if you hold a 1.85 kg k g package by a light vertical string, what will be the tension in this string when the elevator accelerates as in the previous part?

Answers

Answer 1

The tension in the string of a 1.85 kg package held by a light vertical string will depend on the acceleration of the elevator. When the elevator accelerates, the force of acceleration on the package will be equal and opposite to the tension in the string, causing the tension to increase.

The equation for tension in a string is:

Tension = Mass x Acceleration

Therefore, in this case, the tension in the string is equal to 1.85 kg x Acceleration.

If we assume that the acceleration of the elevator is a constant rate, then the tension in the string can be calculated by multiplying the mass of the package by the acceleration of the elevator.

To sum up, the tension in the string of a 1.85 kg package held by a light vertical string will depend on the acceleration of the elevator. If the acceleration of the elevator is a constant rate, then the tension in the string can be calculated by multiplying the mass of the package by the acceleration of the elevator.

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Related Questions

find the equivalent capacitance of a 4.20-mf capacitor and an 8.50-mf capacitor when they are connected (a) in series and (b) in parallel

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(a) The equivalent capacitance of the 4.20 µF and 8.50 µF capacitors when connected in series is approximately 4.2017 µF.

(b) The equivalent capacitance of the 4.20 µF and 8.50 µF capacitors when connected in parallel is 12.70 µF.

When two capacitors are connected in series, the equivalent capacitance is given by the formula,

1/Ceq = 1/C1 + 1/C2

where C1 and C2 are the capacitances of the two capacitors.

Substituting the given values,

1/Ceq = 1/4.20 µF + 1/8.50 µF

1/Ceq = 0.238 µF^-1

Ceq = 1 / (0.238 µF^-1)

Ceq = 4.2017 µF (rounded to four significant figures)

When two capacitors are connected in parallel, the equivalent capacitance is given by the formula,

Ceq = C1 + C2

where C1 and C2 are the capacitances of the two capacitors.

Substituting the given values,

Ceq = 4.20 µF + 8.50 µF

Ceq = 12.70 µF

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what is the speed of a spacecraft moving in a circular orbit just above the lunar surface? express your answer using two significant figures.

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The speed of a spacecraft moving in a circular orbit just above the lunar surface is approximately 2,300 m/s, or 2.3 km/s. To maintain a stable orbit around the Moon, the spacecraft must travel at a specific speed, called the orbital velocity, which is dependent on the radius of the orbit and the mass of the object being orbited.


Using the equations of orbital motion, we can calculate that the orbital velocity of the spacecraft is 2,299 m/s. To express this value with two significant figures, we round to 2.3 km/s.

It is important to note that the value given is only an approximation, and in reality the speed of the spacecraft can vary depending on the other objects and forces acting on it.

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a cable with 19.01 n of tension pulls straight up on a 1.79 kg block that is initially at rest. what is the block's speed after being lifted 1.62 m?

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When a cable with 19.01 N of tension pulls straight up on a 1.79 kg block that is initially at rest, the block's speed after being lifted 1.62 m is 3.01 m/s.

What is tension?

Tension is the force experienced by an object that is pulled or stretched.

When a cable with 19.01 N of tension pulls straight up on a 1.79 kg block that is initially at rest, the tension in the cable balances the weight of the block, which is 1.79 kg multiplied by the acceleration due to gravity of 9.8 m/s² or 17.542 N.

So, tension = 19.01 N (since the cable tension is the only force acting on the block).

Therefore, using the work-energy theorem,

W = ∆K,

where W is the work done on the block,

∆K is the change in the block's kinetic energy,

K = 1/2 m(v²).

Since the block begins at rest, K = 0 Joules when it starts moving upward, and it has some final velocity when it reaches 1.62 m.

So, W = 1/2 m(v²).

From the given data, the work done on the block is F∆y, where F is the force on the block, and ∆y is the distance the block has been lifted up to reach 1.62 meters of height.

So,∆K = F∆y∆K

= (19.01 N)(1.62 m)∆K

= 30.8182 J

The block's kinetic energy after reaching 1.62 meters of height is the same as the work done on it since no other external forces acted on it.

Therefore,

1/2 m(v²)

= 30.8182 J1/2 (1.79 kg)(v²)

= 30.8182 Jv²

= 34.31 v = 3.01 m/s

Therefore, the block's speed after being lifted 1.62 meters is 3.01 m/s.

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at a particular instant, a hot air balloon is 210 m in the air and descending at a constant speed of 3.5 m/s. at this exact instant, a girl throws a ball horizontally, relative to herself, with an initial speed of 21 m/s. when she lands, where will she find the ball? ignore air resistance. (find the distance, in meters, from the girl to the ball.)

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The ball which is thrown with a speed of 21 m/s, travels a distance of 129.99 m in the horizontal direction.

Therefore, the vertical component of the ball's motion will be determined by the force of gravity and the initial vertical speed of the balloon.

We can use the following kinematic equation to determine how long it takes for the ball to fall to the ground:

h = ut + 1/2 * g * t^2

where h is the initial height of the ball (equal to the height of the balloon which is 210 m).

u is the initial velocity of the ball in the vertical direction which is 3.5 m/s.

g is the acceleration due to gravity (approximately 9.8 m/s^2),

and t is the time it takes for the ball to fall to the ground.

Plugging in the values we know, we get:

210 = 3.5 * t + 1/2 * 9.8 * t^2

4.9 t^2 + 3.5 t - 210 = 0

t = 6.19 seconds

Now we can use the time it takes for the ball to fall to the ground to determine how far it travels horizontally, given its initial horizontal velocity of 21 m/s. We can use the following equation:

d = v * t

where d is the horizontal distance traveled by the ball, v is its initial horizontal velocity, and t is the time it takes to fall to the ground (which we just calculated).

Plugging in the values we know, we get:

d = 21 * 6.19

d ≈ 129.99 meters

Therefore, the girl will find the ball approximately at a distance of 129.99 meters away from her when she lands after throwing the ball horizontally.

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bob is pushing a box across the floor at a constant speed of 1.4m/s m / s , applying a horizontal force whose magnitude is 55n n . alice is pushing an identical box across the floor at a constant speed of 2.8m/s m / s , applying a horizontal force. a) what is the magnitude of the force that alice is applying to the box?

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The magnitude of the force that Alice is applying to the box is 110 N.

To calculate the force that Alice is applying, we need to use the equation F = ma. In this equation, F is the force applied, m is the mass of the box, and a is the acceleration of the box.

Since Alice is pushing the box at a constant speed of 2.8 m/s, the acceleration is 0, and the equation simplifies to F = 0 x m. Since the force must equal 0 when the acceleration is 0, the magnitude of the force that Alice is applying to the box is 0.

However, since Bob is pushing an identical box across the floor at a constant speed of 1.4 m/s, the acceleration is 0 and the equation simplifies to F = m x a. In this case, a is the acceleration of the box, which is 1.4 m/s.

Since we know that the magnitude of the force Bob is applying is 55 N, we can use the equation to calculate the force Alice is applying. 55 N = m x 1.4 m/s, which simplifies to m = 39.286.

We then substitute m back into the equation F = ma, so F = 39.286 x 1.4 m/s. This simplifies to F = 55.0 N, so the magnitude of the force Alice is applying is 55.0 N.

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Kyle, a 90.0 kg
football player, leaps straight up into the air (with no horizontal velocity) to catch a pass. He catches the 0.430 kg
ball precisely at the peak of his jump, when he is 0.589 meters
off the ground. He hits the ground 0.0396 meters
away from where he leapt. If the ball was moving horizontally when it was caught, how fast was the ball traveling?

Answers

As Kyle caught the ball, it was moving horizontally at a speed of roughly 0.116 m/s.

What is the formula for momentum change?

Momentum, which is the outcome of an object's mass and velocity, is used to represent mass in motion. An impulse is a force that is used to alter an object's velocity. The impulse, J, and the change in momentum of an object, p=m(vfvi), are equivalent.

mgh = (90.0 kg)(9.81 m/s²)(0.589 m) = 520.6 J

Therefore, Kyle's velocity just as he catches the ball is:

√{1}{2}mv² = 520.6 J implies v = √{2(520.6 J)}{90.0 kg} approx 10.4 m/s

Now, we can use Kyle's velocity and the horizontal distance he traveled to find the time he was in the air. The time is given by:

Delta x = vt implies t = {Delta x}{v} = {0.0396 m}{10.4 m/s} approx 0.0038 s

h = {1}{2}gt² implies t = √{2h}{g} = √{2(0.589 m)}{9.81 m/s²} approx 0.341 s

During this time, the ball traveled a horizontal distance of:

Delta x = vt = (v_{x,ball})(t) implies v_{x,ball} = {Delta x}{t} = {0.0396 m}{0.341 s} approx 0.116 m/s

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can the flow near a cylindrical rod of infinite length suddenly set in motion in the axial direction be described by the method in example 4.1-l?

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Yes, the flow near a cylindrical rod of infinite length can be described by the method in example 4.1-l. This example uses the method of images to calculate the velocity field of the axial flow around a cylindrical rod of infinite length.

To calculate the velocity field, we need to take the velocity potential of the image sources and double integrate it with respect to the cylindrical coordinates. This will yield the axial velocity.

The image sources are chosen such that the fluid flow is symmetric about the centerline of the rod. Therefore, when the axial flow is suddenly set in motion, the image sources also have a velocity in the axial direction. This velocity will be equal to the velocity of the original flow at the same position.

Once the velocity of the image sources is known, the velocity potential of the entire flow can be calculated. This velocity potential is then used to calculate the velocity field in the axial direction around the rod.

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the current through a lightbulb is 2.0 amperes. how many coulombs of leectric charge pass through ther luighbu,kb in one minute?

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The current through the bulb is 2.0 amperes. Then the electric charge that passes through Luighbu is 120 Columbs.

Given that the current through a lightbulb is 2.0 amperes. To find the coulombs of electric charge that pass through the light bulb in one minute, we need to know the formula that relates current, time, and electric charge:

Q = It

Where Q is the electric charge (in coulombs), I is the current (in amperes), and t is the time (in seconds).

To convert one minute to seconds, we multiply it by 60. Hence, the time t = 1 minute × 60 seconds/minute = 60 seconds.

So, the electric charge that passes through the light bulb in one minute is given by

Q = It = 2.0 A × 60 s

Q = 120 C

Therefore, the number of coulombs of electric charge that pass through the light bulb in one minute is 120 C.

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what is the definition of current? the amount of charge that flows through a cross-section of wire per unit time. the amount of charge per unit length of wire.

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The definition of current is a. the amount of charge that flows through a cross-section of wire per unit time.

Current is he flow of electric charge through a conductor or circuit is known as electric current. In other words, an electric current is defined as the movement of charge carriers (electrons) through a conductor. The SI unit of electric current is the ampere, symbolized as A. Electric current is a scalar quantity that can be positive or negative, depending on the direction of movement of the charge carriers.

The following formula gives the current in a wire: I = ΔQ/Δt, where I is the current, ΔQ is the change in charge, and Δt is the change in time. The electric current is the number of electrons passing through a cross-sectional area of a conductor per unit time. Electric current flows from a higher potential to a lower potential, that is, from a positive to a negative charge carrier.

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a double-slit with slit a width of 0.15 mm is placed 2.3 m from a viewing screen. how far is the first dark fringe from the middle screen when a light of wavelength 450 nm falls on the double-slit?

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The first dark fringe is located approximately 7.35 mm from the central maximum on the screen.

The location of the first dark fringe can be found using the formula:

y = (mλD) / d

where y is the distance from the central maximum to the first dark fringe, m is the order of the fringe (m = 1 for the first dark fringe), λ is the wavelength of light, D is the distance from the double-slit to the screen, and d is the slit spacing (which is the sum of the slit width and the distance between the centers of the two slits).

The slit width is given as 0.15 mm = 0.00015 m, and the wavelength of light is 450 nm = 0.00045 m. The distance from the double-slit to the screen is 2.3 m.

To find the slit spacing, we need to know the distance between the centers of the two slits. If the double-slit is a single piece with two slits, the distance between the centers of the slits is usually given as the width of the slits plus the distance between them. If this information is not provided, we can assume that the distance between the centers of the slits is approximately equal to the width of each slit. Therefore, we can estimate the slit spacing as:

d ≈ 2 × 0.00015 m = 0.0003 m

Substituting the values into the formula, we get:

[tex]y = (1 × 0.00045 m × 2.3 m) / 0.0003 m[/tex]

y ≈ 7.35 m

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a parallel-plate capacitor has a plate separation of 4.00 mm. 1) if the material between the plates is air, what plate area is required to provide a capacitance of 3.00 pf? (express your answer to three significant figures.)

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To get a capacitance of 3.00 pF with a plate separation of 4.00 mm and air between the plates, the plate area required is 1.062 × 10⁻⁵ m² (to 3 significant figures).

The plate separation, d = 4 mm. The capacitance, C = 3 pF = 3 × 10⁻¹² F.

We need to find the plate area, If the material between the plates is air, then the capacitance of a parallel plate capacitor can be given as:

[tex]$$C = \frac{\varepsilon_0A}{d}$$[/tex]

where, ε0 = permittivity of free space = 8.854 × 10⁻¹² F/m.

Substituting the given values in the above formula, we get:

[tex]$$\begin{aligned}C &= \frac{\varepsilon_0A}{d}\\ 3 × 10^{-12} &= \frac{8.854 × 10^{-12} \text{ F/m} × A}{4 × 10^{-3} \text{ m}}\\ A &= \frac{3 × 4 × 10^{-3} \text{ m} × 8.854 × 10^{-12} \text{ F/m}}{8.854 × 10^{-12} \text{ F/m} × 10^{-12}}\\ &= 1.062 × 10^{-5} \text{ m}^2 \end{aligned} $$[/tex]

Therefore, the plate area required to provide a capacitance of 3.00 pF is 1.062 × 10⁻⁵ m² (to three significant figures).

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when the ball is at its lowest point, is the tension in the string greater than, less than, or equal to the ball's weight? when the ball is at its lowest point, is the tension in the string greater than, less than, or equal to the ball's weight? the tension in the string is less than the ball's weight. the tension in the string is greater than the ball's weight. the tension in the string is equal to the ball's weight. it is impossible to determine.

Answers

The ball is at its lowest point, which means that the tension in the string is greater than the ball's weight.

Tension is defined as the force in a stretched object that is pulling against the force that is causing the stretch. The magnitude of the force that is pulling on an object is the tension in the object.

The tension in a string is the force that is pulling on the string. When the string is pulled, the tension increases. The tension in a string depends on the force that is pulling on the string.

The weight of the ball is the force that is pulling on the string. When the ball is at its lowest point, the tension in the string is greater than the ball's weight.

This is because the force of gravity pulling down on the ball is greater than the tension in the string which is causing the ball to move up.

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A 9.00 kg mass is moving to the right with a velocity of 14.0 m/s. A 12.0 kg mass is moving to the left with a velocity of 5.00 m/s. Assuming that these two balls have a head on collision and stick together, what will be the final velocity of the combination? (3.1 m/s)

Answers

Answer:

5.95 m/s to the right

Explanation:

Before the collision, the momentum of the system is given by:

p = m1v1 + m2v2

p = (9.00 kg)(14.0 m/s) + (12.0 kg)(-5.00 m/s)

p = 125.0 kg m/s (to the right)

During the collision, the two masses stick together, so their final velocity will be the same. Let's call this final velocity vf. The momentum of the system after the collision is given by:

p' = (m1 + m2)vf

p' = (9.00 kg + 12.0 kg)vf

p' = 21.0 kg vf

Since momentum is conserved in the collision (there are no external forces acting on the system), we can set p = p' and solve for vf:

125.0 kg m/s = 21.0 kg vf

vf = 5.95 m/s (to the right)

Therefore, the final velocity of the combined masses after the collision is 5.95 m/s to the right.

quantum mottle is caused by a. excessive ma-s b. excessive kvp c. insufficient distance d. insufficient light

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Quantum mottle, also known as quantum noise, is caused by a lack of photons reaching the image receptor due to insufficient mAs (milliamperage-seconds) in digital radiography. The correct answer is option : a.

This results in a grainy, speckled appearance in the image. Increasing mAs can help to reduce quantum mottle by providing more photons to the image receptor. However, other exposure factors such as kVp and distance also play a role in achieving a diagnostic quality image while minimizing patient dose. Quantum mottle is caused by insufficient mAs in digital radiography, resulting in a grainy, speckled appearance in the image. Correct answer is option: a.

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what average force is required to stop a 900 kg k g car in 7.0 s s if the car is traveling at 90 km/h k m / h ?

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The average force required to stop a 900 kg car in 7.0 s if the car is traveling at 90 km/h is -3213 N.

First, we need to convert the speed from km/h to m/s,

90 km/h = 25 m/s (approx)

We can use the equation,

a = (v_f - v_i) / t

where a is the acceleration, v_f is the final velocity (which is zero since the car comes to a stop), v_i is the initial velocity (which is 25 m/s), and t is the time it takes to come to a stop (which is 7.0 s).

Plugging in the values,

a = (0 - 25 m/s) / 7.0 s = -3.57 m/s^2

The negative sign indicates that the acceleration is in the opposite direction to the car's initial velocity.

Now, we can use Newton's second law of motion, which states that force is equal to mass times acceleration,

F = ma

where F is the force required to stop the car, m is the mass of the car (which is 900 kg), and a is the acceleration we calculated earlier.

Plugging in the values,

F = 900 kg x (-3.57 m/s^2) = -3213 N

The negative sign indicates that the force is in the opposite direction to the car's motion.

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during a process, if the state of the system does not change, the system energy will: multiple choice question. increase. stay the same. decrease.

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During a process, if the state of the system does not change, the system energy will stay the same.

Energy is the ability of an object or system to do work on another object or system. There are different forms of energy like kinetic energy, potential energy, thermal energy, and so on. Energy can be converted from one form to another, but it cannot be created or destroyed. This is the law of conservation of energy.

If a process takes place, then the energy of the system may change. Energy can be absorbed by the system or released by the system. If the system state does not change, then there is no energy transfer involved. Therefore, the system energy will stay the same.

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which is the correct unit to represent time?

d) 7m
b) 7m/h
c) 7 s

Answers

c) is the correct unit to represent time

bioelectrical impedance analysis is a commercially available method used to estimate body fat percentage. the device applies a small potential between two parts of the patient's body and measures the current that flows through. with an estimate of the resistance individually of the muscle and fat between the two points, the composition of the tissue can be estimated. assume that the muscle and fat tissue can be modeled as resistors in parallel. part a part complete if the resistance of fat is 3 times that of muscle, what is the resistance of fat if a 1 ma m a current is measured when potential difference of 0.5 v v is applied to the patient's arm?

Answers

2000 ohms is the the resistance of fat if a 1 ma m a current is measured when potential difference of 0.5 v v is applied to the patient's arm.

How to solve for the resistance

we have r = resistance of the muscle

R = fat resistance

we are given R = 3r

such that the R total would be solved using ohms law:

We would have 3r² / 4r

= 0.75r

when we use the Ohm's law we would have the follwoing calculation

0.5 = 0.001 * 0.75 r

we are to solve for the value of r

0.5 = 0.00075r

divide through by:

r = 0.5 / 0.00075

= 666.667

Remember that R = 3r

R = 3 * 666.667

R = 2000 ohms

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an audio speaker producing a steady sound at an outdoor concert is 18 ft away from you. if you move to a position where the speaker is 78 ft distant, by what factor will the amplitude of the sound change?

Answers

The amplitude of the sound from the speaker at the outdoor concert will change by a factor of 4.2 (78 ft/18 ft) when you move from 18 ft away to 78 ft away.

This is because sound intensity decreases as the distance from the source increases, following an inverse square law. The inverse square law states that the intensity of a sound source is inversely proportional to the square of the distance from the source.
Mathematically, the formula is: I = I0 / (r^2), where I is the intensity at a distance r from the source of intensity I0. This means that when you move from 18 ft away to 78 ft away, the intensity of the sound decreases by a factor of 4.2 ((78 ft/18 ft)^2).
Therefore, the amplitude of the sound from the speaker at the outdoor concert will change by a factor of 4.2 when you move from 18 ft away to 78 ft away.

a wheel of radius r and negligible mass is mounted on a horizontal frictionless axle so that the wheel is in a vertical plane. three small objects of mass im, m, and 2mi respectively are mounted on the rim of the wheel, as shown. if the system is in static equilibrium, what is the value of m in terms of m?

Answers

Answer: C) 3M/2

Explanation:

rotational equilibrium at center pivot

mg(R) + Mg(Rcos60°) – 2Mg(R) = 0.

so cos60° = ½  meaning r 3M/2

A wheel of radius r and negligible mass is mounted on a horizontal frictionless axle so that the wheel is in a vertical plane. The value of m in terms of i is m = 2i * r.

The value of m in terms of m, we can use the condition for static equilibrium which states that the sum of all the forces acting on the system must be zero, and the sum of all the torques must also be zero.
Considering the forces acting on the system, we can see that there are only two: the weight of the objects and the tension in the string that connects them to the wheel. Since the system is in static equilibrium, the tension must be equal to the weight of the objects.
Next, let's consider the torques acting on the system. The torques due to weights of the objects are balanced by the torques due to their distances from the axis of rotation. However, the torque due to the tension in the string is not balanced and produces a net torque on the system.
We can calculate the torque due to the tension in the string by multiplying the tension by the radius of the wheel. The torque due to each object can be calculated by multiplying its weight by its distance from the axis of rotation. Since the system is in static equilibrium, the net torque must be zero, which gives us the following equation:
Tension x Radius = (2im) x 2r + m x r - im x r
Simplifying this equation, we get:
Tension x Radius = 4imr + mr - imr
Tension = (5im + m) / r
Since we know that the tension is equal to the weight of the objects, we can equate the tension to the sum of the weights and solve for m:
(5im + m) / r = 5im + m + 2im
m/r = 2im
m = 2i * r
Therefore, the value of m in terms of i is m = 2i * r.

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a 100 ohm resistor is connected in series with a 300 ohm resistor. what is the equivalent resistance?

Answers

Answer:

Explanation:

Durante as aulas, os estudantes da 3ª série deveriam escolher uma entre as três atividades físicas possíveis, sendo elas: natação, futsal e dança. Na turma, 25% escolheram dança, 15% escolheram natação, e os outros 24 estudantes escolheram futsal. Podemos afirmar que, nessa turma, existe um total de:

A) 64 alunos

B) 55 alunos

C) 48 alunos

D) 45 alunos

E) 40 alunos

If a 100-ohm resistor is connected in series with a 300-ohm resistor, Then the equivalent resistance of the circuit is 400 ohm.

Resistance in electrical circuits is a measure of how much a component or material opposes the flow of electric current through it. It is denoted by the symbol R and is measured in units called ohms, represented by the Greek letter omega (Ω).

When resistors are connected in series, their resistances add up to give the total or equivalent resistance of the circuit.

Now, to find the equivalent resistance of a circuit with a 100-ohm resistor and a 300-ohm resistor in series, we simply add their resistances together:

Equivalent resistance = 100 ohm + 300 ohm

Equivalent resistance = 400 ohm

Therefore, the equivalent resistance of the circuit is 400 ohms.

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Choose a correct short description of a real object for which this would be the correct free-body diagram (Figure 1) Check all that apply. a. An object hanging from a rope is moving up with a constant speed. b. An object hanging from a rope is moving down with a constant speed c. An object hanging from a rope is moving down with a constant acceleration d. An object hanging from a rope is moving up with a constant acceleration

Answers

The correct short description of a real object for which the given free-body diagram (Figure 1) would be applicable is:

b. An object hanging from a rope is moving down with a constant speed.

This is because the diagram shows the forces acting on an object (in this case, tension and weight) when it is in equilibrium or moving with a constant velocity. In this scenario, the object is hanging from a rope, which means that the tension force and the weight force are in balance, and the object is not accelerating. Since the object is moving down with a constant speed, the forces acting on it are balanced, and the free-body diagram in Figure 1 would be applicable.

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A 750-kg roller coaster car drops from rest at a height of 90.0 m along a frictionless track. If the coefficient of kinetic friction due to braking along a horizontal track at the end of the ride is 0.720, over what distance does the car need to brake to come to a complete stop?

Answers

Roller coaster car's mass -
m
=
750

k
g
m=750 kg
Initial height -
h
1
=
90

m
h
1

=90 m
Coefficient of friction -
μ
k
=
0.72
μ
k

=0.72

stars that lie in different places on the main sequence of the h-r diagram differ from each other mainly by having different:

Answers

Answer: The main sequence stars lying in different places differ from each other mainly by having different luminosities and temperatures.

What is an H-R diagram?

An H-R diagram is a plot of stars' luminosity (brightness) versus their surface temperature. On the x-axis, surface temperature is represented, while on the y-axis, luminosity is represented. This plot is used to analyze the characteristics of stars and can provide information such as its temperature, radius, mass, and luminosity.

It is a useful tool for astronomers because it can identify different types of stars, including giants, supergiants, and white dwarfs. It can also be used to compare the various stages of a star's life and to predict how stars evolve over time.




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a supernova explosion of a 3.2 x1031 kg star produces 1.0 x1044 j of energy. (a) how many kilograms of the star's mass are converted to energy in the explosion?

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The amount of the star's mass converted to energy in the explosion is 1.11 x 10^27 kg.

Calculating energy:

The mass-energy equivalence equation is used to calculate the mass that is converted to energy during a supernova explosion of a 3.2 x 10^31 kg star, producing 1.0 x 10^44 J of energy.

According to Einstein's mass-energy equivalence equation: E = mc² where, E = energy, m = mass, and c = speed of light This equation expresses the relationship between the mass of an object and the amount of energy that can be released from it.

So, to determine the mass that is converted to energy during the supernova explosion, we need to rearrange the equation as m = E/c². Now we have the following data: E = 1.0 x 10^44 Jc = 3.0 x 10^8 m/s² (speed of light). Substitute these values into the equation to get: m = E/c²m = (1.0 x 10^44 J)/(3.0 x 10^8 m/s)²m = 1.11 x 10^27 kg

Therefore, the supernova explosion of a 3.2 x 10^31 kg star converts 1.11 x 10^27 kg of its mass to energy.

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if three bulbs 30 w, 40 w, and 110 w are connected in parallel to each other and to a 120-v source, calculate the current through each bulb.

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The current through each bulb when three bulbs 30 W, 40 W, and 110 W are connected in parallel to each other and to a 120 V source can be calculated by dividing the total power output of the three bulbs by the voltage supplied. The total power output of the three bulbs is 180 W (30 + 40 + 110). Therefore, the current is calculated as 1.5 A (180 W / 120 V).

The current through each bulb can also be calculated individually by dividing the power output of each bulb by the voltage supplied. For the 30 W bulb, the current is 0.25 A (30 W / 120 V). For the 40 W bulb, the current is 0.33 A (40 W / 120 V). For the 110 W bulb, the current is 0.92 A (110 W / 120 V).

To summarize, the current through each bulb when three bulbs 30 W, 40 W, and 110 W are connected in parallel to each other and to a 120 V source is 0.25 A, 0.33 A, and 0.92 A, respectively.

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To determine the location of her center of mass, a physics student lies on a lightweight plank supported by two scales 2.50m apart, as indicated in the figure . If the left scale reads 290 N, and the right scale reads 112 N. What is the student's mass and find the distance from the student's head to her center of mass.

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The location of her centre of mass, a physics student lies on a lightweight plank supported by two scales 2.50m apart, as indicated in the figure. If the left scale reads 290 N and the right scale reads 112 N The student's mass is approximately 41 kg, and the distance from her head to her centre of mass is approximately 0.696 m.

To determine the student's mass, we can sum up the readings from both scales, which are measures of force (Newtons) and then convert it to mass using the gravitational acceleration (g = 9.81 m/s²).
Step 1: Calculate the total force acting on the plank:
Total Force = Force_left_scale + Force_right_scale
Total Force = 290 N + 112 N
Total Force = 402 N
Step 2: Convert the total force to mass using gravitational acceleration:
Mass = Total Force / g
Mass = 402 N / 9.81 m/s²
Mass ≈ 41 kg
Now, to find the distance from the student's head to her centre of mass, we'll use the principle of torque equilibrium.
Step 3: Set up the torque equation:
Torque_left_scale = Torque_right_scale
Force_left_scale × Distance_left_scale = Force_right_scale × Distance_right_scale
Let x be the distance from the student's head to her centre of mass. Then, the distance from the left scale to the centre of mass is x, and the distance from the right scale to the centre of mass is (2.50 - x).
Step 4: Plug in the known values and solve for x:
290 N × x = 112 N × (2.50 - x)
Step 5: Simplify the equation and solve for x:
290x = 112(2.50) - 112x
290x + 112x = 112(2.50)
402x = 280
x ≈ 0.696 m
The student's mass is approximately 41 kg, and the distance from her head to her centre of mass is approximately 0.696 m.

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speed up a frictionless ramp ( 30.03) by a horizontal force . what are the magnitudes of (a) and (b) the force on the crate from the ramp?

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The magnitudes of (a) and (b) the force on the crate from the ramp can be calculated using Newton's second law of motion. According to this law, the net force on an object is equal to the mass of the object multiplied by its acceleration.

In this case, (a) is the force of friction, which is equal to the coefficient of friction multiplied by the normal force. The normal force is equal to the mass of the crate multiplied by the acceleration of gravity (g). Therefore, the magnitude of (a) is equal to the coefficient of friction multiplied by the mass of the crate multiplied by the acceleration of gravity.

(b) is the force of the horizontal force applied to the ramp, which is equal to the magnitude of the horizontal force multiplied by the cosine of the angle of the ramp. The magnitude of (b) is therefore equal to the magnitude of the horizontal force multiplied by the cosine of the angle of the ramp.

To sum up, the magnitudes of (a) and (b) the force on the crate from the ramp can be calculated using Newton's second law of motion. (a) is the force of friction, equal to the coefficient of friction multiplied by the normal force. (b) is the force of the horizontal force applied to the ramp, equal to the magnitude of the horizontal force multiplied by the cosine of the angle of the ramp.

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any helping hand will be appreciated ^^

Psychologists have described the human nervous system as the communication and control center for the body. The nervous system allows us to take in information from the environment, communicate the information to different parts of the body, and coordinate the body's response. The nervous system itself is made up of neurons, or nerve cells, that communicate with each other by receiving and transmitting electrochemical signals, called neurotransmission. All human behavior is made possible by the activity of individual neurons working together in the nervous system. Think about a simple action you do every day, like answering your phone. When you perform this routine act, what are the individual neurons in your nervous system doing to make it possible?


a. Explain how the activity of individual neurons enables you to perform a simple action like answering your phone. Be sure to describe the main parts of a neuron, explain the unique function of each part, and describe how neurons use electrochemical signals for neurotransmission. Include details from class materials, readings, and research on the nervous system to support your discussion.​

Answers

When you perform a simple action like answering your phone, the activity of individual neurons in your nervous system enables you to take in information from your environment and coordinate a response.

How neurons help us perform activities ?

When a neuron receives a signal from a dendrite, it generates an electrical impulse called an action potential, which travels down the length of the axon. At the end of the axon, the electrical signal triggers the release of neurotransmitters, which are chemical messengers that transmit the signal to other neurons or muscle cells.

The neurotransmitters bind to specific receptors on the dendrites of the next neuron or muscle cell, which generates a new electrical signal and starts the process over again. This process of neurotransmission allows for rapid communication and coordination between neurons, which is necessary for even simple actions like answering your phone.

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a weight hanging from a spring will remain hanging until the weight is pulled down and released. when the weight is released the spring will bounce up and down. which of newton's laws explains why the spring will bounce?

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This principle can be observed in other everyday scenarios, such as jumping on a trampoline or the recoil of a gun after firing.  Newton's Third Law of Motion is a fundamental principle in classical mechanics and explains why the spring will bounce when the weight is released.

The bouncing of the weight when released is explained by Newton's Third Law of Motion, which states that for every action there is an equal and opposite reaction. When the weight is released, the spring exerts an equal and opposite force on the weight, propelling it upwards and causing it to bounce. This is because when the weight is pulled down, it compresses the spring, storing potential energy. When the weight is released, the spring decompresses and the potential energy is released, propelling the weight in the opposite direction.

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