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Umnica [9.8K]
3 years ago
10

A block slides down an inclined plane of slope angle θ with constant velocity. It is then projected up the same plane with an in

itial speed v0. How far up the incline will it move before coming to rest? (Use any variable or symbol stated above along with the following as necessary: g for the acceleration of gravity.)
Physics
1 answer:
Len [333]3 years ago
6 0

Answer:

The block reaches a distance of d_{stop} =\frac{V_{0}^2}{2gsin\theta} along its upward movement.

Explanation:

To set up this question, we need to write down the forces equilibrium equation along the inclined plane. In other words, the key is to <em>project</em> all forces (weight, then gravity vector) onto the inclined plane. Here, we can neglect the previous, downwards movement since initial conditions for the upward movement are given.

The resulting equation is:

-mgsin(\theta)=ma=m\frac{dv}{dt} (all constant values are known, as assumed in question)

Our initial condition is: V_{i}=V_{0} (given data)

Let us integrate this equation:

\int\limits^t_0 {-mgsin(\theta)} \, dt =\int\limits^t_0 {m\frac{dv}{dt}} \, dt

Once initial conditions are applied (for t=0, v=V0),

-g sin(\theta)t=v-V_{0}

So, assuming no energy dissipaton by friction (between the two solids or other, such as aerodynamic) exists, the time for which speed value reaches zero (block stops) is given for v=0:

t_{stop}=\frac{V_{0}}{gsin(\theta)}

Integrating once again our equation, seeking for a distance equation. we find x (distance) by integrating v (speed), as a function of time:

d_{stop}=\int\limits^t_0 {v} \, dt =\int\limits^t_0 {(V_{0}-gsin\theta t) \, dt=V_{0}t-gsin\theta t^2/2

Applying the given time for stop,

d_{stop} =\frac{V_{0}^2}{2gsin\theta}

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4 0
3 years ago
A 594 Ω resistor, an uncharged 1.3 μF capacitor, and a 6.53 V emf are connected in series. What is the current in milliamps afte
ivanzaharov [21]

Answer:

6.88 mA

Explanation:

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Capacitance = 1.3 μF

emf, V = 6.53 V

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I₀ = \frac{\textup{6.53}}{\textup{594}}

or

I₀ = 0.0109 A

also,

I = I_0[1-e^{-\frac{t}{\tau}}]

here,

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e = 2.717

on substituting the respective values, we get

I = 0.0109[1-e^{-\frac{\tau}{\tau}}]

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At an air show, a stunt pilot performs a vertical loop-the-loop in a circle of radius 3.63 x 103 m. During this performance the
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Answer:

189 m/s

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The pilot will experience weightlessness when the centrifugal force, F equals his weight, W.

So, F = W

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v = √gr where  v = velocity, g = acceleration due to gravity = 9.8 m/s² and r = radius of loop = 3.63 × 10³ m

So, v = √gr

v = √(9.8 m/s² × 3.63 × 10³ m)

v = √(35.574 × 10³ m²/s²)

v = √(3.5574 × 10⁴ m²/s²)

v = 1.89 × 10² m/s

v = 189 m/s

5 0
3 years ago
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