

Displacement = 784 meters

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Related Questions

A platypus foraging for prey can detect an electric field as small as 0.002 N/C. to give an idea of sensitivity of the platypus's electric sense, how far from a 40 nc point charge does the field have this magnitude?

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The field has a magnitude of 0.002 N/C when you are 1.8 meters away from a 40 NC point charge.

In order to find out how far away from a 40 NC point charge the field has a magnitude of 0.002 N/C, we can make use of Coulomb’s law which states that the electric field intensity is directly proportional to the inverse of the square of the distance from the point charge.

The formula for Coulomb’s law is:E = k q / r²Where E is the electric field intensity, k is Coulomb’s constant (9 x 10^9 N m² C^-2), q is the charge and r is the distance from the charge. We can use algebra to rearrange this formula to find the distance (r) from the charge: r = √(k q / E)

Plugging in the values we know, we get:r = √(9 x 10^9 x 40 x 10^-9 / 0.002)Simplifying this, we get:r = 1.8 m

Therefore, the field has a magnitude of 0.002 N/C when you are 1.8 meters away from a 40 NC point charge.

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Eksu academic building lot is 150ft by 200ft determine the area of this lot in cm² and m²

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To determine the area of a lot, we can multiply the length and width of the lot. The given length and width of the EKSU academic building lot is 150ft and 200ft respectively. so building lot in cm² is 27,847,232 cm² and in m² is 2795.7752 m².

To determine the area of this lot in cm² and m², we need to convert the given measurements from feet to centimeters and meters respectively.

Convert 150ft and 200ft to cm:1 ft = 30.48 cm So, 150ft = 150 x 30.48 = 4572 cm And 200ft = 200 x 30.48 = 6096 cm

Therefore, the area of the lot in

cm² = length x width = 4572 cm x 6096 cm = 27,847,232 cm².Convert 150ft and 200ft to meters:1 ft = 0.3048 mSo, 150ft = 150 x 0.3048 = 45.72 mAnd 200ft = 200 x 0.3048 = 60.96 m

Therefore, the area of the lot in m² = length x width = 45.72 m x 60.96 m = 2795.7752 m² (rounded to four decimal places)

Therefore, the area of the EKSU academic building lot in cm² is 27,847,232 cm² and in m² is 2795.7752 m².

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Light from the Sun takes 8 minutes to reach Earth. How long (in
min) does it take to reach Neptune, 30.1 AU from the Sun?

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It takes approximately 4 hours and 9 minutes for light from the Sun to reach Neptune, which is 30.1 AU away.

To calculate the time it takes for light to reach Neptune, we need to convert the distance between the Sun and Neptune from astronomical units (AU) to minutes.

Given that light from the Sun takes 8 minutes to reach Earth, we can set up a proportion to find the time it takes for light to reach Neptune:

(8 minutes / 1 AU) = (x minutes / 30.1 AU)

Cross-multiplying and solving for x, we have:

8 * 30.1 = x

x ≈ 240.8 minutes

However, this result is in minutes, and we need to convert it to hours and minutes. Since there are 60 minutes in an hour, we divide the result by 60 to get the number of hours and the remainder gives us the remaining minutes:

240.8 minutes ÷ 60 = 4 hours and 0.8 minutes

Converting 0.8 minutes to seconds (1 minute = 60 seconds), we have:

0.8 minutes * 60 seconds/minute = 48 seconds

Adding the hours and minutes together, we get:

4 hours + 0 minutes + 48 seconds ≈ 4 hours and 9 minutes

Therefore, it takes approximately 4 hours and 9 minutes for light from the Sun to reach Neptune, which is 30.1 AU away.

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f a typical pump at the gas station pumps gasoline at a rate of 49 liters per minute, how many seconds will it take to pump 11 gallons of gas? round your answer to the nearest second.

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It will take approximately 51 seconds to pump 11 gallons of gas at a rate of 49 liters per minute.

Given, 1 gallon = 3.78541 liters and the rate of the gasoline pumped is 49 liters per minute. We need to find out how many seconds it will take to pump 11 gallons of gas. In order to solve this problem, we can use the conversion factor method for the unit conversion.

First, we will convert gallons into liters, and then we will use the rate of gasoline to find the time taken to pump 11 gallons of gas.

Conversion of gallons into liters:11 gallons x 3.78541 liters per gallon = 41.63951 litersTo find the time taken to pump 41.63951 liters of gas:49 liters per minute = 1 minute/60 seconds = 0.8167 liters per second .Time taken to pump 41.63951 liters of gas= 41.63951/0.8167≈ 51 seconds . Therefore, it will take approximately 51 seconds to pump 11 gallons of gas at a rate of 49 liters per minute.

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what is the additive effect of a 0.05 unit increase in the p/i ratio on the probability that the mortgage application is denied for the average black applicant in the logit model?

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The additive effect of a 0.05 unit increase in the p/i ratio on the probability that the mortgage application is denied for the average black applicant in the logit model is 0.0246.

From the problem statement, it is given that there is a logit model and it can be written as follows:

Logit (denied) = -0.232 + 1.005 (black) + 1.151 (log income) - 0.291 (job = 1) + 0.346 (job = 2) + 0.428 (job = 3) - 0.070 (unem) - 0.303 (hisp) + 0.054 (mort) - 0.051 (p/i)

Here, the coefficient of the p/i variable is -0.051. Therefore, a 0.05 unit increase in the p/i ratio will increase the p/i variable by 0.05 × (-0.051) = -0.00255 units.

Now, let's calculate the effect of a -0.00255 unit change in the p/i ratio on the probability of being denied the mortgage using the following formula:

Probability of denied = exp (Logit) / [1 + exp (Logit)]Here, the logit is calculated as follows:

Logit = -0.232 + 1.005 (1) + 1.151 (log income) - 0.291 (0) + 0.346 (0) + 0.428 (0) - 0.070 (unem) - 0.303 (0) + 0.054 (1) - 0.051 (0.02)Logit = -0.232 + 1.005 + 1.151 (11.4076) - 0.070 (5.0088) + 0.054 - 0.051 (0.02)Logit = 2.1907

Now, the probability of being denied is calculated as follows:

Probability of denied = exp (Logit) / [1 + exp (Logit)]Probability of denied = exp (2.1907) / [1 + exp (2.1907)]Probability of denied = 0.8995

Now, let's recalculate the logit with a change of -0.00255 units in the p/i ratio:Logit = -0.232 + 1.005 + 1.151 (11.4076) - 0.291 (0) + 0.346 (0) + 0.428 (0) - 0.070 (5.0088) - 0.303 (0) + 0.054 (1) - 0.051 (0.02 - 0.00255)Logit = 2.1852

Now, the probability of being denied is calculated as follows:

Probability of denied = exp (Logit) / [1 + exp (Logit)]Probability of denied = exp (2.1852) / [1 + exp (2.1852)]Probability of denied = 0.8749

Therefore, the additive effect of a 0.05 unit increase in the p/i ratio on the probability that the mortgage application is denied for the average black applicant in the logit model is calculated as follows:

Additive effect = Probability of denied (new) - Probability of denied (original)Additive effect = 0.8749 - 0.8995Additive effect = -0.0246

The additive effect of a 0.05 unit increase in the p/i ratio on the probability that the mortgage application is denied for the average black applicant in the logit model is 0.0246.

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What is the electrical conductivity for an Ohmic conductor that has a number density of free electrons n = 1.1 × 10^29 per cubic meter and the collision time τ of 1.9 × 10^-14 s. The charge of electron is 1.6 × 10^-19 Coulomb, the mass of electron is m = 9.11 × 10^-31 kg?

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For the given problem, the electrical conductivity (σ) for an ohmic conductor is calculated as follows:

Electrical conductivity, σ is defined as the ratio of current density, J to the electric field intensity, Eσ = J/E

From Ohm’s law, we know that

J = σ × E where J is the current density, E is the electric field intensity and σ is the electrical conductivity. Now, consider a conductor with length l, cross-sectional area A, and number density of free electrons, n. The drift velocity, vd of electrons is given asvd = eEτ/m

where e is the charge of the electron, m is the mass of electron and τ is the relaxation time of electrons.

It can be written as J = nAe vd Putting the value of vd from the above equation, we getJ = nAe2τE/ml Now, we can substitute the value of J from Ohm’s lawσE = nAe2τE/ml

Thus,σ = ne2τ/m

The electrical conductivity for an Ohmic conductor with a number density of free electrons n = 1.1 × 1029 per cubic meter and the collision time τ of 1.9 × 10-14 s, is 4.21 × 107 S/m.


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Pls help
Objects with masses of 205 kg and a 505 kg are separated by 0.350 m. (a) Find the net gravitational force exerted by these objects on a 37.0 kg object placed midway between them. magnitude N direction

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The net gravitational force exerted by the 205 kg and 505 kg objects on a 37.0 kg object placed midway between them is: approximately 0.338 N and directed towards the center of the two objects.

To find the net gravitational force on the 37.0 kg object, we can use the formula for gravitational force:

F = G * (m1 * m2) / r²

Where:

F is the gravitational force,

G is the gravitational constant (approximately 6.674 × 10⁻¹¹) N(m/kg)²),

m1 and m2 are the masses of the objects, and

r is the distance between the centers of the objects.

In this case, we have two masses, 205 kg and 505 kg, and they are separated by a distance of 0.350 m. The 37.0 kg object is placed midway between them, so it is equidistant from both objects.

First, we calculate the force exerted by the 205 kg object on the 37.0 kg object:

F1 = G * (m1 * m3) / r²

= 6.674 × 10⁻¹¹ * (205 * 37.0) / (0.175)²

≈ 0.133 N

Next, we calculate the force exerted by the 505 kg object on the 37.0 kg object:

F2 = G * (m2 * m3) / r²

= 6.674 × 10⁻¹¹ * (505 * 37.0) / (0.175)²

≈ 0.205 N

The net gravitational force is the vector sum of these two forces:

Fnet = F1 + F2

= 0.133 N + 0.205 N

≈ 0.338 N

Since the 205 kg and 505 kg objects are symmetrically placed with respect to the 37.0 kg object, the net force is directed towards the center of the two objects.

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the potential energy of a particle constrained to move on the x-axis is given by u(x) = ax2 − bx

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When a particle is restricted to move on the x-axis, its potential energy is provided by the function u(x) = ax2 − bx, where a and b are constants. The energy is determined by the particle's position along the x-axis, which is why it is called a position-dependent function.

The potential energy of a particle is given by u(x) = ax2 − bx when constrained to move on the x-axis. The energy is dependent on the particle's position and the constants a and b. The energy of the particle changes as it moves along the x-axis because of the terms ax2 and bx. When x is squared, the energy increases, and when x is multiplied by b, the energy decreases. As a result, the energy is inversely proportional to x. In other words, when x increases, the energy decreases, and when x decreases, the energy increases. The function u(x) = ax2 − bx is commonly used in physics because it describes the potential energy of a particle in a particular position. When we know the function of potential energy, we can easily calculate the total energy of the particle by adding the kinetic energy to it. As a result, it is a very powerful tool in physics for solving problems that involve particles in motion.

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the electric field strength 2.0 cm from the surface of a 10-cm-diameter metal ball is 60,000 n/c.

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The electric field strength at a distance of 2.0 cm from the surface of a 10-cm-diameter metal ball is 60,000 N/C.

What is the magnitude of the electric field strength near the surface of a metal ball with a diameter of 10 cm at a distance of 2.0 cm?

The electric field strength measures the force experienced by a unit positive charge placed in an electric field. In this case, we have a metal ball with a diameter of 10 cm, which means its radius is 5 cm. The electric field strength is given as 60,000 N/C at a distance of 2.0 cm from the ball's surface.

The electric field strength near the surface of a charged conductor is directly proportional to the charge density on the surface. Since the metal ball is a conductor, the charge resides on the surface. The larger the charge density, the stronger the electric field will be.

Therefore, a high electric field strength of 60,000 N/C at a distance of 2.0 cm suggests a significant charge density on the ball's surface.

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select the correct answer. which electromagnetic wave has the lowest frequencies (less than 3×109 hertz)? a. microwaves b. visible light c. radio waves d. gamma rays

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Electromagnetic waves are transverse waves that are produced by the motion of electrically charged particles. The lowest frequencies (less than 3×109 hertz) are possessed by radio waves. Radio waves have a longer wavelength and a lower frequency than visible light, microwaves, and gamma rays. The correct answer is option C, radio waves.

The electromagnetic spectrum includes a variety of electromagnetic waves, each with a different wavelength and frequency. The electromagnetic waves with the lowest frequency are known as radio waves. They have frequencies that range from about 30 Hz to 300 GHz. Radio waves are used to transmit signals for radio and television broadcasting, mobile phones, and wireless communication devices. Radio waves have a wavelength that ranges from 1 millimeter to 100 kilometers.

They are used in a variety of fields, including communication, navigation, and scientific research. Radio waves are used in radio and television broadcasting, satellite communication, radar systems, and wireless communication devices. They are also used in medical applications, such as magnetic resonance imaging (MRI) and positron emission tomography (PET) scans.

Radio waves are used in a variety of applications because they can penetrate solid objects and travel long distances without losing their energy. They are also used in space exploration to communicate with spacecraft and other probes. Radio waves are a vital part of our modern world, and their applications are endless.

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The vector (3,5) has terminal point (- 20,9). The initial point of the vector is:
A vector with magnitude 8 points in a direction 115 degrees counterclockwise from the positive x axis. Write the vect

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The initial point of the vector (3,5) with the terminal point (-20,9) is (23, -4).

Let's denote the initial point of the vector by (a, b). We can determine the initial point of the vector by subtracting the coordinates of the terminal point from the coordinates of the initial point as follows:(a, b) - (-20, 9) = (3, 5)So we have the following system of equations: a + 20 = 3b - 9 = 5Solving this system of equations, we get a = 23 and b = -4. Hence the initial point of the vector is (23, -4). The given vector has magnitude 8 and points in a direction 115 degrees counterclockwise from the positive x axis. Let's denote this vector by →v. To write the vector →v in terms of its components, we need to determine the horizontal and vertical components of the vector .Using the angle of 115 degrees, we can determine that the direction of the vector is the quadrant II.

Thus, the horizontal component of the vector is negative, and the vertical component of the vector is positive. We have:\[\begin{aligned} \cos(115^\circ) &= -\cos(180^\circ - 115^\circ) \\ &= -\cos(65^\circ) \\ &= -\frac{4}{5} \end{aligned}\]Thus, the horizontal component of the vector is -8cos(115°) = 6.4 (rounded to one decimal place).Similarly, we have:\[\begin{aligned} \sin(115^\circ) &= \sin(180^\circ - 115^\circ) \\ &= \sin(65^\circ) \\ &= \frac{3}{5} \end{aligned}\]Thus, the vertical component of the vector is 8sin(115°) = 4.8 (rounded to one decimal place).Therefore, the vector →v can be written as →v = (6.4, 4.8).

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Two possible units of magnetic field are named after famous western scientists, choose two units of magnetic field from the list below. Select one or more: Weber Amp Tesla Lorentz Gauss Volt

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Two units of magnetic field named after famous Western scientists are Weber and Gauss.

In electromagnetism, the magnetic field is a vector field that represents the magnetic effects of electric charges in motion. The magnetic field is defined as a field in which an electric charge will experience a magnetic force. It is produced by electric charges and currents. A magnetic field is created by a magnet or a moving electric charge or other magnetic fields.

The strength of a magnetic field is determined by the number of magnetic field lines or magnetic fluxes that pass through a surface placed perpendicular to the direction of magnetic field lines. It is calculated in the unit of Tesla (T). In addition to Tesla, there are two other units of magnetic field named after famous Western scientists: Gauss and Weber. A magnetic field with a strength of one gauss is equivalent to one ten-thousandth (0.0001) of a Tesla.

Gauss is a unit of magnetic flux density and is named after the famous German mathematician Carl Friedrich Gauss. Weber is named after Wilhelm Eduard Weber, and it is a unit of magnetic flux. The Weber is equivalent to the magnetic flux that crosses one square meter of surface area at right angles to a magnetic field of one tesla.

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a student designing an electric scooter uses a simple column type load cell with two strain gauges

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A load cell is an essential sensor device used for converting a force, torque, pressure, or displacement into an electrical signal. It is a key component in electronic scales, force measuring instruments, and weighing devices. A student who designs an electric scooter uses a simple column type load cell with two strain gauges.

The load cell measures force or weight by converting the tension or compression acting on the load cell into an electrical signal. A load cell typically comprises four strain gauges that are arranged in a Wheatstone bridge configuration. A column type load cell is cylindrical in shape and is designed to measure loads in compression. It typically comprises two columns that are connected by a metal diaphragm. Two strain gauges are attached to the columns, one for measuring the compressive strain and the other for measuring the tensile strain.

The student designing an electric scooter uses a load cell to measure the weight of the rider and other loads on the scooter. The load cell is typically placed at the bottom of the scooter's frame, and the weight of the rider and the scooter is applied to it. The load cell measures the weight by converting the compression force acting on it into an electrical signal. The two strain gauges attached to the columns of the load cell measure the compressive and tensile strains, respectively. These strains are converted into an electrical signal using a Wheatstone bridge circuit, and the output of the bridge is proportional to the weight applied to the load cell.The student designing the electric scooter needs to select the right load cell for the application. The load cell must be able to measure the maximum weight that the scooter can carry. The column type load cell is suitable for measuring loads in compression, which is ideal for measuring the weight of the rider and the scooter. The two strain gauges attached to the columns of the load cell help to increase the sensitivity and accuracy of the load cell. The Wheatstone bridge circuit helps to convert the strain measurements into an electrical signal that can be processed by the scooter's control system.

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Which of the three following observations during a space weather event is most likely to correlate to major economic damage? Which is the least likely? Why? 1. 4000 nT/min magnetic disturbance observe

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The observation of a 4000 nT/min magnetic disturbance is most likely to correlate to major economic damage, while the observation of a solar flare is least likely to correlate to major economic damage.

Which of the three following observations during a space weather event is most likely to correlate to major economic damage and why?

The observation of a 4000 nT/min magnetic disturbance is most likely to correlate to major economic damage, as it indicates a significant disruption in the Earth's magnetic field, which can affect power grids, communication systems, and navigation systems.

On the other hand, the least likely observation to correlate to major economic damage would be the observation of a solar flare, as its impact on economic systems is relatively limited compared to other space weather events.

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an alpha particle (charge 2e, mass 6.64×10-27) moves head-on at a fixed gold nucleus (charge 79e). if the distance of closest approach is 2.0×10-10m, what was the initial speed of the alpha particle?

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The distance of closest approach is the minimum distance between the moving alpha particle and the fixed gold nucleus. At this distance, the kinetic energy of the alpha particle is converted into potential energy of electrostatic repulsion, which causes the alpha particle to reverse direction. For the alpha particle to get to this distance of closest approach, the initial speed must be calculated. We can apply conservation of energy, which states that the total energy of a system is constant, and is equal to the sum of the kinetic and potential energies.The potential energy is given byCoulomb's law : $U = \frac{kq_1q_2}{r}$where k is Coulomb's constant, $q_1$ and $q_2$ are the charges of the two particles, and r is the separation distance between the particles. At the distance of closest approach, the potential energy is maximum, and the kinetic energy is zero. Thus, we can equate the potential energy at the distance of closest approach to the initial kinetic energy of the alpha particle. That is,$U = \frac{kq_1q_2}{r} = \frac{2(79)e^2}{4\pi\epsilon_0(2.0\times10^{-10})}$ $= 9.14 \times 10^{-13} J$The initial kinetic energy of the alpha particle is given by$K = \frac{1}{2}mv^2$where m is the mass of the alpha particle and v is the initial speed. We can equate K to U. That is,$\frac{1}{2}mv^2 = \frac{kq_1q_2}{r}$Substituting the values,$\frac{1}{2}(6.64\times10^{-27})v^2 = 9.14\times10^{-13}$Solving for v,$v^2 = \frac{2(9.14\times10^{-13})}{6.64\times10^{-27}}$$v = 2.21\times10^7 m/s$Thus, the initial speed of the alpha particle is $2.21\times10^7 m/s$.

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A 70 kg person is standing on the floor in the sky train. The coefficient of friction between the floor and the person’s shoes is 0.5. The sky train accelerates at 2 m/s^2 for 3s. What is the actual force of friction between the person’s shoes and the floor.

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The actual force of friction between the person’s shoes and the floor is 343 N.

To find out the actual force of friction between the person's shoes and the floor in the given scenario, we can use the formula of frictional force.

Frictional force = Normal force x coefficient of friction.

Here, the normal force is the force with which the person is pressing against the floor. It is equal to the person's weight (mass x gravity). Thus, Normal force = 70 kg x 9.8 m/s^2 = 686 N.

Now, we can substitute the given values in the formula of frictional force to get the actual force of friction.

Frictional force = 686 N x 0.5 = 343 N.

Thus, the actual force of friction between the person's shoes and the floor is 343 N.

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The results of Rutherford's experiment, in which alpha particles were fired toward thin metal foils, were surprising because
__________.
A) two alpha particles emerged from the foil for every alpha that entered
B) some of the alpha particles were reflected almost straight backward
C) some alpha particles were destroyed in collisions with the foil
D) beta particles were created

Answers

The results of Rutherford's experiment, in which alpha particles were fired toward thin metal foils, were surprising because (B) some of the alpha particles were reflected almost straight backward.

Rutherford's experiment, commonly known as the gold foil experiment, involved firing alpha particles (positively charged particles) at a thin metal foil. According to the prevailing model at the time, the plum pudding model, it was expected that the alpha particles would pass through the foil with minimal deflection.

However, the actual results of the experiment were surprising. Rutherford observed that some of the alpha particles were deflected at large angles, and, most notably, some were even reflected almost straight backward. This indicated that the positive charge and mass of the atom were concentrated in a small, dense region within the atom, which later became known as the atomic nucleus. This discovery led to the development of the nuclear model of the atom and revolutionized our understanding of atomic structure.

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a small, 300 g g cart is moving at 1.50 m/s m / s on a frictionless track when it collides with a larger, 5.00 kg k g cart at rest. after the collision, the small cart recoils at 0.870 m/s m / s .
what is the speed of the large cart after the collision?

Answers

After the collision, the velocity of the small cart is 0.870 m/s.  The speed of the large cart after the collision is 0.027 m/s.

We can find the velocity of the large cart after the collision by applying the law of conservation of momentum which states that the total momentum of an isolated system remains constant if no external force acts on it.

Before the collision, the total momentum of the system was:

300 g × 1.50 m/s = 0.45 kg m/s

The momentum after the collision will also be 0.45 kg m/s since there is no external force acting on the system. The total momentum of the system after the collision can be expressed as the sum of the momenta of the two carts. Therefore, we can use the following equation to find the velocity of the large cart: 0.45 kg m/s = 0.3 kg × 0.870 m/s + 5 kg × v v = 0.027 m/s

The speed of the large cart after the collision is 0.027 m/s.

Here we have been given mass and velocity of two carts. These carts collide with each other and after the collision, the small cart recoils. We have to find out the velocity of the large cart after the collision.

For that, we will use the law of conservation of momentum which states that the total momentum of an isolated system remains constant if no external force acts on it.

Mathematically it can be written as:

M₁v₁ + M₂v₂ = M₁u₁ + M₂u₂

Here, M₁ = 0.3 kg, v₁ = 1.5 m/s (velocity of the small cart before collision), M₂ = 5 kg, v₂ = 0 m/s (velocity of the large cart before collision), u₁ = 0.87 m/s (velocity of the small cart after collision), and we have to find out the velocity of the large cart after collision which is u₂.

Using the above formula, we can write:

0.3 × 1.5 + 5 × 0 = 0.3 × 0.87 + 5 × u₂u₂ = 0.027 m/s

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James (mass 81.0 kg) and Ramon (mass 67.0 kg) are 20.0 m apart on a frozen pond. Midway between them is a mug of their favorite beverage. They pull on the ends of a light rope stretched between them. Ramon pulls on the rope to give himself a speed of 1.10 m/s. James (mass 81.0 kg) and Ramon (mass 67.0 kg) are 20.0 m apart on a frozen pond. Midway between them is a mug of their favorite beverage. They pull on the ends of a light rope stretched between them. Ramon pulls on the rope to give himself a speed of 1.10 m/s. Part A What is James's speed?

Answers

James (mass 81.0 kg) and Ramon (mass 67.0 kg) are 20.0 m apart on a frozen pond: James's speed is 0.91 m/s.

According to the law of conservation of momentum, the total momentum before and after an interaction remains constant if no external forces act on the system. In this scenario, the momentum of the system is conserved when Ramon pulls on the rope and gains a speed of 1.10 m/s.

We can start by calculating the total momentum of the system before the interaction. The momentum is given by the product of mass and velocity. Since there are no external forces, the initial total momentum is zero.

0 = (mass of James) * (velocity of James) + (mass of Ramon) * (velocity of Ramon)

We can rearrange the equation to solve for the velocity of James:

(velocity of James) = - [(mass of Ramon) * (velocity of Ramon)] / (mass of James)

Plugging in the given values:

(velocity of James) = - [(67.0 kg) * (1.10 m/s)] / (81.0 kg) ≈ -0.91 m/s

The negative sign indicates that James moves in the opposite direction of Ramon. Therefore, James's speed is approximately 0.91 m/s.

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The fundamental frequency of a pipe that is open at both ends is 594 Hz .
How long is this pipe?
If one end is now closed, find the wavelength of the newfundamental.
If one end is now closed, find the frequency of the newfundamental.

Answers

When one end is closed, the new wavelength is 1.154 m and the new fundamental frequency is 297 Hz.

The fundamental frequency of a pipe that is open at both ends is 594 Hz. In order to calculate the length of this pipe, we will use the formula v = fλ where v is the speed of sound, f is the frequency and λ is the wavelength.

The speed of sound in air is approximately 343 m/s.

We will therefore have: 594 = (343/λ)λ = (343/594)m = 0.577m or 57.7cm.

If one end of the pipe is now closed, it will act as a closed-end resonator which means that the wavelength will now be twice the length of the pipe.

Therefore, the new wavelength will be 2(0.577) = 1.154 m or 115.4 cm.

Using the formula v = fλ and substituting the new wavelength and speed of sound, we have 343 = f(1.154) which gives us the new fundamental frequency f as:

f = 297 Hz.

Thus, the length of the pipe that is open at both ends is 57.7 cm. When one end is closed, the new wavelength is 1.154 m and the new fundamental frequency is 297 Hz.

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answer all please
9. A in. diameter punch is used to punch a hole through a steel plate in. thick. The force necessary to drive the punch through the plate is 60,000 lb. Compute the shear stress developed in the plate.

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Diameter punch is used to punch a hole through a steel plate that is in. thick and the force required to push the punch through the plate is 60,000 lb. The shear stress developed in the plate is 76,394 psi.

The objective is to calculate the shear stress developed in the plate. The formula for shear stress is given as follows:Shear stress (τ) = Force (F) / Area (A)The force required to drive the punch through the plate is 60,000 lb. The punch diameter is given as d = 1 inch.

The area of the punch can be calculated as follows:Area of the punch (A) = (π / 4) × d²where d = 1 inchA = (π / 4) × (1)²A = (3.1416 / 4) × 1A = 0.7854 in² The area of the punch is 0.7854 in².The area of the plate is equal to the area of the hole in the plate.

Area of the plate (A) = (π / 4) × d²where d = diameter of the hole in the plate.The diameter of the punch is 1 inch. Therefore, the diameter of the hole in the plate will also be 1 inch.The area of the plate is given by:A = (π / 4) × (1)²A = 0.7854 in²

The area of the plate is 0.7854 in².Substituting the values of force and area in the formula for shear stress, we get:Shear stress (τ) = Force (F) / Area (A)τ = 60,000 lb / 0.7854 in²τ = 76,394 psi  

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A gas contains 75.0 wt % propane, 13.0 wt% n-butane, and the balance water. a)Calculate the molar composition of this gas on both a wet and a dry basis and the ratio (mol H2O/mol dry gas). b) If 100 kg/h of this fuel is to be burned with 25% excess air, what is the required air feed rate (kmol/h)? How would the answer change if the combustion were only 65% complete? 4.68. Butane is burned with air. No carbon monoxide is present in the combustion products. a)Use a degree-of-freedom analysis to prove that if the percentage excess air and the percentage conversion of butane are specified, the molar composition of the product gas can be determined. b) Calculate the molar composition of the product gas for each of the following three cases: (i)theoretical air supplied,100% conversion of butane; (ii)30% excess air,100% conversion of butane; and (iii)30% excess air, 90% conversion of butane.

Answers

a) On a wet basis, the molar composition of the gas is approximately 0.813 mol propane, 0.055 mol n-butane, and 0.132 mol water. The ratio of mol H₂O to mol dry gas is 0.162 mol H₂O/mol dry gas.

b) The required air feed rate is approximately 65.9 kmol/h. If the combustion were only 65% complete, the required air feed rate would increase to approximately 101.4 kmol/h.

a) To calculate the molar composition on a wet basis, we convert the weight percentages to mole fractions using the molar masses of propane, n-butane, and water. The molar composition is determined by dividing the weight percentage by the respective molar mass and normalizing the values to sum up to 1. The ratio of mol H₂O to mol dry gas is determined by dividing the mol water by the sum of mols of propane and n-butane.

b) To calculate the required air feed rate, we use the stoichiometry of the combustion reaction between butane and air. The balanced equation shows that 1 mol of butane reacts with 13.5 mol of air. Considering the 25% excess air requirement, we multiply the stoichiometric air requirement by 1.25. If the combustion is only 65% complete, the remaining butane requires additional air to achieve complete combustion. Therefore, the required air feed rate increases to account for the unreacted butane.

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how far from a concave mirror (radius 25.4 cm ) must an object be placed if its image is to be at infinity?

Answers

The object should be placed at a distance equal to the focal length of the mirror. In this case, the object should be placed at a distance of 25.4 cm from the mirror to produce an image that appears to be at infinity.

A concave mirror is a mirror with a curved reflective surface. When light rays hit a concave mirror, the mirror will reflect the rays inward, toward a focal point. A concave mirror's focal point is located along the mirror's axis of symmetry, halfway between the mirror's surface and its center of curvature. A concave mirror with a radius of curvature of 25.4 cm is used to project an image that appears to be at infinity. If the object is placed at a distance of 25.4 cm from the mirror, the image will be projected at infinity.

A concave mirror is a spherical mirror whose reflecting surface is curved inwards. A concave mirror is also known as a converging mirror since it reflects light that is converging towards the mirror's surface. The principal axis of a concave mirror is the line joining the center of curvature to the midpoint of the mirror's surface.A concave mirror is a curved mirror that is reflective on the inside of the curve. Because it reflects light inwards, it is also known as a converging mirror. The principal axis of a concave mirror is the line that connects the midpoint of the mirror to the center of curvature.

The formula for finding the distance from an object to a concave mirror when the image is at infinity is given as:1/f = 1/dob + 1/diwheref = focal length of the mirror;dob = distance of the object from the mirror; anddi = distance of the image from the mirror.If the image is at infinity, then the di can be taken as infinity. We can then simplify the above formula as:1/f = 1/dob + 0d_ob = fSo, the object should be placed at a distance equal to the focal length of the mirror. In this case, the object should be placed at a distance of 25.4 cm from the mirror to produce an image that appears to be at infinity.

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A pool ball moving 1. 83 m/s strikes an identical ball at rest. Afterward, the first ball moves 1. 15 m/s at a 23. 3° angle. What is the x-component of the velocity of the second ball?​

Answers

the x-component of the velocity of the second ball is 1.25 m/s.

Given,

Initial velocity of the first ball, u₁ = 1.83 m/s

Final velocity of the first ball, v₁ = 1.15 m/s

Initial velocity of the second ball, u₂ = 0 m/s (as it is at rest)

Let v₂ be the final velocity of the second ball at an angle θ with the horizontal.

Using the principle of conservation of momentum, we get,

m₁u₁ + m₂u₂ = m₁v₁ + m₂v₂

Here, m₁ = m₂ = m (both the balls are identical)

Therefore,

mu₁ = (m + m)v₂

=> u₁ = 2v₂

=> v₂ = u₁/2

= 1.83/2 = 0.915 m/s

Now, using the principle of conservation of energy, we get,1/2 mu₁² = 1/2 mv₁² + 1/2 mv₂²

=> u₁² = v₁² + v₂² => v₂² = u₁² - v₁²v₂² =

(1.83)² - (1.15)²v₂ = √(1.83² - 1.15²)

= 1.35 m/s

Now, to find the x-component of the velocity of the second ball, we use the formula,

x-component of velocity of the second ball = v₂ cos θ= 1.35 cos 23.3°= 1.25 m/s (approx)

Therefore, the x-component of the velocity of the second ball is 1.25 m/s.

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The sun's energy comes from nuclear fusion reactions in which protons, the nuclei of hydrogen atoms, are squeezed together at very high temperature and pressure to form the nucleus of a helium atom. The process requires three steps, but the overall fusion reaction is 4'H→ He +2e +energy How much energy is released in this reaction? Express your answer in joules. 197| ΑΣΦ Xb √x x x E- 2.928 10-12 . داد che EXT X-10" XI 10

Answers

The energy released in the fusion reaction of four hydrogen nuclei into a helium nucleus is approximately [tex]8.316 \times 10^{-14}[/tex] joules per mole, as calculated using Einstein's mass-energy equivalence equation. This reaction represents the source of the Sun's energy.

In the fusion reaction described, four hydrogen nuclei (protons) combine to form a helium nucleus, releasing energy in the process.

To determine the amount of energy released, we can calculate the mass difference between the reactants (four hydrogen nuclei) and the products (helium nucleus, two electrons), using Einstein's mass-energy equivalence equation, E = mc².

The mass of four hydrogen nuclei (4'H) is approximately 4.032 g/mol, while the mass of a helium nucleus (He) is approximately 4.0026 g/mol. The mass of two electrons is approximately 0.00002 g/mol.

The mass difference can be calculated as follows:

Δm = (4 x 4.032 g/mol) - (1 x 4.0026 g/mol + 2 x 0.00002 g/mol) = 0.0292 g/mol

Converting the mass difference to kilograms, we have Δm =[tex]0.0292 \times 10^{-3}[/tex] kg/mol.

Using the equation E = mc², where c is the speed of light (approximately 3 x 10^8 m/s), we can calculate the energy released:

[tex]E = (0.0292 \times 10^{-3} kg/mol) \times (3 \times 10^8 m/s)^2 = 8.316 \times 10^{-14} J/mol[/tex]

Therefore, the amount of energy released in this fusion reaction is approximately [tex]8.316 \times 10^{-14}[/tex] joules per mole.

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What is the velocity of a wave that has a frequency of 200 Hz and a wavelength of 0. 50 m

Answers

The velocity of the wave is calculated as to be equal to 100 m/s. To calculate the velocity of a wave, we use the formula as : v = fλv.

The velocity of a wave that has a frequency of 200 Hz and a wavelength of 0.50 m is 100 m/s. The formula for calculating the velocity of a wave is given by:

v = fλ, where v is the velocity of the wave, f is the frequency of the wave, and λ is the wavelength of the wave.

To calculate the velocity of a wave, we use the formula : v = fλv

Substituting the given values into the formula

= (200 Hz)(0.50 m)v

= 100 m/s

Therefore, the velocity of the wave is 100 m/s.

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Two 11 g ice cubes are dropped into 190 g of water in a glass.
The water was initially at 5 ∘C and the ice at -17 ∘C.
Find the final temperature of the water once the ice has all
melted. Assume th

Answers

When two 11 g ice cubes are added to 190 g of water at 5 °C, the final temperature of the water, after the ice has melted, is approximately 7.37 °C, assuming no heat loss to the surroundings.

The final temperature of the water can be found  once the ice has melted, we can use the principles of energy conservation and heat transfer.

Let's assume that no heat is lost to the surroundings during the process.

First, we calculate the heat gained by the ice to melt. The heat gained (Q) is given by the equation Q = m × ΔHf, where m is the mass of the ice and ΔHf is the heat of fusion.

Since there are two 11 g ice cubes, the total mass of the ice is 22 g.

Next, we calculate the heat lost by the water to cool down from 5 °C to the final temperature ([tex]T_f[/tex]).

The heat lost (Q) is given by the equation Q = m × c × ΔT, where m is the mass of the water, c is the specific heat capacity of water, and ΔT is the change in temperature.

Once all the ice has melted, the heat gained by the ice equals the heat lost by the water. So we can set up the equation:

m × ΔHf = m × c × ΔT

Substituting the known values, we get:

22 g × (0 °C - (-17 °C)) = 190 g × 4.18 J/g°C × ([tex]T_f[/tex] - 0 °C)

Simplifying the equation, we can solve for [tex]T_f[/tex]:

(22 g × 17 °C) / (190 g × 4.18 J/g°C) = [tex]T_f[/tex]

[tex]T_f[/tex] ≈ 7.37 °C

Therefore, the final temperature of the water, once the ice has melted, is approximately 7.37 °C.

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9. A fly accumulates 1.0 x 10-¹0 C of positive charge as it flies through the air. What is the magnitude and direction of the electric field at a location 2 cm awa from the fly? Most Positive (+ Rabb

Answers

The magnitude of the electric field at a location 2 cm away from a fly with a positive charge of 1.0 x 10⁽⁻¹⁰⁾ C is approximately 2.2475 x 10⁽⁻⁶⁾  N/C. The electric field is directed radially outward from the fly.

The magnitude and direction of the electric field at a location 2 cm away from the fly, we can use Coulomb's Law, which states that the electric field (E) created by a point charge is given by:

E = k * (|Q| / r²)

Where k is the electrostatic constant (k ≈ 8.99 × 10⁹ N m²/C²), |Q| is the magnitude of the charge, and r is the distance from the charge.

|Q| = 1.0 × 10⁽⁻¹⁰⁾) C

r = 2 cm = 0.02 m

Substituting the given values into the formula:

E = (8.99 × 10⁹ N m²/C²) * (1.0 × 10⁽⁻¹⁰⁾ C) / (0.02 m)²

E ≈ 2.2475 × 10⁽⁻⁶⁾  N/C

The magnitude of the electric field is approximately 2.2475 × 10⁽⁻⁶⁾  N/C.

Since the charge is positive, the direction of the electric field will be radially outward from the charge. Therefore, the direction of the electric field at a location 2 cm away from the fly is away from the fly, in the outward direction.

So, the magnitude of the electric field is approximately 2.2475 × 10⁽⁻⁶⁾ N/C, and its direction is away from the fly.

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a child on a merry-go-round takes 4.4 s to go around once. what is his angular displacement during a 1.0 s time interval?

Answers

The child's angular displacement during a 1.0 s time interval is approximately 1.432 radians.

To determine the angular displacement of the child on the merry-go-round during a 1.0 s time interval, we can use the formula:

Angular Displacement (θ) = Angular Velocity (ω) × Time (t)

The angular velocity (ω) can be calculated by dividing the total angular displacement by the total time taken to complete one revolution.

In this case:

Time taken to go around once (T) = 4.4 s

Angular Velocity (ω) = 2π / T

Angular Velocity (ω) = 2π / 4.4 s ≈ 1.432 radians/s

Now, we can calculate the angular displacement during a 1.0 s time interval:

Angular Displacement (θ) = Angular Velocity (ω) × Time (t)

Angular Displacement (θ) = 1.432 radians/s × 1.0 s

Angular Displacement (θ) ≈ 1.432 radians

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The angular displacement of the child during a 1.0 s time interval is 1.44 radian. The given values are, Time taken by the child to go around once, t = 4.4 s Time interval, t₁ = 1 s

Formula used: Angular displacement (θ) = (2π/t) × t₁. Substitute the given values in the formula, Angular displacement (θ) = (2π/t) × t₁= (2π/4.4) × 1= 1.44 radian. Thus, the angular displacement of the child during a 1.0 s time interval is 1.44 radian.

The change in the angular position of an object or a point in a rotational system is known as angular displacement and it measures the amount and direction of rotation from an initial position to a final position. Angular displacement is an important concept in physics and engineering, as it helps to describe a rotational motion.

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how to calculate distance of a sensor from a charge electric field

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The distance of a sensor from a charged electric field can be calculated by using Coulomb's law. Coulomb's law provides a mathematical expression for the electrostatic force between two charged objects. This law states that the force between two point charges is directly proportional to the product of the charges and inversely proportional to the square of the distance between them.

The equation for Coulomb's law is:F = k q1 q2 / r²where F is the electrostatic force, q1 and q2 are the charges of the two objects, r is the distance between the two objects, and k is the Coulomb constant.

Using this equation, we can rearrange it to solve for the distance between two charged objects: r = sqrt(k q1 q2 / F)So, to calculate the distance of a sensor from a charged electric field, we need to know the electrostatic force between the two objects and the charges of the two objects.

Once we have these values, we can use the above equation to calculate the distance between them.

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