Car A rear ends Car B, which has twice the mass of A, on an icy road at a speed low enough so that the collision is essentially elastic. Car B is stopped at a light when it is struck. Car A has mass m and speed v before the collision. After the collision.. A)each car has half the impulse of before B)each car has double the impulse of before C)each car have the same impulse D)each car has an impulse in ratio to its mass.

Answers

Answer 1

We are given the following information.

The collision is elastic.

Car B has twice the mass of car A.

Recall that in an elastic collision, the momentum and the kinetic energy are conserved.

Impulse is basically the change in momentum.

Since car B has 2 times the mass of car A, the momentum of car B will be 4 times the momentum of car A.

This means that the impulse of car B will be greater than the impulse of car A.

Option D says that each car has an impulse in ratio to its mass meaning that a car with a larger mass will have a larger impulse and vice versa.

Therefore, we can conclude that after the collision, each car has an impulse in ratio to its mass.


Related Questions

what is the mass on grams of 0.56 moles of NaCl

Answers

Answer:

1 mole of Na = 23 g

1 mole of Cl = 35 g

1 mole of NaCl = 58 g

.56 * 58 g = 32.5 g

A/An _____ is described as a device that is used to measure potential difference across any part of a circuit.ammeterfuseground fault interruptervoltmeter

Answers

Answer:

[tex]\text{Voltmeter}[/tex]

Explanation: We need to find an instrument that measures potential difference across any part of the circuit, a potential difference is basically voltage difference across a circuit difference and the device used to measure this difference is known as:

[tex]\text{ Voltmeter}[/tex]

Voltmeter used in a circuit

A mass of 0.520 kilograms is attached to a spring and lowered into a resting position, causing the spring to stretch 18.7 centimeters. The mass is then lifted up and released. a. What is the spring constant of the spring? Include units in your answer.b. What is the frequency of its oscillation? Include units in your answer.Answer must be in 3 significant digits.

Answers

Given data

*The given mass is m = 0.520 kg

*The spring stretches at a distance is x = 18.7 cm = 0.187 m

*The value of the acceleration due to gravity is g = 9.8 m/s^2

(a)

The formula for the spring constant of the spring is given as

[tex]\begin{gathered} F=kx \\ mg=kx \\ k=\frac{mg}{x} \end{gathered}[/tex]

Substitute the known values in the above expression as

[tex]\begin{gathered} k=\frac{(0.520)(9.8)}{(0.187)} \\ =27.2\text{ N/m} \end{gathered}[/tex]

Hence, the spring constant of the spring is k = 27.2 N/m

(b)

The formula for the frequency of its

Example of a balanced force

Answers

An example of a balanced force would be a book sitting on a shelf untouched.

Isaac Newton’s First Law of Motion states that an object at motion stays in motion, and an object at rest stays at rest until acted on by an unbalanced force. A book sitting still is an example of a balanced force because nothing is acting on it; its potential energy is stored while it’s at rest. For this book to become an unbalanced force, an outside force would have to occur (i.e pushing the book or dropping it) that causes it to not be in a state of stillness.

if you had only one telescope and wanted to take both visible-light and ultraviolet pictures of stars, where should you locate your telescope?

Answers

If we just had one telescope and wanted to photograph stars in both visible and ultraviolet light, we should put it in space.

While visible light is observable from Earth, ultraviolet light can only be seen from space. Indeed, Hubble's ability to observe ultraviolet light gives it a major advantage over larger ground-based observatories.

Rank the visible light hues from left to right according to the altitude in the atmosphere where they are totally absorbed. All visible light wavelengths reach the Earth's surface, which is why we can see all colors and why visible-light telescopes perform well on the ground.

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What physical property is described in the following statement?: The asphaltis smooth.O A. TextureO B. ShapeO C. HardnessO D. SizeSUBMIT

Answers

A. Texture

Texture is the feel or appearence of a surface.


5. Draw a transverse wave with two wavelengths and label amplitude, crest, trough, and
equilibrium position.

Answers

A wave is considered to be transverse if its oscillations run counterclockwise to the wave's direction of advance. A longitudinal wave, on the other hand, moves in the direction of its oscillations. Transverse waves include water waves.

A waveform signal's wavelength, which is the distance between two identical locations (adjacent crests) in the succeeding cycles, determines whether it is sent through space or via a wire. This length is typically defined in wireless systems in metres (m), centimetres (cm), or millimetres (mm).

The largest displacement or distance made by a point on a wave or vibrating body relative to its equilibrium position is its amplitude. It is equal to one-half of the vibration path.

The crest and trough of a wave, respectively, are its highest and lowest surface portions. The wave height is the vertical distance between the peak and trough. The wavelength is the horizontal separation between two consecutive crests or troughs.

The horizontal line at the wave's centre stands in for balance. A period is the length of time it takes to complete a cycle, which includes travelling from one peak to another, from one trough to another, or from one equilibrium point to another (both equilibrium points same direction).

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which of the following are independent of the mass of an object falling freely near earth's surface: (may have more than 1 answer) 1) acceleration of the object 2) gravitational force acting on the object 3) gravitational force acting on the object 4) magnitude of the gravitational field

Answers

As the object is falling freely, the acceleration of the object will be equal to the acceleration due to gravity.

It is given as,

[tex]g=\frac{GM}{R^2}[/tex]

Here, G is the univarshal gravitational constant and M is the mass of the Earth.

means acceleration of the object is constant and independent of the mass of the object.

so option 1 is correct.

now the gravitational force on that object is,

[tex]F=\frac{GMm}{R^2}[/tex]

here this is dependent on the mass of the object(m).

NOw the gravitational field means the force per unit mass and is given by,

[tex]E=\frac{GM}{R^2}[/tex]

Here we can se that this gravitational field is also independent of the mass of the object.

So, option 1 and 4 are correct.

What is the difference in the path of a ball tossed straight up in the air by a passenger on a a bus from the view point of the passenger, and the person on the street?​

Answers

The difference in the path of a ball tossed straight up in the air by a passenger on a a bus from the view point of the passenger, and the person on the street is that the ball would appear to the passenger to be making an up and down movement when the ball is thrown up, while the stationary observer will actually see the ball moving along a parabolic path.

What is a parabolic path?

A parabolic path is described as a Kepler orbit with the eccentricity equal to 1 and is an unbound orbit that is exactly on the border between elliptical and hyperbolic.

The Parabolic path is also defined as the angle of trajectory of a projectile.

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A 228-turn, 24.506-cm-diameter coil is at rest in a horizontal plane. A uniform magnetic field 27 degrees away from vertical increases from 0.807 T to 4.68 T in 13.843 s. Determine the emf induced in the coil.

Answers

Given:

• Number of turns, N = 228

,

• Diameter, d = 24.506 cm

,

• θ = 27 degrees

,

• Initial Magnetic field, B1 = 0.807 T

,

• Final, B2 = 4.68 T

,

• Time , t = 13.843 s

Let's find the induced emf in the coil.

To find the induced EMF, apply Faraday's law:

[tex]\begin{gathered} E=N\frac{d}{dt}(B*A) \\ \\ E=N*Acos\theta\frac{d}{dt}(B) \\ \\ E=N*(\pi r^2)cos\theta(\frac{B_2-B_1}{t}) \end{gathered}[/tex]

Where:

A is the area in meters.

Rewrite the diameter from cm to meters.

Where:

100 cm = 1 meters

24.056 cm = 0.24506 m

Now, the radius will be:

radius = diameter/2 = 0.24506/2 = 0.12253 m

Now, plug in the values and solve for E:

[tex]\begin{gathered} E=228*(\pi *(0.12253)^2)cos(27)*(\frac{4.68-0.807}{13.843}) \\ \\ E=228*0.0471666*cos(27)*0.27978 \\ \\ E=2.6\text{ volts} \end{gathered}[/tex]

Therefore, the EMF induced in the coil is 2.6 volts.

ANSWER:

2.6 v

If Hubble's constant had a value of 95 km/s/Mpc, what would be the age of the Universe?

Answers

The age of universe will be 0.0103 million years.

Hubble's law states that the rate at which any galaxy is receding from another galaxy is proportional to its distance from the galaxy. In simple form,

v = H₀ × d

where v is the velocity of the galaxy, d is its distance, and H₀ is the Hubble's constant.

Given: Hubble's constant, H₀ = 95 km/s/Mpc.

The term 1 / H₀ is called the Hubble's time and gives the age of the universe.  That is, if 't' is the age of the universe, then

t = 1 / H₀.

Substitute the given value.

⇒ t = 1 / (95 km/s/Mpc)

(1 pc = 3.086 ×[tex]10^{13}[/tex] km)

⇒ t = 1 / (95/3.086 ×[tex]10^{13}[/tex] ) s

⇒ t = (1 / 30.784) ×[tex]10^{13}[/tex]  s

⇒ t = 0.0325 ×[tex]10^{13}[/tex]  s

(1 year = 3.154 ×[tex]10^{7}[/tex]  s)

⇒ t = 10305.68 years

⇒ t = 0.0103 million years

Therefore, the age of universe will be 0.0103 million years.

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Below is a diagram of a 5.0 kg block being dragged to the right, along a horizontal surface. The
coefficient of dynamic friction, is 0.40. Take acceleration due to gravity, g, as 9.81 ms ².
5 kg
30. N
What is the acceleration of the block? Give your answer correct to two significant figures, in
m-s-2, without units.

Answers

The acceleration of the block when the coefficient of friction is 0.40 is 3.924 m/s².

The ratio of the frictional resistive force to the perpendicular force pushing the objects together is known as the coefficient of friction.

Acceleration is the rate at which an object's velocity with respect to time changes.

The block of mass 5 kg is dragged to the right on a horizontal surface.

The coefficient of friction is 0.40.

The acceleration due to gravity is 9.81 m/s².

The force on the block is 30 N.

Now, the force is defined as the product of the mass and acceleration of the object.

Now, using the conservation of force:

F = μmg

ma = μmg

a = μg

a = 0.40 × 9.81

a = 3.924 m/s²

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The safe loadof a wooden beam supported at both ends varies jointly as the width, w, the square of the depthd, and inversely as the length A wooden beam 7 inwide, 10 indeepand 19 ft long holds up 4422 What load would a beam inwide. 5 indeep and long of the same material support? (Round off your answer to the nearest pound )

Answers

L = k(wd^2/ l)

L = load

L1= 4422 lb

w = width

w1= 7 in

d = depth

d1= 10 in

l = lenght

l1= 19 ft

L2=

w2= 5in

d2=5in

l2= 11ft

First solve the constant with values 1

L1= k [(w1) (d1)^2 / l1]

4422= k [(7) (10)^2 / 19]

k = 4422 / [(7) (10)^2 / 19]

k= 120 lb/ft in^3

Replace with values 2

L2= k [(w2) (d2)^2 / l2]

L2= 120 [(5) (5)^2 / 11]

L2= 1363.63 LB

Austin does his Power lifting every morning to stay in shape. He lifts a 90 kg barbell, 2.3 m above the ground.a) How much energy does it have when it was on the ground? Jb)How much energy does it have after being lifted 2.3 m? Jc) What kind of energy does it have after being lifted? d) How much work did Austin do to lift the barbell? Je) If he lifted it in 1.9s, what was his power? W

Answers

ANSWER

[tex]\begin{gathered} (a)0J \\ (b)2030J \\ (c)\text{ Potential energy} \\ (d)2030J \\ (e)1070W \end{gathered}[/tex]

EXPLANATION

Parameters given:

Mass of barbell, m = 90 kg

Height above ground, h = 2.3 m

(a) We want to find the energy the barbell has on the ground. #

When it is on the ground, the barbell is stationary, which means its velocity is 0 m/s, hence, its kinetic energy is also 0 J, since kinetic energy is given as:

[tex]\begin{gathered} KE=\frac{1}{2}mv^2 \\ KE=\frac{1}{2}\cdot m\cdot0=0J \end{gathered}[/tex]

Also, on the ground, it is at a height of 0 m, hence, its potential energy is 0 J:

[tex]\begin{gathered} PE=mgh \\ PE=m\cdot g\cdot0=0J \end{gathered}[/tex]

where g = acceleration due to gravity

Therefore, on the ground, the energy the barbell had was 0 J.

(b) After it had been lifted 2.3 m, its height above the ground became 2.3 m.

Now, we can find the potential energy possessed by the barbell:

[tex]\begin{gathered} PE=90\cdot9.8\cdot2.3 \\ PE=2028.6J\approx2030J \end{gathered}[/tex]

After it is lifted, it is once again stationary, hence, it has no kinetic energy.

Therefore, the energy the barbell has after it has been lifted 2.3 m is 2070J.

(c) As stated in (b) above, after being lifted, the barbell only possesses potential energy since it is at a height above the ground and it is not moving.

(d) The work done in lifting the barbell is equal to the force applied multiplied by the height moved by the barbell.

That is:

[tex]W=F\cdot d[/tex]

The force applied is equal to the weight of the barbell:

[tex]\begin{gathered} F=W=mg \\ F=90\cdot9.8 \\ F=882N \end{gathered}[/tex]

Therefore, the work done is:

[tex]\begin{gathered} W=882\cdot2.3 \\ W=2028.6J\approx2030J \end{gathered}[/tex]

(e) He lifted the barbell in 1.9 seconds. To find his power, we have to divide the work done by the time taken to do the work.

That is:

[tex]\begin{gathered} P=\frac{W}{t} \\ P=\frac{2030}{1.9} \\ P=1068.4W\approx1070W \end{gathered}[/tex]

That was his power.

A dentist causes the bit of a high speed drill to accelerate from an angular speed of 1.76 x 10^4 rads to an angular speed of 4.61 x 10^4 rat. In the process, the bit turns through 1.97 x 10 ^4 rad. Assuming a constant angular acceleration, how long would it take the reach its maximum speed of 7.99 x 10^4 rads starting from rest?

Answers

The time taken for the bit to reach the maximum speed is 1.35 seconds.

What is the angular acceleration of the bit?

The angular acceleration of the bit is determined by applying the following kinematic equation as shown below.

ωf² = ωi² + 2αθ

where;

ωf is the final angular speedωi is the initial angular speedθ is the angular displacementα is the angular acceleration

α = (ωf² - ωi²)/2θ

α = (46,100² - 17,600²) / (2 x 19,700)

α = 46,077.4 rad/s²

The time taken for the bit to reach the maximum speed is calculated as follows;

ωf = ωi + αt

t = (ωf - ωi) / α

t = (79,900 - 17,600) / (46,077.4)

t = 1.35 seconds

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Determine the speed of the Earth in its motion around the Sun using Newton's Law of Universal Gravitation and centripetal force. Look up the values of the Earth's mass, the Sun's mass, and the average distance of Earth from the Sun; other than G, nothing else is needed

Answers

In order to determine the speed of the Earth, proceed as follow:

Consider that the centripetal force must be equal to the gravitational force between the Earth and the Sun (because guarantees the stability of the system):

[tex]F_g=F_c[/tex]

Fg is the gravitational force and Fc the centripetal force. The expressions for each of these forces are:

[tex]\begin{gathered} F_g=\text{G}\frac{\text{mM}}{r^2} \\ F_c=ma_c=m\frac{v^2}{r} \end{gathered}[/tex]

where,

G: Cavendish's constant = 6.67*10^-11 Nm^2/kg^2

m: Earth's mass = 5.97*10^24 kg

M: Sun's mass = 1.99*10^30kg

v: speed of Earth around the Sun = ?

r: distance between the center of mass of Earth and Sun = 1.49*10^8km = 1.49*10^11 m

Equal the expressions for Fg and Fc, solve for v, replace the previous values of the parameters and simplify:

[tex]\begin{gathered} \text{G}\frac{\text{mM}}{r^2}=m\frac{v^2}{r} \\ v^{}=\sqrt[]{\frac{GM}{r}} \\ v=\sqrt[]{\frac{(6.67\cdot10^{-11}N\frac{m^2}{\operatorname{kg}^2})(1.99\cdot10^{30}kg)}{1.49\cdot10^{11}m}} \\ v\approx29846.7\frac{m}{s} \end{gathered}[/tex]

Hence, the speed of the Earth around the Sun is approximately 29846.7m/s

An unbanked asphalt highway has turns of 40m radii. How fast should the speed limit be if cars may be traveling in the rain? (Us for wet asphalt on rubber is .755)

Answers

Given data:

* The radius of the turn is r = 40 m.

* The coefficient of friction is,

[tex]\mu_s=0.755[/tex]

Solution:

The centripetal force acting on the car is,

[tex]F=\frac{mv^2}{r}[/tex]

where m is the mass of the car,

The frictional force acting on the car is,

[tex]F_r=\mu_smg[/tex]

where g is the acceleration due to gravity,

In order to travel a car in rain, the centripetal force acting on the car must be equal to the frictional force on the same car.

Thus,

[tex]\begin{gathered} F_r=F_{} \\ \mu_smg=\frac{mv^2}{r} \\ \mu_sg=\frac{v^2}{r} \\ v^2=r\mu_sg \end{gathered}[/tex]

Substituting the known values,

[tex]\begin{gathered} v^2=0.755\times40\times10 \\ v^2=302 \\ v=17.4\text{ m/s} \end{gathered}[/tex]

Thus, the maximum speed limit of the car in rain is 17.4 m/s.

Hence, the nearest possible correct answer is option b.

Four masses are arranged as shown. They are connected by rigid, massless rods of lengths 0.780 m and 0.500 m. What torque must be applied to cause an angular acceleration of 0.750 rad/s2 about the axis shown?

Answers

Given,

The length of the rods;

L=0.780 m

l=0.500 m

The angular acceleration, α=0.750 rad/s²

The masses;

m_A=4.00 kg

m_B=3.00 kg

m_C=5.00 kg

m_D=2.00 kg

The moment of inertia of the given system of masses is given by,

[tex]\begin{gathered} I=\Sigma mr^2 \\ =m_A(\frac{L}{2})^2+m_B(\frac{L}{2})^2+m_C(\frac{L}{2})^2+m_D(\frac{L}{2})^2 \\ =(\frac{L}{2})^2(m_A+m_B+m_C+m_D) \end{gathered}[/tex]

Where r is the distance between each mass and the axis of rotation.

On substituting the known values,

[tex]\begin{gathered} I=(\frac{0.780}{2})^2(4.00+3.00+5.00+2.00) \\ =2.13\text{ kg}\cdot\text{m}^2 \end{gathered}[/tex]

The torque required is given by,

[tex]\tau=I\alpha[/tex]

On substituting the known values,

[tex]\begin{gathered} \tau=2.13\times0.750 \\ =1.6\text{ Nm} \end{gathered}[/tex]

Thus the torque that must be applied to cause the required acceleration is 1.6 Nm

Sodium has a density of 1.95 g/cm3. What is the volume of 56.2 g of sodium?

Answers

Answer: couldn't type in that little 3 haha

Explanation:

A string with both ends fixed is vibrating in its second harmonic. The waves have a speed of 36m/s and a frequency of 60Hz. The amplitude of the standing wave at an antinode is 0.6cm. calculate the amplitude of the motion of points on the string a distance of 30cm,15cmand 7.5cm on the left hand end of the string.

Answers

The amplitude of the motion of points on the string a distance of 30cm,15cmand 7.5cm is 0.0547m, 0.027m and 0.0137m respectively.

Amplitude is the maximum range of vibration or oscillation, measured from the equilibrium position

According to the equation of the second harmonic motion

A = sin (kx)

A = Amplitude

k = [tex]\frac{2\pi f}{v}[/tex] = [tex]\frac{2*\pi * 60}{36}[/tex] = 10.467

x = distance of the point

For x = 30 cm = 0.3 m

A = sin (kx)

A = Sin (10.467 * 0.3)

A = 0.0547 m

For x = 15 cm = 0.15 m

A = sin (kx)

A = Sin (10.467 * 0.15)

A = 0.027 m

For x = 7.5 cm = 0.075 m

A = sin (kx)

A = Sin (10.467 * 0.075)

A = 0.0137 m

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A card is drawn at random from a standard deck. Determine whether the events are mutually exclusive or not mutually exclusive. Then find each probability (2 or black card).

Answers

Consider that the event are no mutually exclusive because you can obtain a black card and 2 in one card.

In a standard deck you have 52 cards. There are 26 black cards and 4 cards with number 2.

Consider that in the 26 black cards there are two black cards with number 2.

Then, to get the probability consider that the required result can be obtained for 26 + 2 = 28 cards (26 black cards and two cards with number 2).

The probability is the quotient between the number of options over the number of cards:

[tex]p=\frac{28}{52}=0.54[/tex]

Hence, the probability is 0.54

Energy transformations always produce a wasteful amount of energy called ?

Answers

Energy transformation always produce a wasteful amount of energy called heat energy.

Hence, the answer is heat energy.

When you eat cereal and thenlift weights, how is the energytransformed?A. The chemical energy in the cereal istransformed into mechanical energy.B. The thermal energy in the cereal istransformed into mechanical energy.C. The mechanical energy in the cereal istransformed into chemical energy.

Answers

in any food not just in cereal there are chemical energy is stored in the form of

carbon, protein, fats, etc.

when we eat the food our body transforms this energy into

energy by decomposing the food into its elementary

particles and store it in the form of chemical energy and when we need energy

to do work it (body) coverts the energy into the mechanical energy by various

process.

so the correct answer is option (A)

ine? Bir10. Two people are pulling on opposite ends of a rope so that ithas a tension of 150 newtons. If the rope is not moving, withwhat pulling force is each of the two people pulling?

Answers

ANSWER

150 N

EXPLANATION

The rope is not moving, so the net force on it is 0. The force that each person exerts on the rope is equal and opposite to the tension on the rope, so the sum of the forces acting on it is zero.

Hence, the force that each of the two people is exerting on the rope while pulling is 150 Newtons.

A fireman standing on a 14 m high ladderoperates a water hose with a round nozzle ofdiameter 2.65 inch. The lower end of the hose(14 m below the nozzle) is connected to thepump outlet of diameter 3.49 inch. The gaugepressure of the water at the pump isCalculate the speed of the water jet emerg-ing from the nozzle. Assume that water is anincompressible liquid of density 1000 kg/m3and negligible viscosity. The acceleration ofgravity is 9.8 m/s?Answer in units of m/s.

Answers

Given data,

The height, H = 14 m

The diameter, D = 2.65 inch

The gauge pressure, P = 317.84 kPa

We need to calculate the speed of the water jet emerging from the nozzle.

Using Bernoulli's equation,

[tex]\begin{gathered} \frac{1}{2}\rho(v^2_n-v^2_p)=P_{gauge\text{ }}-\rho gh \\ (v^2_n-v^2_p)=(\frac{2}{\rho})P_{gauge}-2gh \\ v^2_n-(\frac{A_n}{A_p})^2v^2_n=(\frac{2}{\rho})P_{gauge}-2gh \\ v^2_n-(\frac{r_n}{r_p_{}})^4v^2_n=(\frac{2}{\rho})P_{gauge}-2gh \end{gathered}[/tex]

Further solved as,

[tex]\begin{gathered} v_n=\sqrt[]{\frac{(\frac{2}{\rho})P_{gauge}-2gh}{1-(\frac{r_n}{r_p})^4}} \\ v_n=\sqrt[]{\frac{(\frac{2}{1000})\times317.84\times10^3-2\times9.8\times14}{1-(\frac{1.325_{}}{1.745_{}})^4}} \\ v_n=\sqrt[]{\frac{635-274.4}{0.667}} \\ v_n=\sqrt[]{540.62} \end{gathered}[/tex]

Thus, the speed of the water jet is

[tex]v=23.25\text{ m/s}[/tex]

As the speed of an object falling toward Earth increases, the gravitational potential energy of the object with respect to EarthA. IncreasesB. DecreasesC. Remains the same

Answers

Answer:

B. Decreases

Explanation:

When an object is falling toward Earth, the height of the object decreases, and the speed increases. Then, the gravitational potential energy decreases, and the kinetic energy increase because the first one depends on the height and the second one depends on the speed. Therefore, the answer is:

B. Decreases

What is troubling about the circumstance when a coil is stationary and a magnet moves as compres to when a magnet is stationary and the coil moves?

Answers

When the magnet is moved, the galvanometer needle will deflect. It shows that the current is flowing in the coil. When the magnet moves into the coil, the needle deflects into one way, and if the magnet moves out of the coil, the needle deflects into the other way.

When the magnet is held stationary near, or even inside, the coil, no current will flow through the coil.

A basketball player jumps for a rebound and reaches a maximum height of 1.5 m. with what speed did he jump off the floor? How long was he in the air?

Answers

The final speed of the player can be given as,

[tex]v^2=u^2-2gh[/tex]

At the maximum height, the final speed of player is zero.

Plug in the known values,

[tex]\begin{gathered} (0m/s)^2=u^2-2(9.8m/s^2)(1.5\text{ m)} \\ u^2=29.4m^2s^{-2} \\ u=5.42\text{ m/s} \end{gathered}[/tex]

Thus, the speed with which it jump off the floor is 5.42 m/s.

The time for which the player was in player is,

[tex]t=\sqrt[]{\frac{2h}{g}}[/tex]

Plug in the known values,

[tex]undefined[/tex]

A man takes in 0.95 × 107 J of energy each day from consuming food, and maintains a constant weight. what power in watt supplied by the food?

Answers

Given data

*The given energy is E = 0.95 × 10^7 J

*The given time is t = 1 day = (24 × 60 × 60) s = 86400 s

The formula for the power in watt supplied by the food is given as

[tex]P=\frac{E}{t}[/tex]

Substitute the known values in the above expression as

[tex]\begin{gathered} P=\frac{(0.95\times10^7)}{(86400)} \\ =1.09\times10^2\text{ W} \end{gathered}[/tex]

Hence, the power in watt supplied by the food is P = 1.09 × 10^2 W

g) 0.35 oz to mgh) 75 mL to gali) 54 mi to kmj) 1789 ft to km

Answers

In order to covnert the given quantities, use the correct covnersion factor, as follow:

g) 0.35 oz to mg

[tex]0.35oz\cdot\frac{28.3495g}{1oz}\cdot\frac{1000mg}{1g}=9922.325mg[/tex]

h) 75 mL to gal

[tex]75mL\cdot\frac{1L}{1000mL}\cdot\frac{0.2641722gal}{1L}\approx0.02gal[/tex]

i) 54 mi to km

[tex]54mi\cdot\frac{1.61\operatorname{km}}{1mi}=86.94\operatorname{km}[/tex]

j) 1789 ft to km

[tex]1789ft\cdot\frac{0.3048m}{1ft}\cdot\frac{1\operatorname{km}}{1000m}\approx0.54\operatorname{km}[/tex]

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