Mechanics Help! (1 Viewer)

Beaconite · Aug 26, 2012

a) (ii)

jet · Aug 26, 2012

We know we'll need an expression for the terminal velocity, so we have to calculate it:
$\begin{align*}V &= \lim_{t \to \infty} v \\ &= \lim_{t\to\infty} \frac{g}{k}(1 - e^{-kt}) \\ &= \frac{g}{k}\end{align*}$

This makes sense - it should depend on the strength of gravity and the resistive force of the medium (i.e. $k$ )

The force on the second particle is $F = -mg-mkv$ when our axis goes vertically upwards from the origin. Hence,
$\begin{align*}\frac{dv}{dt} &= -g - kv \\ \frac{dt}{dv} &= \frac{1}{-g-kv} \\ \int^{t}_{0} \, dt &= -\int_{U}^{v} \frac{1}{g + kv} \, dv \\ t &= -\frac{1}{k} \ln \left ( \frac{g + kv}{g + kU} \right )\end{align*}$

The second particle is momentarily at rest when $v = 0$ . This means
$\begin{align*}t &= -\frac{1}{k} \ln \left ( \frac{g}{g + kU} \right )\end{align*}$

So when we substitute into the equation for velocity of the first particle (and writing $\exp$ for exponential), we get
$\begin{align*}v &= \frac{g}{k} \left ( 1 - \exp\left (-k \left ( -\frac{1}{k} \right ) \ln \left ( \frac{g}{g + kU} \right ) \right ) \right ) \\ &= \frac{g}{k} \left ( 1 - \frac{g}{g + kU} \right ) \\ &= \frac{g}{k} \left ( \frac{kU}{g + kU} \right ) \\ &= \frac{gU}{g + kU} \\ &= \frac{\frac{g}{k}U}{\frac{g}{k} + U} \\ &= \frac{VU}{V + U} \end{align*}$

math man · Aug 26, 2012

Beaconite · Aug 26, 2012

Thanks guys

for terminal velocity, we could also say acceleration =0 right?

math man · Aug 26, 2012

Yes that's what I was implying

jet · Aug 26, 2012

Beaconite said:
Thanks guys

for terminal velocity, we could also say acceleration =0 right?

That's the more physical way of interpreting it (and technically more correct). I just know this means it will have eventual constant speed so I take the limit, there's no difference.

Beaconite · Aug 26, 2012

how did it go from second last step tp last step?

jet · Aug 26, 2012

4 = 2² so you move one of the twos into the 2^k, and 2*a > a when a is not zero or negative (a is 2^k+1 in this case so it can never be 0 or negative).

jet · Aug 26, 2012

They're not... Can't you see the > sign?

barbernator · Aug 26, 2012

Beaconite said:
I know that, but how could you write 2.2^k+1 as 2^k+1

shouldn't it be 2^k+2 ?

they arent writing it as that. They are saying that one is less than the other for the purpose of the proof.

Beaconite · Aug 26, 2012

barbernator said:
they arent writing it as that. They are saying that one is less than the other for the purpose of the proof.

lol yeah I get it

Beaconite · Aug 26, 2012

iii) and iv)

nightweaver066 · Aug 26, 2012

Beaconite said:
View attachment 26205

iii) and iv)

Suppose z = 2(cos@ + isin@)

Conjugate z = 2(cos@ - isin@), so just reflected across the x-axis.

-z/2 would be reflected across the x and the y axis where the modulus is halved (so now 2)

1/z - it is reflected across the x-axis and the modulus is now 1/4 (shrinked to 25% original)

sqrt(z) - modulus is now 2, and argument is halved (De Moivre's theorem).

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