Calculate the gravitational force producedbetween moon and every gram of sand on its surface.[Mass & radius of moon = 7 .2x10²² kg x 1700000m]​

Answers

Answer 1

The magnitude of the gravitational force produced between moon and every gram of sand on its surface is  1.66 x 10⁻³ N.

What is the gravitational force?

The gravitational force between the moon and every gram of sand on its surface is determined by applying Newton's law of universal gravitation.

This law states that every object in the universe attracts each other with force that is directly proportional to the product of the masses and inversely proportional to the square of the distance between the objects.

F = Gm₁m₂/R²

Where;

G is universal gravitation constantm₁ is mass of the sand = 1 g = 0.001 kgm₂ is mass of the moonR is the distance between the moon and the sand

F = (6.67 x 10⁻¹¹ x 0.001 x 7.2 x 10²²) / (1,700,000)²

F = 1.66 x 10⁻³ N

Thus, from the magnitude of the gravitational force produced between moon and every gram of sand on its surface, we can say that it is quite small.

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Related Questions

Name the different regions found within the electromagnetic spectrum and describe how the
are similar to and different from, one another.

Answers

The electromagnetic (EM) spectrum is the set of all EM radiation types. Electromagnetic radiation includes, for instance, radio waves from a radio station and visible light from a lightbulb in your home. Energy that flows and spreads out as it does is called radiation.

The electromagnetic spectrum is the set of frequencies of electromagnetic radiation and the related photon energies and wavelengths.

The seven regions of the electromagnetic spectrum are often arranged with wavelength decreasing and energy and frequency increasing.

X-rays,gamma rays, visible light, UV light, infrared (IR), microwaves, visible light

are a few of the common names for these energy forms.

Electromagnetic waves have a wide range of useful, everyday applications, including WiFi, cooking, kitchen appliances, eyesight, medical imaging, and cancer treatment.

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the following statements are related to household circuits and electrical safety. determine whether each statement is true or false. hint (a) circuit breakers are wired in series with the outlets they protect. true false (b) a circuit breaker rated at 20 a provides a constant current of 20 a to each outlet in the circuit. true false (c) three-wire electrical cords help prevent dangerous electrical shocks by grounding the case of a device. true false

Answers

(a) This is true since a circuit breaker is linked in series with the electric device in order to interrupt the circuit if the current flow exceeds a predetermined (rated) limit.

(b) False, because the circuit breaker only permits the maximum current that has been rated for it; when the circuit exceeds that limit, it is broken. There's no issue with continuous current.

(c) The earthing terminal is present.

Circuit breakers: what are they?

A circuit breaker is a type of electrical switch used to guard against short circuits, overloads, and over currents that could harm an electrical circuit. Its primary purpose is to halt current flow when protective relays identify a defect.

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experiment 4: uniform circular motion introduction: in this lab, you will calculate the force on an object moving in a circle at approximately constant speed. to calculate the force you will use newton’s second law combined with the acceleration of an object moving in a circle at constant speed. you will then compare that calculated force with a measured value. you will measure the time t required for 30 revolutions of a hanging object; the object will be held in a circular path of known radius r by a horizontal spring attached to the axis of rotation. the time t for one revolution is then t/30 and the speed v of the moving object is easily calculated from distance (the circumference of the circle 2πr) divided by time: v

Answers

This given statement about uniform circular motion and distance is proved.

What is distance?

The distance between two points is how long it is.

Okay, so the first three components of this issue include more physics and math. Um Ds equals R. D. Data was thus provided for section A. We have to track down S. Therefore, we just integrate both sides equally using R. D. data. Our data are provided. Therefore, the upon integration over our data is only R 0 Santa + 12 beta zeta squared for part B. We'll make sure S = V T. We combine these two by using the above equation as an equal. In order to allow it to reach its roots once positive, we can see that this is Justin's equation for data. The other drawback, of course, is

Standard units are 247 times zero, therefore switch to the nature radio at a negative six. Additionally, we are given the time, which is 74 minutes, or 4440 seconds. Thus, clogging everything. Injecting R 0 and data mm hmm into the formula for data. Therefore, we enter better Data. V also appears. Everything is therefore known. We may confidently conclude that the data is, hmm, 1.337 x 10-5 bright. or 2.13 x 10 to 4 revolutions, in terms of turns. Okay. We simply re-insert the figures for beta and tr zero V into the earlier formulae for omega and alpha in the last section of the problem. You can take pleasure in utilizing math, even by hand, or perhaps he

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The time it takes to
wake up. Time interval or a time instant? (Please give me the right answer)

Answers

Answer:

Time interval

Explanation:

The amount of time it takes to wake up is a time interval because it has a start and stop time. For example, if someone's alarm goes off at 7AM and they fully wake up at 7:15AM, then the period from 7AM-7:15AM is a time interval.

an exceptional standing jump would raise a person 0.80 m off the ground. to do this, what force must a 68-kg person exert against the ground? assume the person crouches a distance of 0.20 m prior to jumping, and thus the upward force has this distance to act over before he leaves the ground.

Answers

The force applied by the person is 2587.5N. The energy approach is by far and away the easiest. Earlier work equals potential energy (after).

Most issues involving forces and velocities can be solved using energy formulas like Ek = EP or W = Ep or W = Ek.

Always consider using an energy formula first; they frequently work and prevent the need for many steps to solve for one thing before moving on to another. It would take a while to find a solution if you approached it the way you did since you would have to tackle several problems as you went along. You must determine the initial takeoff speed using F = ma the way you did since you would have to tackle several problems as you went along. You must determine the initial takeoff speed using F = ma before utilizing V2f=V2i + 2ad then, given that Vf is zero, get Vi. You would then factor that into the same equation using that as your takeoff speed V2f = V2i + 2ad but this time it would be Vf. Vi would be 0, therefore the answer to the equation would be "a." The energy approach is by far and away the easiest.

Earlier work equals potential energy (after)

Fd = mghF = mgh/dF = (66)(9.81)(0.8)/0.2F= 2587.5N

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A vibrating guitar string makes very little sound if it is not mounted on the guitar body. Why does the sound have greater intensity if the string is attached to the guitar body? (a) The string vibrates with more energy. (b) The energy leaves the guitar at a greater rate. (c) The sound power is spread over a larger area at the listener's position. (d) The sound power is concentrated over a smaller area at the listener's position. (e) The speed of sound is higher in the material of the guitar body. (f) None of these answers is correct

Answers

The sound has greater intensity if the string is attached to the guitar body as the sound power is spread over a larger area at the listener's position.  

A sound wave is  basically  delivered by a vibrating object. As a guitar string vibrates, it sets encompassing air particles into vibrational movement. The frequency at which these air particles vibrate is rise to the frequency of vibration of the guitar string. The back and forward vibrations of the surrounding air particles make a pressure wave that voyages outward from its source. This pressure wave comprises compressions and rarefactions. The compressions are regions of high pressure, where the air particles are compressed into a little region of space. The rarefactions are districts of low pressure, where the air particles are spread and separated. This substituting design of compressions and rarefactions is known as a sound wave. A guitar string vibrating by itself does not deliver a really loud sound. The string itself disturbs exceptionally small air since its little surface zone makes exceptionally small contact with encompassing air particles. In any case, in case the guitar string is joined to a bigger object, such as a wooden sound box, at that point more air is aggravated. The guitar string forces the sound box to start vibrating at the same frequency as the string. The sound box in turn powers surrounding air particles into vibrational movement. Since of the huge surface range of the sound box, more discuss particles are set into vibrational movement. This produces a more capability of hearing a sound.

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an object accelerates from rest to a velocity of 4.0 m/s in 8 seconds. what
was its acceleration

Answers

Answer:

Acceleration (a) = 0.5 mp[tex]s^{2}[/tex]

Explanation:

Given,

Object starts from rest, hence the initial velocity of the object is said to be 0

Velocity in the next 8 seconds is 4.0 m/s

u = 0 m/s

v = 4 m/s

t = 8 secs

We know,

a = (v-u)/t

=> a = (4-0)/8

=> a = 4/8 = 0.5 m/[tex]s^{2}[/tex]

Stephen learned that any two objects exert a gravitational force on each other. If the distance between two objects triples, the gravitational force between them will change by a factor of what?.

Answers

The gravitational force between them will change by a factor 1/9.

We need to know about gravitational force to solve this problem. The gravitational force is the force caused by two masses objects. The magnitude of gravitational force can be determined as

F = G.m1.m2 / R²

where F is the gravitational force, G is the gravitational constant (6.674 × 10¯¹¹ Nm²/kg²), m1 and m2 are the mass of the object and R is the radius.

From the question above, we know that

R2 = 3R1

By substituting the following parameters, we get

F2/F1 = G.m1.m2 / R2² / G.m1.m2 / R1²

F2/F1 = G.m1.m2 / (3R1)² / G.m1.m2 / R1²

F2/F1 = 1/9

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what is the maximum number of 60-w light bulbs you can connect in parallel in a 100-v home circuit without tripping the 30-a circuit breaker? please show solution not only answer.

Answers

Answer:

50    sixty watt bulbs max

Explanation:

Watts = amps * volts

               30 a * 100 v / 60 w/bulb = 50 bulbs

1. A car begins at a speed of 3m/s and accelerates at 2m/s² over a distance of 40m,
calculate the final speed of the car.

Answers

[tex]\quad \huge \quad \quad \boxed{ \tt \:Answer }[/tex]

[tex]\qquad \tt \rightarrow \: v = 13 \:\: m/s[/tex]

____________________________________

[tex] \large \tt Solution \: : [/tex]

[tex] \texttt{Initial speed of the car (u) = 3 m/s} [/tex]

[tex] \texttt{final speed of the car (v) = ??} [/tex]

[tex] \texttt{acceleration of the car (a)= 2 m/s²} [/tex]

[tex] \texttt{distance covered in that time (s) = 40 m} [/tex]

By third equation of motion :

[tex]\qquad \tt \rightarrow \: {v}^{2} = {u}^{2} + 2as[/tex]

[tex]\qquad \tt \rightarrow \: {v}^{2} = (3) {}^{2} + 2(2)(40) [/tex]

[tex]\qquad \tt \rightarrow \: {v}^{2} = 9 + 160[/tex]

[tex]\qquad \tt \rightarrow \: {v}^{2} = 169[/tex]

[tex]\qquad \tt \rightarrow \: v = 169[/tex]

[tex]\qquad \tt \rightarrow \: v = 13[/tex]

so, speed of the car after that time is : 13 m/s

Answered by : ❝ AǫᴜᴀWɪᴢ ❞

Who developed the expression for the line spectrum of hydrogen to include lines in the ultraviolet and infrared portions of the electromagnetic spectrum?.

Answers

The expression for the line spectrum of hydrogen to include lines in the ultraviolet and infrared portions of the electromagnetic spectrum was given by Johann Balmer.

It is possible to express the wavelengths of the visible hydrogen lines using a simple formula that was developed by Swiss mathematician Johann Balmer in 1885. The difference between two terms, 1/4 (written as 1/22) and the reciprocal of the square of a variable integer (1/n2), which has sequential values of 3, 4, 5, etc., yields the reciprocal wavelength (1/), which is equal to a constant (R) times the difference between the two terms.

Theodore Lyman, A.H. Pfund, F.S. Brackett, Friedrich Paschen, and Theodore Lyman are all American scientists who discovered the other four spectral line series in addition to the Balmer series. The Lyman series is in the ultraviolet, whereas the Paschen, Brackett, and Pfund series is in the infrared.

The Rydberg formula has been used to determine the wavelengths of several spectral series that have been created from the emission spectrum of atomic hydrogen. These spectral lines that have been seen are the result of electron transitions between two energy levels within an atom. The development of quantum mechanics was greatly aided by the Rydberg formula's classification of the series. In astronomical spectroscopy, the spectral series are crucial for determining redshifts and detecting the existence of hydrogen.

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each with a mass of 1.5 kg, move toward one another. a). If the cart moving left is traveling at 10 m/s and the cart moving right is traveling at 6 m/s, what is the magnitude and direction of the total momentum of the system? b. What is the total momentum of the system if the two carts have the same speed?

Answers

The magnitude and direction of the total momentum of the system is 6 kg m/s to the left.

The total momentum of the system if the two carts have the same speed is 0 kgm/s

What is the total initial momentum of the system?

The magnitude and direction of the total momentum of the system is calculated as follows;

Pi = m1u1 + m2u2

where;

Pi is the total initial momentum of the systemm1 is mass of first objectm2 is mass of second objectu1 is initial velocity of the first object'u2 is the initial velocity of the second object

Pi = (1.5 x 6) - (1.5 x 10)

Pi = - 6 kg m/s

What is the total momentum of the system at same speed?

The total momentum of the system if the two carts have the same speed is calculated as follows;

Pf = (1.5 x 6) - (1.5 x 6)

Pf = 0 kg m/s

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The following graphs show average temperature data for two locations. Both locations have the same elevation. What is most likely true about the locations?
1080AQ5
A. Location A is farther from the equator than location B.
B. Location A is closer to the equator than location B.
C. Location B is located farther inland than location A.
D. Location A is in the northern hemisphere, and location B is in the southern hemisphere.

Answers

The statement that is most likely true about the locations is that location A is farther from the equator than location B ( A )

The average temperature throughout the year is higher in location B then that of location A. The temperature is typically warmer near the equator and is typically cooler near the polar regions.

But some factors such as elevation, precipitation and ocean currents might affect the climate pattern. This change in temperature between equator and polar regions is due to the fact that equatorial regions receive more light and energy from the Sun than the polar regions.

Therefore, the statement that is most likely true about the locations is that location A is farther from the equator than location B ( A )

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Answer explanation !!!!!!!!!!

Answers

Answer:

65 meters for 5 seconds at a time

Explanation:

What did you observe about each subsequent for every bounce from every height?

Answers

The ball will rise back to a height equal to the initial height multiplied by the amount of kinetic energy it had before it started to ascend again (1-fraction of energy lost).

Why does a ball from a higher height bounce higher?

All of the ball’s kinetic energy must be dissipated when it strikes the ground. The bounce increases with potential energy, kinetic energy, and kinetic energy alone, thus the more energy that returns to the ball and gives it more power to spring back into the air, the higher the bounce.

Ball bouncing height

The height from which a ball is dropped, the material of the ball (and, if it is inflated, the pressure at which it is inflated), and the material of the surface from which the ball bounces determine the height to which it will rebound.

If you are measuring the height of the ball from its bottom to the ground, the radius of the ball doesn't actually matter.

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a snowboarder glides down a 60-mm-long, 15∘∘ hill. she then glides horizontally for 10 mm before reaching a 26 ∘∘ upward slope. assume the snow is frictionless.

Answers

v ^2f-v^2i= 2a  Replace the known values,

0-16^2=2 (-4.2)S, S= 256/8.4, S= 30.4m. The maximum distance a snowboarder could travel on a 25o slope was 30.4 meters.

The snowboarder travels a distance of H=50 meters on the hill. The hill slopes at a 15 degree slant. snowboarder's horizontal distance traveled after passing a slope, S=10m Crossing a horizontal distance, there is a 25-degree rising slope.

The snowboarder's initial speed at location A is u = 0 m/s. Let v be the representation of the final velocity. G = 10m/s2 is the acceleration caused by gravity. The snowboarder's acceleration at the incline is = a = 10 sin (15 degree)

The snowboarder moved 10 meters horizontally after reaching the bottom of the hill. Before she reaches the steep slope, as depicted in the illustration, her pace is unchanged. Now, at the top of the hill, where she could go the farthest, S

Vf = 0 m/sec would be the final speed.

To calculate the furthest she could go, write the equation of motion,

v ^2f-v^2i= 2a  Replace the known values,

0-16^2=2 (-4.2)S, S= 256/8.4, S= 30.4m. The maximum distance a snowboarder could travel on a 25o slope was 30.4 meters.

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three people pull simultaneously on a stubborn donkey. jack pulls directly ahead of the donkey with a force of 98.3 n, jill pulls with 62.5 n in a direction 45° to the left, and jane pulls in a direction 45° to the right with 117 n . (since the donkey is involved with such uncoordinated people, who can blame it for being stubborn?)

Answers

Jane and Jill are stubborn because they have opposite force directions.

We need to know about force resultant to solve this problem. The force resultant is the total net force applied to the object according to the direction. It can be written as

R = F1 + F2 + ... + Fn

where R is force resultant (net force)

From the question above, we know that

F Jack = 98.3 N

F Jill = 62.5 N

F Jane = 117 N

Assume that the direction

Jack = east

Jill = north east

Jane = south east

The Force to the north direction is

F Jill y = Fjill . cos45

F Jill y = 62.5 . √2/2

F Jane y = -F Jane . cos45

F Jane y = -117 . √2/2

Jane and Jill are stubborn because they have opposite directions.

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The magnitude of the net force the people exert on the donkey is 239 N.

Net force :

[tex]F_{n}[/tex]= [tex]F_{1}+F_{2} +F_{3}[/tex]

Now finding the x and y components of the forces F2 and F3,

[tex]F_{x}[/tex] = F1 + F2cos45°+F3sin45°

[tex]F_{x}[/tex] = 98.5 + 69.3 ×√2/2 + 125 ×√2/2

[tex]F_{x}=235.9N[/tex]

[tex]F_{y}[/tex] = -F2sin45°+F3sin45°

= −69.3 ×√2/2+ 125 ×√2/2

[tex]F_{y}[/tex] =  39.4 N

Now find the magnitude

[tex]F_{n}[/tex] = √235.9^2+39.4^2 = 239 N

The magnitude of the net force the people exert on the donkey is 239 N.

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the current if 55C of charge pass a particular point in a circuit in 5 seconds.

Answers

The current if 55C of charge pass a particular point in a circuit in 5 seconds is 11A.

What's current?

One kind of electrical charge carrier that moves as current are electrons. From negative to positive areas, current flows. The ampere is the SI unit used to measure electric current (A). One coulomb of electrical charge travelling over a given region in one second is referred to as an ampere of current.

Similar to how current is widely employed in relation to electronic circuits, voltage is also. Voltage is measured using volts (V). Similar to how current and current are related, voltage and the flow of electrons in a circuit are as well. Current is the flow of electrons, whereas voltage is the amount of force driving the flowing electrons.

At higher voltages, current flows more freely; at lower voltages, current is weaker.

Given,

Electrical charge = 55 C

Time = 5 secs

Therefore current = 55 / 5 A

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pls answer the 15a answer i cant understand it​

Answers

Materials required for the experiment of limiting force borne by string:-

String balanceweightslight stringsweight hanger pan for spring balanceSand

Steps of procedure for for the experiment of limiting force borne by string:-

First we have to tie a light string to the fixed support and then tie the other end with the weight hanger consists of weight.Add additional weight to the hanger again and again. And continue the same until the string is broken.Note down the weight (x) where the string is broken.Suspend spring balance to a support.Tie the light string at the end of the balance and at the other end suspend the pan for spring balance.Now place the weights (x-100 grams) in pan.Observe the reading in the spring balance.Add a small amount of sand in the pan by observing the readings.same is to be done till the string is broken.

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5. How long would it take a truck to increase its speed from 10 m/s to 30 m/s if it does so
with uniform acceleration over a distance of 80 m ?
a) 8.0 s
b) 5.0 s
c) 4.0 s
d) 2.0 s

Answers

Answer:

C

Explanation:

Average velocity =  (10+30) / 2 = 20 m/s

80 m / 20 m/s = 4 seconds

It would take a truck to increase its speed from 10 m/s to 30 m/s in 2.0 s. Option D is the correct answer.

To determine how long it would take for the truck to increase its speed from 10 m/s to 30 m/s, we can use the equations of motion. Option D is the correct answer.

The first equation we will use is: v = u + at

where v is the final velocity, u is the initial velocity, a is the acceleration, and t is the time.

Given:

Initial velocity, u = 10 m/s

Final velocity, v = 30 m/s

We need to find the time, t. Since the truck is accelerating uniformly, we can assume a constant acceleration. Next, we use another equation of motion: v² = u² + 2as, where s is the distance traveled.

Given:

Distance, s = 80 m

Initial velocity, u = 10 m/s

Final velocity, v = 30 m/s

Rearranging the equation, we get: s = (v² - u²) ÷ (2a)

Substituting the given values, we have: 80 = (30² - 10²) ÷ (2a)

Simplifying the equation, we find:

80 = (900 - 100) / (2a)

80 = 800 / (2a)

2a = 800 / 80

a = 10 m/s²

Now, we can go back to the first equation: v = u + at

Substituting the known values: 30 = 10 + 10t

Simplifying, we find: 10t = 20

t = 2 seconds

Therefore, it would take the truck 2.0 seconds to increase its speed from 10 m/s to 30 m/s.

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A person on a cruise ship is doing laps on the promenade deck. On one portion of the track the person is moving north with a speed of 3.9 ms relative to the ship. The ship moves east with a speed of 12 ms relative to the water.

Answers

The resultant speed of the person on the cruise ship is 12.62 m/s.

What is resultant speed?

The resultant speed of an object is the single speed which can effectively represent two or more speed of the object.

The magnitude of the resultant speed of the person on a cruise ship is calculated as follows;

Vr² = Va² + Vb²

where;

Vr is the resultant speed of the personVa is the speed of the person to the northVb is the speed of the person to the east

Substitute the value of the north speed and east speed to determine the resultant speed of the person on the ship.

Vr  =  √Va² + Vb²

Vr = √[(3.9 m/s)² + (12 m/s)² ]

Vr = 12.62 m/s

Thus, for a person on a cruise ship is doing laps on the promenade deck at a speed of 3.9 m/s to the north and the speed of the ship 12 m/s to the east, the resultant speed is 12.62 m/s.

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The complete question is below:

person on a cruise ship is doing laps on the promenade deck. On one portion of the track the person is moving north with a speed of 3.9 ms relative to the ship. The ship moves east with a speed of 12 ms relative to the water. Find the resultant speed of the person

URGENT!! ILL GIVE
BRAINLIEST! AND 100 POINTS

Determine whether each statement describes an atom, a molecule, or both

Answers

Answer:

1.A

2.A

3.A

4.A

5.C

6.B

Explanation:

that's

a movable bracket is held at rest by a cable attached at e and by frictionless rollers. knowing that the width of post fg is slightly less than the distance between the rollers, determine the force exerted on the post by each roller when α

Answers

The force exerted on the post by the roller,

A = D = 0B = 868 N ; C = 126.1 N

The equilibrium for bracket,

∑ [tex]F_{y}[/tex] = 0

T sin 20° - 270 = 0

T = 789.43 N

[tex]T_{x}[/tex] = ( 789.43 ) cos 20°

[tex]T_{x}[/tex] = 741.82 N

[tex]T_{y}[/tex] = ( 789.43 ) sin 20°

[tex]T_{y}[/tex] = 270 N

The 270 N force and [tex]T_{y}[/tex] forms a couple

τ = ( 270 ) 0.25

τ =  67.5 N m Clockwise

∑ [tex]M_{B}[/tex] = 0

( 741.82 * 0.125 ) - 67.5 + [tex]F_{CD}[/tex] ( 0.2 ) = 0

[tex]F_{CD}[/tex] = - 126.138 N

∑ [tex]F_{y}[/tex] = 0

[tex]F_{AB}[/tex] - 126.138 - 741.82 = 0

[tex]F_{AB}[/tex] = 867.96 N

The direction of force [tex]F_{CD}[/tex] is towards left and the direction of force [tex]F_{AB}[/tex] is towards right. The force [tex]F_{CD}[/tex] is exerted by roller B and the force [tex]F_{AB}[/tex] is exerted by roller C. Rollers A and D exert no force. The force exerted by the rollers exert oppositely on the post. So the force exerted by roller C is 126.1 N and the force exerted by roller B is 867.96 N.

Therefore, the force exerted on the post by the roller,

A = 0B = 867.96 NC = 126.1 ND = 0

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. a 7.0-kg box slides along a horizontal frictionless floor at 1.7 m/s and collides with a relatively massless spring that compresses 23 cm before the box comes to a stop. (a) how much kinetic energy does the box have before it collides with the spring? (b) calculate the work done by the spring. (c) determine the spring constant of the spring.

Answers

A. The kinetic energy of the box is 10.115 J

B. The work done by the spring is 7.889 J

C. The spring constant of the spring is 298.26 N/m

A. How to determine the kinetic energy

The kinetic energy of the box can be obatined as follow:

Mass (m) = 7 KgVelocity (v) = 1.7 m/sKinetic energy (KE) =?

KE = ½mv²

KE = ½ × 7 × 1.7²

KE = 3.5 × 2.89

KE = 10.115 J

Thus, the kinetic energy is 10.115 J

B. How to determine the work done by the spring

Mass (m) = 7 KgAcceleration due to gravity (g) = 9.8 m/s²Force (F) = mg = 7 × 9.8 = 68.6 NCompression (e) = 23 cm = 23 / 100 = 0.23 mWork done (W) =?

W = ½Fe

W = ½ × 68.6 × 0.23

W = 7.889 J

Thus, the work done is 7.889 J

C. How to determine the spring constant

Mass (m) = 7 KgAcceleration due to gravity (g) = 9.8 m/s²Force (F) = mg = 7 × 9.8 = 68.6 NCompression (e) = 23 cm = 23 / 100 = 0.23 mSpring constant (K) =?

F = Ke

68.6 = K × 0.23

Divide both sides by 0.23

K = 68.6 / 0.23

K = 298.26 N/m

Thus, the spring constant is 298.26 N/m

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your friend is catching a falling basketball after it has passed through the basket. her hands move straight down while catching the ball. it takes about 0.10 ss for the player to lower her hands to stop the ball. assume the mass of the ball is 0.60 kgkg, and that the ball has fallen a vertical distance of 1.2 mm before reaching the player's hand.

Answers

Average force that her hands exert on the ball while catching basketball whose mass is 600g = 29N

Given

clock t=0.1 s

ball mass m=0.6 kilogram

The previous distance traveled (measured in meters) was 1.2.

Net Force Exerted = 29N

Total Force used:

F= △P/△t

F= m△u/△t

F= m√2gd/△t

F= 0.6.√2.9.8.1.2/0.1

F= 0.6.4.849/0.1

F= 2.90/0.1

Force = 29N

What does force mean?

Power is an effect that can physically change the movement of an object. When an object with mass changes speed, it can be accelerated by a force. B. When leaving a stationary state. The obvious way to describe force is pushing or pulling. Force is a vector quantity because it has both magnitude and direction. It is calculated using Newton SI units (N). Force is represented by the letter F (formerly P).

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The question was incomplete. Check below the full question.

Your friend is catching a falling basketball after it has passed through the basket. Her hands move straight down while catching the ball. It takes about 0.10 s for the player to lower her hands to stop the ball. Assume the mass of the ball is 0.60 kg, and that the ball has fallen a vertical distance of 1.2 m before reaching the player's hand. Determine the average force that her hands exert on the ball while catching it.

A roller coaster car, 500 kg, starting at a point 80 m above the lowest point of the track. The car travels from 8 m·s -1 down the steep track. There is no friction.
9.1 What is the total energy of the roller coaster car at the top of the track?
9.2 What is the total energy of the system at the base of the rollercoaster
track?
9.3 What is the velocity of the car at a height of 30 m from
the base of the roller coaster track?
9.4 What is the velocity of the car at the base of the roller coaster track?

Answers

The total energy of the roller coaster car at the top of the track is 392,000 J.

The total energy of the system at the base of the rollercoaster track is 392,000 J.

The velocity of the car at a height 30 m above the base is 25.53 m/s.

The velocity of the car at the base of the roller coaster track is 40.4 m/s.

What is the total energy of the roller coaster car?

The total energy of the roller coaster car at the top of the track is calculated as follows;

P.E = mgh

where;

m is mass of the carg is acceleration due to gravityh is height

P.E = (500 kg) x (9.8 m/s²) x (80 m)

P.E = 392,000 J

Based on the law of conservation of energy, the total energy of the rollercoaster at the top of the track is the same as that at the bottom of the track.

Thus, total energy of the system at the base of the rollercoaster track = 392,000 J.

The velocity of the car at a height 30 m above the base is calculated as follows;

v² = u² + 2gh

v² = (8)²  +  2(9.8)(30)

v² = 652

v = √652

v = 25.53 m/s

The velocity of the car at the base of the roller coaster track is calculated as follows;

v² = u² + 2gh

v² = (8)²  +  2(9.8)(80)

v² = 1632

v = √1632

v = 40.4 m/s

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Proof homogeneity of Einstein's mass energy relation E = mc²

Answers

The homogeneity of Einstein’s mass-energy relation  E = mc² can be proved by maxwell’s equation of electromagnetism.

According to maxwell’s equation of electromagnetism, light travels at a speed (c) of 3 x [tex]10^8[/tex] m/s.

The momentum(p) of electromagnetic waves is proportional to the energy(E).

So, we can write it as

p = E / c                       -(i)

By cross multiplication

E = pc                          -(ii)

As we know

From newton’s second law, momentum (p) is the product of mass (m) and velocity (v)

p = mv                          -(iii)

since light travels with a speed (c) of 3 x 10^8 m/s

p = mc                         -(iv)

From the equations (ii) and (iv)

E / c = mc

Hence,

E = mc²

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A massless rod is fixed to a wall on one end. A cable is attached to the wall and the center of the rod. The cable makes an angle of 60° to the wall. If the maximum tension of the cable is 10 n, what is the maximum amount of weight that can hang from the end of the rod?.

Answers

The most extreme sum of weight that can hang from the conclusion of the pole is 8.66 N.

The most extreme sum of weight that can hang from the conclusion of the bar is calculated as follows.

Apply the equation for pressure utilizing Newton's moment law of movement.

Newton's moment law of movement states that the constrain experienced by a question is specifically relative to the item of the mass and speeding up of the question.

T sinθ = W

Where T is maximum tension in cable

θ is angle of inclination of cable

W is weight of cable

10 sin (60) = W

8.66 N = W

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A cliff that is known to be 20 m high has a river that is 30 m wide, that runs below the cliff. With what minimum speed should you drive over the cliff so that the car crosses the river?

Answers

The minimum speed you should drive over the cliff so that the car can cross the river is 15 m/s

How to determin the minimum speed

we'll begin by obtainig the time taken for the car to cross the river. This can be obtained as follow:

Height (h) = 20 mAcceleration due to gravity (g) = 9.8 m/s²Time (t) = ?

h = ½gt²

20 = ½ × 9.8 × t²

20 = 4.9 × t²

Divide both side by 4.9

t² = 20 / 4.9

Take the square root of both side

t = √(20/ 4.9)

t = 2 s

Finally, we shall determine the minimum speed as follow:

Horizontal distance (s) = 30 mTime (t) = 2 sMinimum speed (u) = ?

s = ut

30 = u × 2

Divide both sides by 2

u = 30 / 2

u = 15 m/s

Thus, we can conclude that the minimum speed needed is 15 m/s

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The minimum speed should be 15 m/s to drive over the cliff so that the car will cross the river.

What is Speed?

The speed of an item, which is a scalar quantity in everyday usage and kinematics, can be defined as the size of the change in position per unit of time or the size of the change in position over time for an object.

The given values in the question are :

Height of the cliff, h = 20 m

The acceleration due to gravity, g = 9.8 m/s².

Use the formula,

h = 1/2gt²

20 = 1/2(9.8)t²

20 = 4.9 t²

t = 2 seconds.

Now, calculate the minimum speed,

s = ut

30 = u × 2

u = 30/2

u = 15 m/s.

Hence, the minimum speed required by the car to cross the river is 15 m/s.

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A material through which electrons can move easily is a what

Answers

Answer:

Electrical conductors

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