Velocity/Displacement and time of motion (1 Viewer)

gr_111 · Jul 6, 2012

Can anyone help me with this one:

The velocity of a particle is given by $v = \frac{1}{4\,cos\,2x\,} \text{cms}^{-1}$ and initially the particle is at the origin. Find the total time of motion.

Answers say 2 seconds, but i thought the time of motion is the difference between the times when the velocity equals zero, but in this case the velocity can't equal zero???

gr_111 · Jul 6, 2012

BUMP! Anyone?

Fus Ro Dah · Jul 6, 2012

I have no idea what the question is asking for because the question wants total time of motion, implying that we need to let v=0. However as you said, there does not exist a value of x such that v=0. From where did you get this question?

Parvee · Jul 6, 2012

Fus Ro Dah said:
I have no idea what the question is asking for because the question wants total time of motion, implying that we need to let v=0. However as you said, there does not exist a value of x such that v=0. From where did you get this question?

I think your meant to assume v=0 when x=max

RealiseNothing · Jul 6, 2012

Question is weird, but this may be how you do it?

Given velocity is just the derivative of displacement in respect to time, we can say:

$\frac{dx}{dt} = \frac{1}{4cos{2x}}$

Flip the fraction over:

$\frac{dt}{dx} = 4cos{2x}$

Integrate both sides:

$t = 2sin{2x} + C$

Now we are told that initially the particle is at the origin, so x=0 and t=0:

$0 = 2sin0 + C$

$C = 0$

So we have the equation:

$t = 2sin{2x}$

The maximum value of sin2x is 1, which is when $x = \frac{\pi}{4}$ .

Substituting this in gives:

$t = 2(1)$

So t=2.

gr_111 · Jul 6, 2012

Fus Ro Dah said:
I have no idea what the question is asking for because the question wants total time of motion, implying that we need to let v=0. However as you said, there does not exist a value of x such that v=0. From where did you get this question?

It comes from Maths In Focus, Ex 6.8 Q11, if anyone else has the book.

gr_111 · Jul 6, 2012

RealiseNothing said:
Question is weird, but this may be how you do it?

Given velocity is just the derivative of displacement in respect to time, we can say:

$\frac{dx}{dt} = \frac{1}{4cos{2x}}$

Flip the fraction over:

$\frac{dt}{dx} = 4cos{2x}$

Integrate both sides:

$t = 2sin{2x} + C$

Now we are told that initially the particle is at the origin, so x=0 and t=0:

$0 = 2sin0 + C$

$C = 0$

So we have the equation:

$t = 2sin{2x}$

The maximum value of sin2x is 1, which is when $x = \frac{\pi}{4}$ .

Substituting this in gives:

$t = 2(1)$

So t=2.

Yeah, this is pretty much the process for the rest of the questions in that exercise but once i got the $t = 2sin2x$ i didn't know exactly what to do with it. Thanks.

Velocity/Displacement and time of motion (1 Viewer)

gr_111

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Fus Ro Dah

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Parvee

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RealiseNothing

what is that?It is Cowpea

gr_111

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