a sky diver jumps from a plane traveling horizontally at 55 m/s at an altitude of 1500 m. when she reaches an altitude of 425 m, she is falling at a terminal velocity of 52 m/s. how much work has been done by air resistance during this time?

Answers

Answer 1

The work that has been done by air resistance during this time is 55800 k m²/s².

To determine the work done by air resistance during the skydiver's fall, we can use the equation:

W = F × d

where W is the work, F is the force of air resistance, and d is the distance traveled.

The force of air resistance on the skydiver is given by the equation:

F = k × v²

where k is the drag coefficient, which is a measure of the resistance of the air to the movement of the object, and v is the velocity of the skydiver.

To determine the work done by air resistance, we need to determine the distance traveled by the skydiver and the force of air resistance at each point in her fall. The skydiver falls from an altitude of 1500 m to an altitude of 425 m, a distance of 1075 m.

At an altitude of 1500 m, the skydiver is falling at a terminal velocity of 52 m/s. Plugging these values into the equation for the force of air resistance gives us:

F = k × v² = k × (52 m/s)²

To determine the work done by air resistance at this point in the skydiver's fall, we can plug the value of F and the distance traveled into the equation for work:

W = F × d = (k × (52 m/s)²) × 1075 m = 55800 k m²/s²

The work done by air resistance at this point in the skydiver's fall is 55800 k m²/s².

At an altitude of 425 m, the skydiver is falling at a terminal velocity of 52 m/s. Plugging these values into the equation for the force of air resistance gives us:

F = k × v² = k × (52 m/s)²

To determine the work done by air resistance at this point in the skydiver's fall, we can plug the value of F and the distance traveled into the equation for work:

W = F × d = (k × (52 m/s)²) × 1075 m = 55800 k m²/s²

The work done by air resistance at this point in the skydiver's fall is 55800 k m²/s².

To determine the total work done by air resistance during the skydiver's fall, we can add the work done at each point in the fall:

W_total = W_1500m + W_425m = 55800 k m²/s² + 55800 k m²/s² = 111600 k m²/s²

The total work done by air resistance during the skydiver's fall is 111600 k m²/s².

Note that this calculation assumes that the drag coefficient k is constant throughout the skydiver's fall. If the drag coefficient changes during the fall (for example, if the skydiver deploys a parachute), additional calculations will be needed to determine the total work done by air resistance.

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Related Questions

Question 19(Multiple Choice Worth 2 points) Which statement best describes scientific theories? Scientific theories are based on facts that describe natural events. Scientific theories describe natural events but do not explain them. Scientific theories are facts based on observations of events in the natural world. Scientific theories attempt to explain how events occur in the natural world.

Answers

Answer:

Scientific theories are attempts to explain how events occur in the natural world.

Explanation:

A scientific theory is an explanation for a wide range of observations and phenomena that have been tested and supported by multiple lines of evidence. A theory is not based on a single piece of evidence, but rather on a collection of evidence that has been accumulated over time through careful observation and experimentation.

Scientific theories are based on facts, which are observations of events in the natural world. However, a theory goes beyond simply describing these events; it seeks to explain why and how they occur. For example, the theory of evolution explains how organisms have evolved over time through natural selection. It is based on a wide range of evidence, including observations of the fossil record, comparative anatomy, and molecular biology, among others.

Overall, scientific theories are important tools for understanding and explaining the natural world, and they are constantly being revised and updated as new evidence becomes available.

a young girl wishes to select one of the frictionless playground slides shown below to give her the greatest possible speed when she reaches the bottom of the slide. which slide should she choose?

Answers

The girl may choose any of the slides. It is irrelevant. She would move at the same pace down each slide.

At the top of the slide, the youngster initially has gravitational potential energy. The youngster possesses thermal energy as well as kinetic energy when they reach the bottom of the slide since some of the energy was heated up due to friction. The curved slide is the fastest despite being longer than the other circuits. This is due to the fact that it is steeper at first, leading the ball to be more affected by gravity and accelerate more quickly before reaching its top speed.

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A rightward force is applied to a 6-kg object to move it across a rough surface at constant
velocity. The object encounters 15 N of frictional force. Use the diagram to determine the
gravitational force, normal force, net force, and applied force.

Answers

Fnorm = 58.8 N; Fnorm = 58.8 N; Fapp = 15 N; Fnet = 0 N. In the case of constant velocity, a = 0 m/s/s and Fnet = 0 N, Fgrav = m • g • 9.8 m/s/s • 6 kg • 58.8 N Ffrict = Fapp = 15 N since there is no horizontal acceleration.

A rightward force is what?

A book is moved across a desk with a rightward acceleration by applying a rightward push to it. Consider the effects of friction. Pass over air resistance. Static Friction = Normal Force x Static Friction Coefficient is the formula for calculating static friction.

How can I determine force?

Newton's second law of motion provides the definition of the force formula: An object's force is equal to its mass times its acceleration. F = m ⨉ a. To apply this formula, you must use SI units for force (newtons), mass (kilograms), and acceleration (meters per second squared).

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commercial jets usually land using a 3-degree angle of descent. at what distance from the destination airport should the pilot begin the descent, if the cruising altitude of the jet is 37000 feet?

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To obtain a 3 degree drop, begin your descent three times your altitude (measured in thousands of feet).

Start down at 3 x 50 = 150 miles out if you are at 45,000 feet, for ease of calculation, round the height up to 50. When an airplane is between 100 and 120 miles from its destination, it often starts to descend (assuming the cruising altitude is above 30,000 feet). Typically, people use some variation of the 3/6  to larger aircraft: The distance back to begin the fall is 3 times the height (in thousands of feet), and the descending rate is 6 times your ground speed.

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a ball rolls horizontally off the edge of a cliff at 4.00 m/s. if the ball lands a distance of 30.0 m from the base of the vertical cliff, what is the height of the cliff?

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When a ball rolls horizontally off the edge of a cliff at 4.00 m/s, then the height of the cliff is calculated as 276 m.

What is projectile motion?

The motion of any object thrown or projected into the air is called projectile motion. Form of motion experienced by object that is projected in a gravitational field is called projectile motion.

d is distance ;velocity is  v= 4m/s

As, d = v t

30.0 = 4.00 t

So, t = 7.50 s

We know that, h = 1/2 g t^2

h = 1/2 (9.81) (7.5)^2

h = 275.9

Hence, h = 276 m

The height of the cliff is 276 m.

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A 3000kg helicopter, tilted as shown, is flying horizontally (neither gaining nor losing altitude). The helicopter is experiencing a 1200N drag.

How many forces are acting on the helicopter?

Are all the forces on the helicopter balanced?

What is the magnitude of the thrust?

What is the magnitude of the net force on the helicopter?

What is the magnitude of the helicopter's acceleration?

Describe the helicopter's speed. (increasing/decreasing/constant)

Answers

The number of forces acting on the helicopter is 3.

The forces on the system are not balanced

The magnitude of the thrust is 7,112,5 N.

The net force of the helicopter  is 5,912.5 N

The magnitude of the helicopter's acceleration is 1.97 m/s².

The speed of the helicopter is increasing towards to the right.

How many forces are acting on the trailer?

The number of forces acting on the helicopter is calculated as follows;

the weight of the helicopter acting downwardsthe thrust of the helicopterdrag force of the helicopter

The magnitude of the thrust is calculated as;

F = W sinθ

F = (3000 x 9.8 x sin14)

F = 7,112.5 N

The net force of the helicopter  is calculated as follows;

F (net) = drag force + thrust force

F (net) = - 1200 N + 7,112.5 N

F (net) = 5,912.5 N

The acceleration of the helicopter is calculated as follows;

F (net) = ma

where;

m is the mass of the helicoptera is the acceleration

a = F (net) / m

a = 5,912.5 / 3000

a = 1.97 m/s²

Thus, since the acceleration of the helicopter is positive, the speed of the system is increasing towards to the right

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the difference between the emitted frequency and the echo frequency returning from a moving scatterer is called

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The Doppler effect, described in 1842 by Christian Andreas Doppler, is the change or shift in the frequency or wavelength of a wave due to relative movement between a sound source or scatterer and the receiver.

Formula

[tex]$$f_o=\frac{v+v_o}{v+v_s} f_s$$$f_0=$ observer frequency of sound$v=$ speed of sound waves$v_o=$ observer velocity$v_s=$ source velocity[/tex][tex]$f_s=$ actual frequency of sound waves[/tex]

The Doppler effect is a phenomenon that occurs when two objects move closer or farther apart, increasing (or decreasing) the frequency of sound, light, or other waves. A source's waves are compressed as they move in the direction of the observer.

The Doppler effect operates as follows: When a loud object approaches you, its sound waves congregate and increase in frequency or pitch. On the other hand, the sound waves spread apart and the pitch drops as the object moves away from you. The pitch change increases with object speed.

The Doppler effect causes the frequency of light waves coming from moving sources to either shift to the blue or red. This behaves in a way that is similar to other types of waves, such sound waves, but not exactly the same.

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an under-excited generator a. absorbs reactive power from the system. b. neither absorbs nor delivers reactive power. c. delivers reactive power to system.

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An under-excited generator a. absorbs reactive power from the system

In an electrical power system, generators are used to produce electrical energy by converting mechanical energy into electrical energy. Under-excited generators are generators that are operating at a voltage below their rated value. These generators are used where it is necessary to maintain a specific voltage in the electrical system. For example, in some power systems, load on the generator may vary, and generator may need to adjust its output to match the changing load.

When a generator is under-excited, it absorbs reactive power from the system, which is a type of electrical power that is not used to do work. Reactive power is required to create and maintain the alternating current in an electrical system, but it does not perform any useful work. Absorbing reactive power helps to maintain the proper voltage and frequency in the system.

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Hi, Guy I need help with thi quetion:

Find the angle of refraction of a ray of light that enter diamond from water at an angle of 21. 2 degree to the normal. Can omeone help me fatttt!

Answers

The angle of refraction of the ray of light entering the Diamond is 16.8°.

The diamond from the water at an angle of 21.2 degrees to the normal.

According to the law of refraction, the ratio of the sign of the angle of incidence and the angle of refraction of the ray of light is constant.

Sin i/Sin r = n

n is the refractive index of the material in which the light is entering.

The refractive index of the Diamond is 2.42.

Putting all the values,

Sin(21.2°)/Sin(r) = 2.42

0.71/Sin(r) = 2.42

Sin(r) = 0.71/2.42

Sin(r) = 0.29

r = Sin inverse (0.29)

r = 16.86°

So, the angle of refraction is found to be 16.86°.

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how do scientists estimate the age of the universe? they take the distance to a nearby galaxy and divide it by its speed of recession (time

Answers

Two methods are used by astronomers to determine the age of the universe: 1) searching for the oldest stars, and 2) calculating the universe's rate of expansion and extrapolating back to the Big Bang.

Just as homicide investigators can determine a bullet's source from the holes it leaves in a wall. to calculate the ages of old, nearby stars and the distance between Earth and numerous galaxies. According to the best calculations of scientists, the universe is 13.8 billion years old. However, we are not totally certain of its age, as we are with so many of the largest-scale characteristics of the cosmos.

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what is the maximum speed of a 2.0 g particle that oscillates between x =2.0 mm and x =8.0 mm in

Answers

The period of motion is simple hormonic motion and the maximum speed of the particle is 0.0031s

(a) Simple harmonic motion is defined as "the motion of a mass on a spring when it is subject to the linear elastic restoring force given by Hooke's Law (F=-Kx). The motion experimented by the particle is sinusoidal in time and demonstrates a single resonant frequency".

(b) The equation that describes the simple harmonic motion is given by =

= X = Acos(ωt + θ)     [1]

And taking the first and second derivate of the equation (1) we obtain the velocity and acceleration function respectively.

For the velocity:

= V = dx/dt = -Aωsin(ωt + θ)        [2]

For the acceleration:

= A = dv/dt =  -Aω²cos(ωt + θ)           [3]

As we can see in equation [3] the acceleration would be maximum when the cosine term would be -1 and on this case:

= Aω² = 8x10³ m/s²

Since we know the amplitude A=0.002m  we can solve for ω like this:

= ω = √ (8000/0.002)

= ω = 2000 rad

And we with this value we can find the period with the following formula;

= T = 2π/ω = 0.0031s

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The complete question:

A 10 g particle undergoes SHM with an amplitude of 2.0 mm and a maximum acceleration of magnitude 8.0 multiplied by 103 m/s2, and an unknown phase constant ?.(a) What is the period of the motion?1 s(b) What is the maximum speed of the particle?

Why are we using raisins to observe
osmosis?

Answers

We are using raisins to observe osmosis.

What is osmosis?

Osmosis is the spontaneous net movement or diffusion of solvent molecules through a selectively-permeablity of the membrane from a region to the  high water potential energy to a region of lower water potential energy, in  the direction that tends to the  equalize the solutes the  concentrations on the 2 sides.

Each one of them gaining H2O and swells when placed in pure water due to the  endosmosis. When such as swollen raisins/apricots are the  placed in to the concentrated Solution, each  of them are  loses, water and the  consequently shrinks is  again (due to exosmosis).

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The switch in the figure has been open for a long time. It is closed at t = 0s.
a. What is the current through the battery immediately after the switch is closed? unit A
b. What is the current through the battery after the switch has been closed a long time? unit A

Answers

a. The current through the battery immediately after the switch is closed is 0.5 A .

b. The current through the battery after the switch has been closed a long time is 1 A.

Since the initial resistance offered by the inductor is very strong, the entire current only flows through a single 20 ohm resistance.

Current (I)= [tex]\frac{ 10 V }{20 ohm }[/tex]

              I= 0.5 A

After a while, the current stabilizes, and the inductor merely functions as a conducting route. Due to their parallel arrangement, both 20 ohm resistances have an equivalent resistance of [tex]\frac{(20)(20)}{20+20}[/tex], which equals 10 ohm.

Current (I)= [tex]\frac{10V}{10 ohm}[/tex]

              I = 1 A

Therefore, the initially the current is 0.5 A and after the switch has been closed for longtime the current is 1 A.

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what type of solar heating system would be most efficient at producing high-temperature water for industrial applications or steam to run turbines that generate electricity?

Answers

Angela092505's response Solar thermal electric generation systems that use mirrors or lenses to focus sunlight to heat water are the answer.

define solar heating ?

The use of sunlight to heat water or air in buildings is known as solar heating. Solar heating is classified into two types: passive and active.

To heat buildings, passive heating relies on architectural design. The location, construction, and materials of the building may all be used to optimise the heating (and lighting) impact of the sunshine falling on it, minimising or even eliminating the need for fuel. On sunny days, a well-insulated structure with a large glass window facing south, for example, can efficiently trap heat and decrease dependency on gas or oil (for heating) or electricity (for lighting). Natural convection warms the air and solid surfaces in rooms exposed to sunlight, and this warmth is carried to other rooms in the building.

What kind of solar heating system is most efficient in producing high-temperature water for industrial uses or steam to power turbines that generate electricity Angela092505's response Solar thermal electric generation systems that use mirrors or lenses to focus sunlight to heat water are the answer.

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a 5.0 kg rabbit and a 12.0 kg irish setter have the same kinetic energy. if the setter is running at a speed of 3.7 m/s, how fast is the rabbit running?

Answers

The setter is running at a speed of 3.7 m/s , Running at a speed of 7.59 meters per second is the rabbit. So, the rabbit is faster than irish setter.

A body's kinetic energy may be calculated using the equation

1/2m1v12 = 1/2m2v22.

If the kinetic energy of the rabbit and the Irish setter is equal, then

The rabbit's kinetic energy is equal to the setter's kinetic energy.

Where m1 is the mass of the rabbit, v1 is its speed, and m2 is the mass and v2 is its speed of the setter.

Making the variable v1 the subject of the equation v1 = v2(m2/m1)... Equivalent 3

Given: v2 = 4.9 m/s, m1 = 5.0 kilogram, and m2 = 12.0 kg.

Equation 3 is changed by using v1 = 4.9(12/5) v1 = 4.92.4 v1 = 4.91.549 v1 = 7.59 m/s speed .

The rabbit is therefore moving at speed of 7.59 m/s.

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the electric potential in a region of space is v=200v⋅mx2+y2√, where x and y are in meters.

Answers

Electric field strength at (2.1m,3.0m) = 14.914 V/m

So in order to find electric field strength at a point whose cordinate is (x,y) is given by the term E(x,y)

Given:

V=200 (V⋅m) /√(x2+y2),  

E = ∂V/∂x i + ∂V/∂y j

where i is vector along x axis whose magnitude is 1 and hence it is unit vector and j is vector along y axis whose magnitude is 1 and hence it is unit vector.

∂V/∂x  =  [tex]\frac{-200x}{(x^2+y^2)^3^/^2}[/tex]

=>  (-200*2.1)/49.11

=>   8.55

∂V/∂x  =  [tex]\frac{-200y}{(x^2+y^2)^3^/^2}[/tex]

=> (-200*3)/49.11

=> 12.22

so E(2.1,3) = -8.55 i -12.22 j

  so E = [tex]\sqrt{-8.55*-8.55 + -12.22*-12.22}[/tex]

=> [tex]\sqrt{222.43}[/tex]

=> 14.914 V/m

so the magnitude of Electric field at (2.1m,3.0m) = 14.914 V/m

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Complete question:

The electric potential in a region of space is V= 200 (V⋅m) /√(x2+y2), where x and y are in meters. Find the strength of the electric field at (x,y)=(2.1m,3.0m) ?

if you placed 1.00 c of positive charge on the earth and 1 c of negative charge 384,500 km away on the moon, how much force would the positive charge on the earth experience

Answers

If you placed 1.00 coulomb (C) of positive charge on the Earth and 1 C of negative charge 384,500 km away on the Moon, the positive charge on the Earth would experience a gravitational force of attraction towards the negative charge on the Moon.

The gravitational force of attraction between two charged particles is given by the formula:

F = (k * q1 * q2) / r^2

where F is the gravitational force, k is the Coulomb constant, q1 and q2 are the charges of the two particles, and r is the distance between them.

Plugging in the values provided, we get:

F = (8.99 x 10^9 N*m^2/C^2) * (1 C) * (1 C) / (384,500 km)^2

= 2.34 x 10^-9 N.

This is a very small force due to the large distance between the two charges and the relatively small magnitude of their charges.

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you are holding short for an intersection departure on runway 8 with the sign in front of you. which way should you turn when taxiing onto the runway to depart runway 8?

Answers

With the sign in front of you, you are waiting in short formation for an intersection taxiing on runway 8. In order to depart from runway 8, you should turn left as you enter the runway.

In contrast to towing or pushback, where the aircraft is moved by a tug, taxing (sometimes written taxying) is the movement of an aircraft on the ground under its own power. Although the name refers to vehicles with wheels most often, it also covers vehicles with skis or floats.

Taxiways are used by airplanes to go between locations on an airport, such as from a hangar to the runway. The takeoff roll and landing rollout, which are the accelerating run and descending run along a runway, respectively, before takeoff and landing, respectively, are not referred to as "taxiing."

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consider the situation in the figure below, where two charged rods are placed a distance d on either side of an aluminum can. what does the can do?

Answers

The left side of the can receives a negative charge from the positively charged rod, which creates a force of attraction between both the rod and the can.

How does science define force?

In science, the term "force" has a particular definition. At this point, describing a force as pushing or pulling is quite acceptable. A force does not "exist in an object" or "contain an object." One object experiences a force from another. Living organisms and inanimate objects are both included in the concept of a force.

Why is force so crucial?

A force is either a push or a pull, and it has an impact on our everyday lives because without it, we couldn't open and close things, lift our arms and legs, or do much of anything else.

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find the turning-point angles if the child has a speed of 0.80 m/s when the ropes are vertical.

Answers

The turning-point angles is θ = 9.666 degrees if the child has a speed of 0.80 m/s when the ropes are vertical.

As per the details provided in the above question are as bellow,

The speed at bottom = v = 0.8 m/s

The length of the rope = l = 2.3 meter

The Work Energy Theorem provides us with,

The energy an item has as a result of motion is known as kinetic energy. A force must be applied to an item in order to accelerate it. We must put forth effort in order to apply a force. After the job is finished, energy is transferred to the item, which then moves at a new, constant speed.

Change in kinetic energy = net work done

[tex]0 - 0.5mv^2 =[/tex]- mgl (1-cosθ)

[tex]0.5 \times 0.8^2[/tex] = 9.8 x 2.3 (1-cosθ)

angle θ = 9.666 degrees

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Note:- The correct question would be as bellow,

A child swings back and forth on a swing suspended by 2.3m -long ropes.

Find the turning-point angles if the child has a speed of 0.80 m/s when the ropes are vertical.

an 800 kg car moving at 4 m/sec to the right strikes a 400 kg car moving to the left. if the cars stick together and stop moving right after the collision, what was the velocity of the 400 kg car?

Answers

The answer is 8 m/s to the left. The average speed of the car, according to our research, is four meters per second.

The vector quantity velocity (v), denoted by the equation v = s/t, quantifies displacement (or change in position, s), over change in time (t). Speed (or rate, r) is a scalar number, denoted by the equation

r = d/t,

that quantifies the distance traveled (d) over the change in time (t). All of the elevator's energy (4000 J) will be converted into acceleration if it descends from the top to the bottom at a constant rate of acceleration.

The elevator's 8ms velocity is the answer.

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what is the current i(t) in the circuit at time t after the switch is closed? express your answer in terms of q0 , l , c , and other variables given in the introduction.

Answers

If the current i(t) in the circuit at time t after the switch is closed  in terms of q0 , l , c the differential equation will be V(t) = (q0/C) × e^(−t/RC )

The equation for V(t) would be V(t)=E(RC)(dV(t)/dt) if a battery with EMF E was present in the circuit. With respect to V(t), this differential equation is no longer homogenous. But it can be resolved by simply substituting Vb(t)=V(t)E. This substitution has the effect of removing the E term and producing an equation for Vb(t) that is the same as the equation you solved for V(t). When a battery is supplied, the capacitor's initial condition is typically that it is completely discharged at time t=0.

In these circumstances, the solution will appear as V(t)=E(1et/(RC)) Since the voltage across the capacitor is zero at time t=0 according to this solution, is 0 at time t=0 since the capacitor wasn't charged at that point, and it climbs asymptotically to E.

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five hockey pucks are sliding across frictionless ice. the drawing shows a top view of the pucks and the three forces that act on each one. the forces can have different magnitudes (f, 2f, or 3f), and can be applied at different points on the puck. only one of the five pucks could be in equilibrium. which one?

Answers

When a hockey puck with a momentum of 5 kg-m/s is struck by a hockey stick, it receives an impulse of 100 N.

The force of friction is the imbalanced force in the situation of an already moving object (such as a puck sliding on an ice surface). In this situation, the puck's acceleration (slowing) is proportional to the amount of friction. More friction causes the puck to slow down faster. According to Newton's third law of motion, every action has an equal and opposite response. When a player is skating, for example, his skates push off the ice, causing an opposing reaction that propels the player ahead and increases his speed.

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under the influence of its drive force, a snowmobile is moving at a constant velocity along a horizontal patch of snow. when the drive force is shut off, the snowmobile coasts to a halt. the snowmobile and its rider have a mass of 136 kg. under the influence of a drive force of 205 n, it is moving at a constant velocity whose magnitude is 5.50 m/s. the drive force is then shut off. (a) calculate the distance in which the snowmobile coasts to a halt. (b) calculate the time required for the snowmobile to stop.

Answers

A) 13.2 m, The snowmobile moves at a constant speed when the drive force is engaged; as the acceleration is zero, there is no net force. On the other hand, the net force is the product of two forces acting on the snowmobile: the driving force, F, and the frictional force, Ff: F-Ff=0, Ff=F.

(b) 4.2 s, The relationship between the snowmobile's acceleration and time t is given by: a=v-u/t, The time it takes the snowmobile to stop is 4.2 seconds after rearranging for t and entering numbers.

How do you define magnitude?

The simplest definition of magnitude in physics is "distance or quantity." In either an absolute or relative meaning, it displays the size or motion of an object.

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A boat travels 12.0 m while it reduces its velocity from 9.5 m/s to 5.5 m/s. What is the magnitude of the boat’s acceleration while it travels the 12.0 m?
a. 1.3 m/s2
b. 2.5 m/s2
c. 3.0 m/s2
d. 7.5 m/s2

Answers

The magnitude of the boat’s acceleration while it travels 12.0 m is b. 2.5 [tex]ms^{-2}[/tex]

u= 9.5 [tex]ms^{-1}[/tex]

v= 5.5 [tex]ms^{-1}[/tex]

s= 12 m

From the given data we can use,

[tex]v^{2} -u^{2} =2as[/tex]

to calculate acceleration.

[tex]v^{2} -u^{2} =2as[/tex],

Where,

v is the final velocity,

u is the initial velocity,

a is the acceleration and

s is the distance covered.

Substituting the values we have,

[tex]v^{2} -u^{2}[/tex]= 2×a×s

[tex](5.5)^{2}[/tex] - [tex](9.5)^{2}[/tex]= 2 ×a×12

a= [tex]\frac{(5.5)^{2} -(9.5)^{2}}{(2)(12)}[/tex]

a= [tex]\frac{(30.25)^{2} -(90.25)^{2}}{(24)}[/tex]

a=[tex]\frac{-60}{2000}[/tex]

a=-2.5 [tex]ms^{-1}[/tex]

(The negative sign says that it is a negative acceleration  )

Therefore the magnitude of the boat's acceleration is -2.5 [tex]ms^{-1}[/tex]

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what are the salient features of a hydrodynamic entry region? a thermal entry region? are hydrodynamic and thermal entry lengths equivalent? if not, on what do the relative lengths depend?

Answers

Inviscid flow region and boundary regions are the salient features of a hydrodynamic entry region, a thermal entry region are hydrodynamic and thermal entry lengths equivalent.

A material's capacity to conduct heat is determined by its thermal conductivity. In contrast to materials with high thermal conductivity, low thermal conductivity materials transmit heat more slowly. For instance, insulating materials like Rockwool or Styrofoam are effective at retaining heat while metals often have high thermal conductivity and are very effective at transferring heat. In line with this, materials with high thermal conductivity are frequently used as heat sinks, whereas those with low thermal conductivity are employed as thermal insulation. Thermal resistance is the inverse of thermal conductivity. Working with numbers that are derivatives of thermal conductivity and that implicitly account for design-specific details like component dimensions is a typical practice in engineering. For instance, the amount of heat that travels through a plate of a certain area and thickness in a unit of time when the temperatures on its opposing faces differ by one kelvin is known as thermal conductance. Similar to how electrical conductivity and electrical conductance relate to one another, thermal conductivity and conductance do the same. The opposite of thermal conductivity is thermal resistance.

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A box is released from rest and slides down a ramp in a closed system. Even though the box speeds up, its kinetic energy at the bottom of the ramp is less than the potential energy that it had at the top of the ramp.

What best explains why the box’s final kinetic energy is less than its initial potential energy?

In a closed system, kinetic energy is always less than potential energy.
Some potential energy was converted into thermal energy due to friction.
The acceleration due to gravity became smaller as the box slid down the ramp.
In a closed system, total energy is constantly being lost to outside objects.

Answers

The best explanation why the box’s final kinetic energy is less than its initial potential energy is that some potential energy was converted into thermal energy due to friction.

option B is the correct answer.

What is the law of conservation of energy?

The law of conservation of energy states that energy can neither be created nor destroyed but can be converted from one form to another.

According to law of conservation of energy, we have the following energy conversion process.

potential energy to kinetic energykinetic energy to potential energychemical energy to electrical energypotential energy to heat and kinetic energy, etc

In absence of friction, the potential energy of the box at the top of the ramp is equal to the kinetic energy of the box at the bottom of the ramp.

In the presence of friction, some  potential energy will be converted into thermal energy due to friction and the final kinetic energy will be smaller than the initial potential energy.

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Answer:

The answer above is correct (I just did it on Edge.) - It's option B!

Explanation:

Hope this helped - brainliest would be greatly appreciated!

Have a great day :D

coherent red light illuminates two narrow slits that are 25 cm apart. will a two-slit interference pattern be observed when the light from the slits falls on a screen? explain.

Answers

No two-slit interference pattern be observed when the light from the slits will not falls on a screen.

Because the condition of the interference is the distance between the slits equals or close to the wavelength of the red light. For distance of 25 cm, it is a very large distance that prevents the interference of the red light to occur. So, the answer is no.

Interference is the phenomenon where two waves combine by applying a displacement at any one point in space and time to form waves of greater, lesser or equal amplitude. Constructive and destructive interference arise from correlated or coherent wave interactions. This is because they originate from the same source or have the same or nearly the same frequency. Interference effects can be observed in all kinds of waves: light, radio waves, sound, surface water, gravity, matter waves.

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A 4.8-kg suitcase is sliding across the horizontal floor of an elevator. The coefficient of kinetic friction between the suitcase and the floor is 0.28.


a) If the elevator is moving upward at a constant speed of 1.6 m/s, find the kinetic frictional force acting on the suitcase.


b) If the elevator is accelerating upward at 1.6 m/s?, find the kinetic frictional force acting on the suitcase


c) If the elevator is accelerating downward at 1.6 m/s, find the kinetic frictional force acting on the suitcase.

Answers

Answer:

Below

Explanation:

a)  At constant speed the only force acting downward is the usual Normal Force due to gravity

Fn = mg = 4.8 * 9.81 =47.1 N

                the force of friction is then Ff =  Fn * coeff = 47.1 * .28 = 13.2 N

b)  If the acceleration is UPWARD this adds to g

      Fn then becomes

             Fn = 4.8 ( 9.81 + 1.6) = 54.8 N   and    Ff = 54.8 * .28 = 15.3 N

c)  Similar to b)  but this time the acceleration of the elevator SUBTRACTS from gravity    

    Fn = 4.8 ( 9.81 - 1.6) = 39.4 N    and    Ff = 39.4 * .28 = 11.0 N

A monochromatic beam of light is absorbed by a collection ofground-state hydrogen atoms in such a way that six differentwavelengths are observed when the hydrogen relaxes back to theground state.
(a) What is the wavelength of the incident beam? Explain the stepsin your solution.
(b) What is the longest wavelength in the emission spectrum ofthese atoms? To what portion of the electromagnetic spectrum and towhat series does it belong?
(c) What is the shortest wavelength? To what series does itbelong?

Answer Key:
(A) The atoms must be excited to energy level n = 4, to emit sixdifferent photon
energies in the downward transitions 4→3, 4→2,4→1, 3→2, 3→1, and 2→1. The
photon energy absorbed in the 1→4 transition is 12.8 eV,making the wavelength 97.4
nm.
(B) 1.88 μm, infrared, Paschen
(C) 97.4 nm, ultraviolet, Lyman

Answers

The incident beam of light has a single, monochromatic wavelength. When this beam is absorbed by the hydrogen atoms, the atoms become excited and eventually relax back to the ground state, emitting light at several different wavelengths.

(a) It is not possible to determine the wavelength of the incident beam based on the information provided.

(b) The longest wavelength in the emission spectrum of the hydrogen atoms corresponds to the transition between the lowest energy levels in the atom. In the case of hydrogen, the ground state is the lowest energy level, so the longest wavelength would correspond to a transition from an excited state to the ground state.

(c) The portion of the electromagnetic spectrum to which the longest wavelength belongs depends on the specific value of the wavelength. The electromagnetic spectrum includes radio waves, microwaves, infrared radiation, visible light, ultraviolet radiation, X-rays, and gamma rays.

(d) The series to which the longest wavelength belongs can be determined by the values of the energy levels involved in the transition. In the case of hydrogen, there are three series: the Lyman series, the Balmer series, and the Paschen series. The Lyman series corresponds to transitions from higher energy levels to the ground state, the Balmer series corresponds to transitions from intermediate energy levels to the ground state, and the Paschen series corresponds to transitions from lower energy levels to the ground state.

(e) The shortest wavelength in the emission spectrum corresponds to the transition between the highest energy levels in the atom. In the case of hydrogen, the shortest wavelength would correspond to a transition from an excited state to a higher energy level.

(f) The portion of the electromagnetic spectrum to which the shortest wavelength belongs depends on the specific value of the wavelength.

(g) The series to which the shortest wavelength belongs can be determined by the values of the energy levels involved in the transition. In the case of hydrogen, the shortest wavelength would belong to the Lyman series, since it corresponds to a transition from an excited state to a higher energy level

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