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Crank
3 years ago
8

A block of mass 2 kg slides down a frictionless ramp of length 1.3 m tilted at an angle 25o to the horizontal. At the bottom of

the ramp the block slides on the floor and collides with a spring which it compressed 24 cm.
1. Draw a plot of the velocity of the block where t=0 is when the block hits the spring.

2. Draw a plot of the position of the block where t=0 is when the block hits the spring.

Physics
1 answer:
marin [14]3 years ago
7 0

Answer:

Diagrams in pictures

Explanation:

Using energy I can get

m g h = 1/2 m v^2

So the velocity at the end of the ramp is the squareroot of two times the initial height of the box times the gravity constant.

(H= 1,3m sin25)

V=2,32m/s

V= a t

And

X= v t +1/2 a t^2

Knowing v=2,32 m/s and x= 1,3 m

I can get

a= 6,21m/s2

F= m a

I can get the force of the box when it collides with the spring

F= 12, 425 N

The force the spring makes on the box then is

F = -12,425N = -k d

Then the spring's constant is k= 51,75N/m

To make the two diagrams I need the functions of time when the box slows down

I use the same two equations

V= a t

And

X= v t + 1/2 a t^2

Being now 2,32 my initial velocity and 0 my final velocity, and my distance 0,24 m.

I get there the time t=0,0689 seconds and the acceleration a= -33,67 m/s2 (negative because it's slowing down).

Then,

V(t)= - 33,67 m/s2 t for time between 0 and 0,689 sec

X(t)= 2,32 m/s t + 1/2 33,67 m/s2 t^2.

for time between 0 and 0,689 sec

Diagrams and equations are in the pictures

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Answer:

a) 6 m/s

b) 14 m/s

Explanation:

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a) a = Δv / Δt

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v = 6 m/s

b) a = Δv / Δt

2 m/s² = (v − 4 m/s) / 5 s

v = 14 m/s

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Which example shows that electromagnetic waves can travel without moving through a specific material (medium)? . . . A.. visible
MrMuchimi
<span>example shows that electromagnetic waves can travel without moving through a specific material  is
</span>light passing through a vacuum tube
because it shows that there is no medium
so correct option from above is D
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3 years ago
A bowling ball traveling with constant speed hits pins at the end of a bowling lane 16.5m long. The bowler hears the sound of th
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Answer: The speed of the ball is 7.64 m/s.

Explanation:

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T = 16.5/V

Now, after this point, the sound needs

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Then we have:

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7 0
3 years ago
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Because acceleration was constant throughout the slide, we can show the slide lasted

a=\dfrac{\Delta v}{\Delta t}\iff-5.6\,\dfrac{\mathrm m}{\mathrm s^2}=\dfrac{7.4\,\frac{\mathrm m}{\mathrm s}-8\,\frac{\mathrm m}{\mathrm s}}{\Delta t}

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Also because accleration was constant, we know the average velocity of the book was

\bar v=\dfrac{7.4\,\frac{\mathrm m}{\mathrm s}+8\,\frac{\mathrm m}{\mathrm s}}2=7.7\,\dfrac{\mathrm m}{\mathrm s}

Average velocity is also given by

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\Delta x=0.824\,\mathrm m

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