Suppose a neutron star with a mass of about 1.5MSun and a radius of 10 kilometers suddenly appeared in your hometown. How thick a layer would Earth form as it wraps around the neutron star's surface? Assume that the layer formed by Earth has the same average density as the neutron star. (Hint: Consider the mass of Earth to be distributed in a spherical shell over the surface of the neutron star and then calculate the thickness of such a shell with the same mass as Earth. The volume of a spherical shell is approximately its surface area times its thickness: Vshell=4πr^2×h. Because the shell will be thin, you can assume that its radius is the radius of the neutron star.)Express your answer to two significant figures and include the appropriate units.

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Answer 1

Earth would form a layer around the neutron star with a thickness of 6.2 km.

Mass of the neutron star = 1.5 MSun. Radius of the neutron star = 10 km. Let's assume that the layer formed by Earth has the same average density as the neutron star. Since the mass of the neutron star is 1.5 MSun, this means that Earth will wrap around the neutron star's surface in a spherical shell over the surface of the neutron star whose mass is equal to the mass of the Earth.

Let's first calculate the volume of the neutron star, VNS:VNS = (4/3)πr³= (4/3)π(10 km)³= 4,188.8 km³. We can now calculate the mass of the neutron star, MNS, using its average density, D, which is:

D = MNS / VNS 1.5 MSun = MNS / 4,188.8 km³. Therefore, MNS = (1.5 MSun)(4,188.8 km³) = 6,283.2 MSun.

We know that the thickness, h, of the shell is needed to calculate the volume, Vshell, of the spherical shell with the same mass as Earth. The volume of a spherical shell is approximately its surface area times its thickness: Vshell=4πr^2.h, so we can now use the above equation to calculate h.h = Vshell / (4πr²)= MEarth / (D × 4πr²). Where MEarth is the mass of the Earth. MEarth = 5.97 × 10²⁴ kgD = MNS / VNS = (6,283.2 MSun) / (4,188.8 km³) = 1.50 × 10¹⁷ kg/km³r = 10 km. Putting in these values:h = (5.97 × 10²⁴ kg) / (1.50 × 10¹⁷ kg/km³ × 4π(10 km)²) = 6.2 km.

Therefore, Earth would form a layer around the neutron star with a thickness of 6.2 km.

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Related Questions

To stretch a spring 5.00cm from its unstretched length, 19.0J of work must be done.1- what is the force constant of the spring ?2- What magnitude force is needed to stretch the spring 5.00cm from its unstretched length?3- How much work must be done to compress this spring 4.00 cm from its unstretched length?4-What force is needed to stretch it this distance?

Answers

1) The force constant of the spring is 0.76N/cm, 2) The magnitude force needed to stretch the spring 5.00cm from its unstretched length is 3.80N, 3) Work done to compress this spring 4.00 cm from its unstretched length is 12.48J, 4) Force needed to stretch it this distance is 3.04N.


1- To calculate the force constant of the spring, you need to use the equation W = 1/2 kx2, where W is the work done to stretch the spring, k is the force constant and x is the stretch distance. In this case, W = 19.0J and x = 5.00cm, so k = 19.0/25 = 0.76N/cm.


2- To calculate the magnitude of the force needed to stretch the spring 5.00cm from its unstretched length, you need to use the equation F = kx, where F is the force, k is the force constant, and x is the stretch distance. In this case, F = 0.76N/cm x 5.00cm = 3.80N.


3- To calculate the work done to compress this spring 4.00 cm from its unstretched length, you need to use the equation W = 1/2 kx2, where W is the work done to compress the spring, k is the force constant and x is the compression distance. In this case, W = 1/2 x 0.76N/cm x (4.00 cm)2 = 12.48J.


4- To calculate the force needed to stretch the spring this distance, you need to use the equation F = kx, where F is the force, k is the force constant, and x is the stretch distance. In this case, F = 0.76N/cm x 4.00cm = 3.04N.

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Two coherent sources of intensity ratio 1 : 4 produce an interference pattern. The visibility of fringes will be a. 1
b. 0.6
c. 0.8
d. 0.4

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Two coherent sources of intensity ratio 1: 4 produce an interference pattern. The visibility of fringes will be 0.6. Thus, the correct option is B.

What is Interference pattern?

The interference pattern results from the superimposition of two coherent sources. When light waves from two coherent sources are superimposed, an interference pattern is created, resulting in a pattern of light and dark fringes. The distance between the two sources, the wavelength of the light, and the angle of observation all affect the pattern. This pattern is referred to as an interference pattern.

The interference pattern's visibility is defined as the ratio of the maximum intensity to the minimum intensity.

V = (Imax- Imin)/(Imax + Imin)

where, V is the visibility of the fringe, Imax is the maximum intensity, and Imin is the minimum intensity.

According to the question, Two coherent sources of intensity ratio 1:4 produce an interference pattern.

Using the above formula: V = (Imax - Imin)/(Imax + Imin)

We know that the two sources' intensity ratio is 1:4.

Therefore, let the intensity of the first source be I1 and the intensity of the second source be I2.I1/I2 = 1/4 = I2 = 4I1

Imax = I1 + I2 = I1 + 4I1 = 5I1

Imin = I1 - I2 = I1 - 4I1 = -3I1

Substitute the value of Imax and Imin in the visibility formula:

V = (Imax - Imin)/(Imax + Imin)= (5I1 - (-3I1))/(5I1 + (-3I1))= (5I1 + 3I1)/(5I1 - 3I1) = 8I1/2I1 = 4

Therefore, the visibility of fringes will be 0.6.

Therefore, the correct option is B.

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A __________ pollutant interacts with a part of the atmosphere and becomes a __________ pollutant.primary; secondarysecondary ; primary

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A primary pollutant interacts with a part of the atmosphere and becomes a secondary pollutant.

No additional chemical reactions are required for a primary pollutant to interact with the atmosphere and become a pollution. Carbon monoxide, sulfur dioxide, nitrogen oxides, and particulate matter are a few examples of main pollutants. A secondary pollutant, on the other hand, is not immediately released into the atmosphere; instead, it develops as a result of chemical interactions between primary pollutants and other atmospheric constituents. Ozone, sulfuric acid, and nitric acid are a few examples of secondary pollutants. the following is the appropriate response to the stated question: A secondary pollutant is created when a primary pollutant interacts with a component of the atmosphere.

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Artificial gravity. One way to create artificial gravity in a space station is to spin it. Part A If a cylindrical space station 325 m in diameter is to spin about its central axis, at how many revolutions per minute (rpm) must it turn so that the outermost points have an acceleration equal to g ? f = nothing rpm

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The space station must turn at 1.49 revolutions per minute (rpm) so that the outermost points have an acceleration equal to g.

Part A:If a cylindrical space station with a diameter of 325 m is to spin about its central axis, at how many revolutions per minute (rpm) must it turn so that the outermost points have an acceleration equal to g?The acceleration of the outermost points is given as g. To create artificial gravity, the space station must spin about its central axis. To determine the required rpm, use the formula for acceleration due to centripetal force, which is given by:a = rω2Where, a is the acceleration due to centripetal force, r is the radius of the circle, and ω is the angular velocity of the object in radians per second. One full rotation equals 2π radians. Therefore, the angular velocity can be computed asω = 2πnwhere n is the number of revolutions per second. To transform it to rpm, use the formula:n = (r.p.m)/(60s)Substitute the values in the formula to obtain the solution as follows:g = a = rω2r = 325/2 = 162.5ma = g = 9.8 m/s2ω = 2πn⇒ω2 = (2πn)2⇒ω2 = 4π2n2Substitute the values in the formula for a to obtain:rω2 = g⇒(162.5 m)(4π2n2) = 9.8 m/s2n = 1.49 rpmTherefore, the space station must turn at 1.49 revolutions per minute (rpm) so that the outermost points have an acceleration equal to g.

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how do net torque and rotational inertia affect the angular acceleration of a rotating object? experimentally determine the mathematical relationship between net torque, rotational inertia, and angular acceleration of a rotating object

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Net torque and rotational inertia are related to the angular acceleration of a rotating object.

In general, the angular acceleration of a rotating object is directly proportional to the net torque applied to the object and inversely proportional to the object's rotational inertia.

Mathematically, this can be represented as:

α = τ / I

Where

α is the angular acceleration of the object,

τ is the net torque applied to the object, and

I is the object's rotational inertia.

The net torque is the total torque acting on an object, and it is the difference between the clockwise and anticlockwise torques. The rotational inertia of an object is the measure of an object's resistance to rotational motion.When the net torque acting on an object is zero, the angular acceleration of the object is also zero. This is because the torque and angular acceleration have a linear relationship. The greater the torque applied to an object, the greater the angular acceleration of the object.

In conclusion, the net torque and rotational inertia affect the angular acceleration of a rotating object, and the mathematical relationship between them can be experimentally determined using the formula α = τ / I.

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While you stand on the floor you are pulled downward by gravity and supported upward by the floor. Gravity pulling down and the support force pushing up
answer choicesa. make an action-reaction pair of forces.
b. do not make an action-reaction pair of forces.
c. need more information

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While you stand on the floor you are pulled downward by gravity and supported upward by the floor. Gravity pulling down and the support force pushing up make an action-reaction pair of forces (option A)

What is an action-reaction pair of forces?

Action-reaction pair of forces is a term that refers to a pair of forces that are the same in size but opposite in direction. The action force is applied by an object on another object, whereas the reaction force is the force that the second object exerts on the first object in response to the action force. As an illustration, if an object A exerts a force on object B, then object B exerts a force back on object A which is equal in size but opposite in direction.

The given statement "While you stand on the floor you are pulled downward by gravity and supported upward by the floor" is describing a situation that involves two forces: gravity and the support force exerted by the floor.

Gravity is pulling you downward, while the support force exerted by the floor is pushing you upward.The force exerted by the floor on you and the force exerted by you on the floor are action-reaction pairs. This is because the support force exerted by the floor on you and the force you exert on the floor are equal in magnitude but opposite in direction, and they are both part of the same interaction.

Therefore, the correct option is (a) make an action-reaction pair of forces.

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A kangaroo is capable of jumping to a height of 2.62m. Determine the takeoff speed of the kangaroo.

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Answer: 7.17

Explanation:

Maximum height reached by Kangaroo H=2.62

Final velocity at the maximum height v=0

Acceleration due to gravity   g=−9.8 m/s2    

Using   v2−u2=2gH∴   0−u2=2(−9.8)(2.62)

⟹ u=2(9.8)(2.62)​=7.17 m/s

the speed of an airplane is 275 mi/h relative to the air. the wind is blowing due north with a speed of 35 mi/h. in what direction should the airplane head in order to arrive at a point due west of its location? (round your answer to two decimal places.)

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The airplane should head in a direction of 298.93° relative to north in order to arrive at a point due west of its location.

To calculate this, first calculate the speed of the airplane relative to the ground.

The airplane's speed relative to the ground is:
Speed relative to ground = Speed relative to air + Wind Speed
= 275 mi/h + 35 mi/h
= 310 mi/h
Next, calculate the direction relative to north of the airplane's movement. The direction relative to north is calculated using the following formula:
Direction relative to north = tan-1(Opposite/Adjacent)
= tan-1(35 mi/h/310 mi/h)
= tan-1(0.1145)
= 298.93°
Therefore, the airplane should head in a direction of 298.93° relative to north in order to arrive at a point due west of its location.

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A 1200-turn coil of wire that is 2. 3 cm in diameter is in a magnetic field that drops from 0. 13 T to 0 T in 12 ms. The axis of the coil is parallel to the field. What is the emf of the coil? Express your answer using two significant figures

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In a magnetic field that decreases from 0. 13 T to 0 T in 12 ms, a wire coil with 1200-turns and a 2. 3 cm diameter is placed. The coil's axis is perpendicular to the field. The coil's emf is 0.059 V.

A coil of wire experiences an electromotive force (emf) when it is exposed to a fluctuating magnetic field. The magnetic field across the coil changes at a rate precisely proportionate to the emf. We are given the magnetic field, the coil's size, and its number of turns in this issue. We determine the change in magnetic flux through the coil as the magnetic field weakens over time using the magnetic flux formula. Lastly, we determine the induced emf in the coil using the emf formula. The response, 0.064 V, is the emf's magnitude, and the answer's negative sign denotes the flow of induced current.

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during a one-second period, air is added into a rigid tank. the volume of the tank is 3 m3 and the initial density of air is 1.2 kg/m3; at the end of the charging process, the density of air reaches 6.3 kg/m3. what is the mass flow rate of air that is entering the tank?

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The mass flow rate of air that is entering the tank is 15.3 kg/s.

The mass flow rate of air that is entering the tank can be calculated by using the following formula:

Mass flow rate = density × volume flow rate

The term "density" refers to the amount of mass per unit volume. It is calculated as the mass of an object divided by its volume. Mass flow rate is the mass of a fluid that flows through a given area per unit of time.

The volume of the tank is 3 m³.

The initial density of air is 1.2 kg/m³.

At the end of the charging process, the density of air reaches 6.3 kg/m³.

We will first find the volume flow rate.

The volume flow rate is equal to the change in volume over time.

Volume flow rate = Volume change / Time taken = 3 m³ / 1 sec = 3 m³/s

Now, we can calculate the mass flow rate using the formula:

Mass flow rate = density × volume flow rate

Density = 6.3 kg/m³ − 1.2 kg/m³ = 5.1 kg/m³

Mass flow rate = 5.1 kg/m³ × 3 m³/s = 15.3 kg/s

Therefore, the mass flow rate of air entering the tank is 15.3 kg/s.

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a big block of mass m(10kg) slides down a frictionless inclined at an angle 30 with the horizontal table. initially the block is at the top of the incline at rest. determine the speed of the block at the bottom of the incline

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When the big block of mass m(10kg) slides down a frictionless inclined at an angle 30 with the horizontal table, the speed of the block at the bottom of the incline is 3.14 m/s.

Given that

Mass of the block, m = 10 kg.

Angle of inclination, θ = 30°

Initial velocity, u = 0.

Frictional force, f = 0.

Using the formula for gravitational force, F = mg

where, g = 9.8 m/s² (acceleration due to gravity)

F = mg= 10 kg × 9.8 m/s²= 98 N

The component of gravitational force that acts parallel to the incline, Fsinθ is responsible for the acceleration of the block. Fsinθ = ma; Where a is the acceleration of the block.

a= (98 N)sin 30° / 10 kg= 4.9 m/s²

Using the formula for speed, v = u + at where,

u = initial velocity = 0m/s

t = time taken = time taken to slide from top to bottom of the incline.= √(2h/g) where,

h = height of the incline = 2 m (since the mass is at rest initially at the top of the incline).

Therefore, t = √(2 × 2 m / 9.8 m/s²)= 0.64 s

Substituting the values in the above formula, v = u + at= 0 + (4.9 m/s² × 0.64 s)= 3.14 m/s.

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when subjected to heating and cooling, the change in the refractive index of nontempered glass is significantly greater than the change in the refractive index of tempered glass.

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When subjected to heating and cooling, the change in the refractive index of nontempered glass is significantly greater than the change in the refractive index of tempered glass. True because tempered glass is less sensitive to changes in temperature.

Refractive index is a measure of how much light bends when it passes through a material. It can be calculated by dividing the speed of light in a vacuum by the speed of light in the material. As the temperature of a material changes, its refractive index can also change. This is because the speed of light in a material is affected by its temperature. Tempered glass has been subjected to a special heating and cooling process that makes it more durable than nontempered glass.

During this process, the glass is heated to a very high temperature and then cooled rapidly. This creates a strong, durable material that is less likely to break or shatter. However, this process also has an effect on the refractive index of the glass. When tempered glass is heated and cooled, its refractive index changes, but the change is not as significant as it is for nontempered glass. This means that tempered glass is less sensitive to changes in temperature and is therefore more stable and less likely to break or shatter.

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when you look at a spiral that appears to move inward for about a minute, and then look at a stationary object, the object will briefly appear to ......

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When you look at a spiral that appears to move inward for about a minute, and then look at a stationary object, the object will briefly appear to move outwards. This phenomenon is known as the motion aftereffect (MAE).

After staring at the spiral for about a minute, your brain becomes accustomed to the constant motion of the spiral. When you look away from the spiral and fix your gaze on a stationary object, your brain continues to perceive motion in the opposite direction (outwards).

This is why the stationary object appears to move outwards for a brief period. The motion aftereffect is an example of the adaptation process that takes place in the visual system. It is a perceptual illusion that occurs when the brain is exposed to a particular type of visual stimulus for a prolonged period of time.

Hence, when you look at a spiral that appears to move inward for about a minute, and then look at a stationary object, the object will briefly appear to move outwards.

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The angular momentum of the propeller of a small single-engine airplane points forward. The propeller rotates clockwise if viewed from behind.(a) Just after liftoff, as the nose lifts and the airplane tends to veer to one side. To which side does it veer and why?(b) If the plane is flying horizontally and suddenly turns to the right, does the nose of the plane tend to move up or down? Why?

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(a) Airplane veers left after takeoff due to torque from the clockwise-spinning propeller. (b) Centripetal force during a right turn causes lift force to redirect partially upward, causing the nose to rise. Speed may affect nose drop.

(a) The airplane is pushed to the left shortly after takeoff by the torque or gyroscopic precession produced by the propeller's clockwise spin. When the nose is elevated while the aircraft is flying slowly, this impact is more noticeable. This happens as a result of the airplane tilting to one side due to the propeller's thrust being offset from the center of gravity.

(b) During a right turn, the centripetal force acts on the plane, causing a lift in an upward direction, which can raise the nose. However, a speed decrease can cause the nose to drop. Lift force is crucial in nose motion during turns

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A train is moving up a steep grade at constant velocity (see following figure) when its caboose breaks loose and starts rolling freely along the track. After 5.0 s, the caboose is 30 m behind the train. What is the acceleration of the caboose?

Answers

The velocity of the caboose is constant, so the acceleration is zero. Therefore, the caboose's acceleration is 0 m/s².

Acceleration is the rate at which the velocity of an object changes over time. The formula for acceleration is expressed as a = (v - u) / t where a is acceleration, v is final velocity, u is initial velocity, and t is time.

The velocity of the train and the caboose is the same. The caboose breaks loose and starts rolling freely along the track. Therefore, the velocity of the caboose is the same as the velocity of the train.

Given that the train moves at a constant velocity, the initial velocity of the caboose is the same as the final velocity.

Using the formula above, the acceleration of the caboose is calculated as follows:

a = (v - u) / ta

= (0 - 0) / 5.0

a = 0 m/s²

Therefore, the acceleration of the caboose is 0 m/s². This result makes sense since the caboose is moving at constant velocity.

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A circuit consists of a 10.0-ohm resistor, a 15.0-ohm resistor, and a 20.0-ohm resistor connected in parallel across a 9.00-volt battery. What is the equivalent resistance of this circuit?0.200 Ω1.95 Ω4.62 Ω45.0 Ω

Answers

The equivalent resistance of this circuit is 4.62 Ω.

What is resistors?

A resistor is an electronic component that is used to resist or limit the flow of electric current through a circuit. It is a passive component, which means it does not require any external power source to function.

Resistors are typically made of materials that have a high resistance to the flow of electric current, such as carbon, metal, or metal oxide

When resistors are connected in parallel, the total resistance can be calculated using the following formula:

1/Req = 1/R1 + 1/R2 + 1/R3 + ...

where Req is the equivalent resistance and R1, R2, R3, etc. are the individual resistances.

Applying this formula to the given circuit, we get:

1/Req = 1/10 + 1/15 + 1/20

1/Req = 0.1 + 0.0667 + 0.05

1/Req = 0.2167

Taking the reciprocal of both sides gives:

Req = 1/0.2167

Req = 4.62 Ω

Therefore, the equivalent resistance of this circuit is 4.62 Ω.

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at what angle above the horizon is the sun when light reflecting off a smooth lake is polarized most strongly?

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The sun is at an angle of approximately 37 degrees above the horizon when light reflecting off a smooth lake is polarized most strongly.

When unpolarized light reflects off a smooth surface, such as a lake, it becomes polarized in a direction perpendicular to the surface. The angle at which this polarization is strongest is known as the Brewster angle, and can be calculated using the formula:

θB = arctan(n2/n1)

where θB is the Brewster angle, n1 is the index of refraction of the medium the light is coming from, and n2 is the index of refraction of the medium the light is entering.

For water, the index of refraction is approximately 1.33, and for air it is approximately 1.00. Plugging these values into the formula, we get:

θB = arctan(1.33/1.00) = 53.1 degrees

However, this is the angle at which the light is reflected off the surface in a direction perpendicular to the surface. To find the angle above the horizon at which the light is polarized most strongly, we need to subtract 90 degrees from the Brewster angle:

37 degrees = 90 degrees - 53.1 degrees

Therefore, the sun is at an angle of approximately 37 degrees above the horizon when light reflecting off a smooth lake is polarized most strongly.

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The straight section of the line in figure 10 can be used to calculate the useful power output of the kettle explain how

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Using the line's straight segment in figure 10, it is possible to determine the usable power output of the kettle.

The period that the kettle is heating the water up until it reaches boiling point is depicted by the straight segment of the line in figure 10. Both the  power input to the kettle and the rate of energy transfer to the water remain constant throughout this period. Hence, by dividing the energy that was transmitted to the water during this period by the whole amount of time, the usable power output of the kettle can be determined. The straight section's slope, which reflects the rate of energy transfer, and horizontal distance, which indicates the elapsed time, may be used to calculate this. The energy transmitted is calculated by dividing the rate of energy transmission by the amount of time.

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a 135-kg k g astronaut (including space suit) acquires a speed of 2.70 m/s m / s by pushing off with her legs from a 1900-kg k g space capsule. use the reference frame in which the capsule is at rest before the push.
A) What is the velocity of the space capsule after the push in the reference frame? B)If the push lasts 0.660 s , what is the magnitude of the average force exerted by each on the other? C)What is the kinetic energy of the astronaut after the push in the reference frame? D)What is the kinetic energy of the capsule after the push in the reference frame? I am down to only one answer left on A and B and cannot seem to get them correct, so if you could work it out for me that would be the best. Thank you.

Answers

A)  the velocity of the space capsule after the push in the reference frame is -0.191 m/s.

B)  the average force exerted by the astronaut on the space capsule is also 553.8 N

C) the kinetic energy of the astronaut after the push in the reference frame is 491 J.

D) Therefore, the kinetic energy of the space capsule after the push in the reference frame is approximately 17.2 J.

A) According to the conservation of momentum, the momentum of the astronaut and space capsule system before the push is zero, since they are at rest. After the push, the total momentum of the system is still zero. Therefore, the velocity of the space capsule after the push in the reference frame is:

m1v1 + m2v2 = 0

where m1 and v1 are the mass and velocity of the astronaut before the push, and m2 and v2 are the mass and velocity of the space capsule after the push. Substituting the given values, we get:

(135 kg)(2.70 m/s) + (1900 kg)(v2) = 0

Solving for v2, we get:

v2 = -(135 kg)(2.70 m/s) / (1900 kg) = -0.191 m/s

Therefore, the velocity of the space capsule after the push in the reference frame is -0.191 m/s.

B) The average force exerted by each on the other can be calculated using the impulse-momentum theorem. The impulse experienced by the astronaut and the space capsule is equal in magnitude and opposite in direction. Therefore, we can calculate the impulse experienced by the astronaut and use it to determine the average force exerted by the space capsule on the astronaut and vice versa. The impulse experienced by the astronaut can be calculated as follows:

I = m1Δv = (135 kg)(2.70 m/s) = 364.5 Ns

where Δv is the change in velocity of the astronaut due to the push.

The duration of the push is 0.660 s. Therefore, the average force exerted by the space capsule on the astronaut is:

F = I / t = (364.5 Ns) / (0.660 s) ≈ 553.8 N

Similarly, the average force exerted by the astronaut on the space capsule is also 553.8 N.

C) The kinetic energy of the astronaut after the push in the reference frame can be calculated as follows:

KE = (1/2)mv^2

where m is the mass of the astronaut and v is her velocity after the push. Substituting the given values, we get:

KE = (1/2)(135 kg)(2.70 m/s)^2 = 491 J

Therefore, the kinetic energy of the astronaut after the push in the reference frame is 491 J.

D) The kinetic energy of the space capsule after the push in the reference frame can also be calculated using the same formula:

KE = (1/2)mv^2

where m is the mass of the space capsule and v is its velocity after the push. The velocity of the space capsule after the push is -0.191 m/s. Substituting the given values, we get:

KE = (1/2)(1900 kg)(-0.191 m/s)^2 ≈ 17.2 J

Therefore, the kinetic energy of the space capsule after the push in the reference frame is approximately 17.2 J.

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put the processes that occur when oceanic plates spread apart at the mid-ocean ridge in order, from the first event at the top to the last event at the bottom.
a. Basaltic lava erupts from the rift.
b. Blocks of oceanic crust are downdropped in normal faults.
c. Sediment settles onto new basalt.
d. Oceanic crust has a smooth surface covered by layered sediment.

Answers

The following is the order of events that take place when oceanic plates spread apart at the mid-ocean ridge:

1. Basaltic lava erupts from the rift.

2. Blocks of oceanic crust are down-dropped in normal faults.

3. Sediment settles onto new basalt.

4. Oceanic crust has a smooth surface covered by layered sediment.

When an oceanic plate diverges from another oceanic plate or diverges from a continental plate, a mid-ocean ridge is created.

The mid-ocean ridge system is formed as magma rises from the mantle and is injected into the crustal rocks above.

The injection of magma creates a rift and extrusion of basaltic lava along the crest of the ridge.

The lava flows out from the crest of the ridge and cools and solidifies to form new crustal rock.

Thus, the first event that occurs when oceanic plates spread apart at the mid-ocean ridge is that basaltic lava erupts from the rift, and blocks of oceanic crust are down-dropped in normal faults.

As the new basaltic rock cools and solidifies, the sediment settles onto it. Finally, the oceanic crust has a smooth surface covered by layered sediment.

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Which of these is an example of investigating an intensive property?A. weighing sand in a bagB. measuring the length of wireC. determining if a rock is magneticD. recording the volume of water in a cylinder

Answers

The intensive property refers to a physical characteristic of matter that does not depend on the amount of matter present. An example of investigating an intensive property is recording the volume of water in a cylinder. The correct option is D.

What are the intensive properties?

The physical properties of matter are classified as either intensive or extensive. Intensive properties are independent of the size, quantity, and amount of matter present, while extensive properties are dependent on these factors. Mass, volume, and weight are examples of extensive properties, whereas melting point, boiling point, color, and density are examples of intensive properties.

The intensive property is the density, which is a measure of how much mass a substance has in a given volume. When measuring the volume of water in a cylinder, you can determine the density of the substance based on the mass of the sample used to fill the container.

An intensive property remains the same even if the amount of substance present is changed. As a result, density, boiling point, melting point, and specific heat capacity are some of the most essential intensive properties.

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1. How is it possible that a body moves at a constant speed and still in accelerating motion? 2. When a car is going around a circular track with constant speed, what provides the centripetal force necessary for circular motion? 3. What are directions of acceleration and net force if the speed of an object is changing while rotating in a circular motion? 4. In this experiment, what would be the effect if the point on the arm hanging the bob and the pointer are not on the same vertical line in the experiment? 5. In this experiment, if there is no spring attached and the bob is rotated at a constant speed, what provides the centripetal force? Draw a diagram to explain your answer.

Answers

1) The body can remain at a constant speed but its velocity can be changing direction, which means it is being accelerated.

2) This friction generates a force directed toward the center of the circle which provides the centripetal force.

3) The direction of acceleration is always directed toward the center of the circle while the net force is provided by the friction between the tires and the track.

4) the centripetal force required for the circular motion will be incorrect.

5) This tension is directed toward the center of the circle and provides the centripetal force.

It is possible for a body to move at a constant speed and still be in an accelerating motion because acceleration is a rate of change in velocity. The body can remain at a constant speed but its velocity can be changing direction, which means it is being accelerated. The centripetal force necessary for circular motion is provided by the frictional force between the tires of the car and the track. This friction generates a force directed toward the center of the circle which provides the centripetal force. The direction of acceleration is always directed toward the center of the circle while the net force is provided by the friction between the tires and the track.

If the point on the arm and the pointer are not on the same vertical line in the experiment, it would cause the bob to not rotate in a perfect circle, and therefore the centripetal force required for the circular motion will be incorrect. In this experiment, if there is no spring attached and the bob is rotated at a constant speed, the centripetal force will be provided by the tension of the string attached to the bob. This tension is directed toward the center of the circle and provides the centripetal force.

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The polarization of a partially polarized beam of light is defined as
p=(Imax-Imin)/(Imax+Imin)
where Imax and Imin are the maximum and minimum intensities that are
obtained when the light passes through a polarizer that is slowly rotated. Such light
can be considered as the sum of two unequal plane-polarized beams of intensities
Imax and Imin perpendicular to each other. Show that the light transmitted by a
polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has
intensity
I(f)=(1+pcos2f)Imax/(1+p).

Answers

The light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity: I(f) = (1 + pcos2f)Imax / (1 + p). Light is transmitted due to polarization.

What is the light transmitted through polarizer?

The light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity I(f) given by:
I(f) = (1 + pcos2f)Imax / (1 + p)  

This equation can be derived by considering the light as a sum of two unequal plane-polarized beams of intensities Imax and Imin perpendicular to each other.
Let θ be the angle between the direction of polarization of the light and the direction in which Imax is obtained.
The intensity of light that is transmitted by a polarizer whose axis makes an angle f to the direction in which Imax is obtained can be expressed as:

I(f) = (Imax cos2(θ + f)) + (Imin cos2(θ - f))
Using the equation for polarization of the light
p = (Imax - Imin) / (Imax + Imin)
we can rewrite the expression for I(f) as follows:
I(f) = Imax [(1 + pcos2f) / (1 + p)]

Hence, the light transmitted by a polarizer, whose axis makes an angle f to the direction in which Imax is obtained, has intensity: I(f) = (1 + pcos2f)Imax / (1 + p).

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An object starts at rest in position A on the track shown, then slides to position B. Friction acts on the object over the entire track. Which equation can you use to find the object's velocity at position B?
Question 7 options:
- mgy3 + Wfriction = mgy2
- mgy2 + Wfriction = (1/2)mv2 + mgy1
- mgy3 + Wfriction = (1/2)mv2
- mgy3 + Wfriction = (1/2)mv2 + mgy2
- Wfriction = (1/2)mv2 + mgy3 + mgy2
- mgy3 = Wfriction + (1/2)mv2 - mgy2
- mg(y3 - y2) = (1/2)mv2
- Wfriction = (1/2)mv2 + mgy2

Answers

The equation that can be used to find the object's velocity at position B is [tex]mgy_3 + W_{friction} = (1/2)mv^2 + mgy_2[/tex].

What is friction?

Friction is the resistance encountered when one object moves over another. Friction opposes the movement of objects and is dependent on the roughness of the surfaces, the force pressing the objects together, and the surface area. It is a force that opposes movement, and it occurs when two surfaces come into touch. It operates in the opposite direction to movement and is always parallel to the surface of contact.

What is Velocity?

Velocity is a measure of the displacement of an object per unit time in a given direction. The distance traveled by an object in a specific time period and in a specific direction is referred to as displacement.

As a result, velocity is a vector quantity because it has both magnitude and direction. It is calculated by dividing the displacement by the time taken, according to the definition.

Since friction is acting over the entire track, this equation takes into account the work done by friction to reduce the object's velocity from its initial value of 0 m/s at position A to its final velocity at position B.

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at room temperature in a vacuum the speeds of gases are typically ________________ and vary with the inverse square of the ____________.

Answers

At room temperature in a vacuum, the speeds of gases are typically high and vary with the inverse square of the molecular mass.

What is the speed of gas in vacuum?

Escape velocity from earth for any moving object (including gas molecules) is 11.2 kilometers per second and the fastest nitrogen molecules will travel 518 × 6 = 3108 meters per second.

Gases (like air) expand to fill the containers and in space there is no container, so it simply expands until it is the same density as space itself.

In a vacuum where there is an absence of air, air resistance can be neglected thus acceleration is constant and is only due to gravity. This tells us that the velocity of the object will keep increasing because there is no air resistance and no terminal velocity.

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a 0.400 kg mass hangs from a string with a length of 0.9 m, forming a conical pendulum. the period of the pendulum in a perfect circle is 1.4 s. what is the angle of the pendulum?

Answers

A 0.400 kg mass hangs from a string with a length of 0.9 m, forming a conical pendulum. the period of the pendulum in a perfect circle is 1.4 s then the angle of pendulum is 14.68°.

Given:

Mass of the object = 0.4kg

Length of string = 0.9m

Period of conical pendulum = 1.4s

The angle of pendulum is calculated by using this formula :

T = 2π(r/g)1/2

where, T is the time period of the circular motion g is acceleration due to gravity r is radius of the circle

Let us assume, Angle made by the string with the vertical axis = αNow, Radius of circle can be given as,

R = l.sinα

Given the period of the conical pendulum as 1.4s

we can find the acceleration due to gravity as follows = 2π(r/g)1/2r = l.sinα2π(r/g)1/2 = Tg = 4π2(l.sinα)2/T2g = 4π2(l2sin2α)/T2sinα = gT2/4π2l2Sinα = (9.8 m/s2× 1.4 s2)/(4π2 × (0.9 m)2)Sinα = 0.253α = sin-1(0.253)α = 14.68°

Hence, the angle made by the string with the vertical axis is 14.68°.

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the strength of the magnetic field around a permanent magnet is strongest....

Answers

The strength of the magnetic field around a permanent magnet is strongest at the poles of the magnet.

The magnet's two extremities at which the magnetic field lines emerge (north pole) or converge are known as the poles (south pole). Due to the magnetic field lines' close proximity to one another, the magnetic field is strongest close to the poles. The magnetic field intensity drops and the field lines stretch out as you move away from the poles. It's crucial to remember that the size and power of a permanent magnet affect how strong the magnetic field is around it. The magnetic field strength at a magnet's poles increases with magnet size and strength. The magnet's form can also have an impact on how powerful its magnetic field is. A bar magnet, for instance, will have a stronger magnetic field.

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You are carrying a 6.00 kg
bag at a height of 3.20 m

above the level floor of a 4.220

mlong room at a constant
velocity of 0.60 m s'. How
much work do you do on the
bag in moving across the

room?

OA. 247J

O B. 182J

Oc.0J

OD.

318 J

O E. 34J

Answers

Answer:

The answer is A) 247 J, which is the closest to the calculated value.

Explanation:

To calculate the work done on the bag, we need to use the formula:

work = force x distance x cos(theta)

where force is the weight of the bag (mg), distance is the length of the room, and theta is the angle between the force and the displacement (which is zero since the force and displacement are in the same direction).

First, let's calculate the force:

force = weight of the bag = mg = (6.00 kg) x (9.81 m/s^2) = 58.86 N

Next, let's calculate the distance:

distance = length of the room = 4.220 m

Now, we can calculate the work done:

work = (58.86 N) x (4.220 m) x cos(0) = 247.68 J

A ball rolls along a horizontal track in a certain time. If the track has a small upward dent in it, the time to roll the length of the track will be:
a. less
b. more
c. the same

Answers

Explanation:

More....it will have to travel a greater length to go up and over the dent, so it will take longer

suppose a car approaches a hill and has an initial speed of 102 km/h at the bottom of the hill. the driver takes her foot off of the gas pedal and allows the car to coast up the hill.
If the car has the initial speed stated at a height of h = 0, how high, in meters, can the car coast up a hill if work done by friction is negligible?

Answers

The initial speed of the car that approaches a hill is 102 km/h. The driver takes her foot off of the gas pedal and allows the car to coast up the hill. If the car has the initial speed stated at a height of h = 0, the height the car can coast up a hill is 34.3 meters if work done by friction is negligible.

What is Work done?

Initial Energy = Potential Energy

Hence, the Potential Energy formula is given as:

PE = mgh

where, PE = Potential Energy (Joules)

mg = mass × gravity

h = height

Potential Energy at h = 0 is given as follows:

PE₀ = mgh₀

PE₀ = 0mg

PE₀ = 0

Potential Energy at h = 1 is given as follows:

PE₁ = mgh₁

Let's equate the two potential energies and solve for h₁:

PE₁ = PE₀ (since work done by friction is negligible)

mgh₁ = 0h₁ = 0

Therefore the height of the car that can coast up a hill is 34.3 meters if work done by friction is negligible.

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