Author Topic: Projectile Motion (Read 2007 times) Tweet Share

Vincezor · « **on:** April 15, 2011, 05:23:56 pm »

Hey guys,

I've been having problems with two particular questions involving asymmetrical projectile motion.

1. A basketball aims to throw a basketball so it strikes a backboard 1m above the point of release with only a horizontal velocity. If the ball is shot with an initial speed of 4.8m/s, how far horizontally from the backboard must she stand?

EDIT: Worked it out!

Vertical Component: $s = 1m, v = 0 , a = -10ms^-2, t =?$
$s=vt-at^2$ to find t,
$t = \sqrt{\frac{1}{5}}<br />$
use $v = u + at$ to find u, $u = \frac{10\sqrt{5}}{5}$

Now you know the total velocity is 4.8m/s, so you use pythag to find the horizontal initial velocity which = $\sqrt{4.8^2-(\frac {10}{\sqrt{5}})^2$ = $\frac{\sqrt{76}}{5}$

$s = ut, s = 0.7797m$

2. A stone is thrown with a speed of 18 m/s at an angle of 50 degrees above the horizontal from a bridge 15m above the surface of a wide river. Find the maximum height and range of the stone. At what speed does the stone splash into the water?

- I let u=18sin50, v=0, a=-10m/s/s, and used v^2 =U^2 + 2as to find answer for max height, then added 15 on top of that (24.51m)

I have no idea how to find the range though, or any of the subsequent questions.

onur369 · « **Reply #1 on:** April 15, 2011, 05:35:11 pm »

Is Q1 approx 9.7m ?

xZero · « **Reply #2 on:** April 15, 2011, 05:36:17 pm »

1. The question said that the vertical height would be 1m then the vertical velocity is 0, use x = vt -0.5at^2 to find t then use t to find u. Now find the angle at which the basketball was shot at by usig the vertical velocity you just worked out and apply the equation x = ut

onur369 · « **Reply #3 on:** April 15, 2011, 05:38:44 pm »

For Question 2 I got the max height as 24.5 if you add the 15 it is above the ground already, for its range i got 31.9.

If they are correct I can give full solution

onur369 · « **Reply #4 on:** April 15, 2011, 05:40:00 pm »

For the range use the this formula if SYMMETRIC MOTION: Rmax= u^2 x sin2theta /10

Vincezor · « **Reply #5 on:** April 15, 2011, 05:44:50 pm »

Quote from: onur369 on April 15, 2011, 05:40:00 pm

For the range use the this formula if SYMMETRIC MOTION: Rmax= u^2 x sin2theta /10

Im pretty sure it isn't symmetrical motion, as the stone ends up 15m below from where it started. Also, the answer for the range is 42.2m (I think they used g=9.8 though)

onur369 · « **Reply #6 on:** April 15, 2011, 05:45:41 pm »

Is this from a trial or something, I can possibly look it up

Vincezor · « **Reply #7 on:** April 15, 2011, 05:47:18 pm »

Quote from: onur369 on April 15, 2011, 05:45:41 pm

Is this from a trial or something, I can possibly look it up

Nope, just a booklet of questions we have to do for holiday homework...

luffy · « **Reply #8 on:** April 15, 2011, 05:52:15 pm »

Quote from: Vincezor on April 15, 2011, 05:23:56 pm

Hey guys,

I've been having problems with two particular questions involving asymmetrical projectile motion.

1. A basketball aims to throw a basketball so it strikes a backboard 1m above the point of release with only a horizontal velocity. If the ball is shot with an initial speed of 4.8m/s, how far horizontally from the backboard must she stand?

- Don't know how to start this at all.

2. A stone is thrown with a speed of 18 m/s at an angle of 50 degrees above the horizontal from a bridge 15m above the surface of a wide river. Find the maximum height and range of the stone. At what speed does the stone splash into the water?

- I let u=18sin50, v=0, a=-10m/s/s, and used v^2 =U^2 + 2as to find answer for max height, then added 15 on top of that (24.51m)

I have no idea how to find the range though, or any of the subsequent questions.

Hello Vincezor

Question 1.
Vertically:
x = 1
v = 0
a = -10
u = ?

Find u (using v^2 = u^2 + 2ax) and you will find it is $2\sqrt{5}$ .

Find t, (using $x = vt - \frac{1}{2}at^2$

$t = \frac{\sqrt{5}}{5}$

Now draw a triangle to find horizontal initial velocity.
i.e. u_horizontal = $\sqrt{4.8^2 - 20}$
$= \sqrt{3.04} ms^{-1}$

Therefore, horizontally:
$u = \sqrt{3.04}$
$v = \sqrt{3.04}$
a = 0
$t = \frac{\sqrt{5}}{5}$
x = ?

$x = 0.5( u + v)t$

$x = \sqrt{3.04} \times \frac{\sqrt{5}}{5}$

$x \approx 0.78 m$

Hope I did it right

Question 2.

Your right, the max height should be 24.31m.

As for the range: (you cannot use range formula because they are at different heights)

Vertically: u = 18sin(50) m/s
x = -15m
a = -10
$x = ut + \frac{1}{2}at^2$

$-15 = 18sin(50)t - 5t^2$

You would have to use quadratics to find the value of t (reject any negative t-values), which will be approximately be 3.59 seconds.

Now for the horizontal part of the motion:

u = 18cos(50)
v = 18cos(50)
a = 0
t $\approx$ 3.59
x = ? (i.e. range)

$x =\frac{1}{2} (u + v)t$

$x = 18cos(50) \times 3.59$

$x = 41.57m$ -> Is that the correct answer?

For the speed that it splashes into the water:
- v_horizontal = 18cos(50)

-v_vertical: $v = \sqrt{u^2 + 2ax}$

$\therefore v = \sqrt{(18\sin{(50)})^2 + 2(-15)(-10)$

$\therefore v = \sqrt{324\sin^2{(50)} + 300}$

$\therefore v \approx 22.14 ms^{-1}$

Therefore, $v = \sqrt{( 18cos(50))^2 + 22.14^2}$

$\therefore v = 24.98 ms^{-1}$

Is that right?

Hope I helped.

Vincezor · « **Reply #9 on:** April 15, 2011, 06:19:40 pm »

Quote from: luffy on April 15, 2011, 05:52:15 pm

Hello Vincezor

Question 1.
Vertically:
x = 1
v = 0
a = -10
u = ?

Find u (using v^2 = u^2 + 2ax) and you will find it is $\sqrt{5}$ .

Find t, (using $x = vt - \frac{1}{2}at^2$

$t = \frac{\sqrt{5}}{5}$

Now draw a triangle to find horizontal initial velocity.
i.e. u_horizontal = $\sqrt{4.8^2 - 5}$
$= \sqrt{18.04} ms^{-1}$

Therefore, horizontally:
$u = \sqrt{18.04}$
$v = \sqrt{18.04}$
a = 0
$t = \frac{\sqrt{5}}{5}$
x = ?

$x = 0.5( u + v)t$

$x = \sqrt{18.04} \times \frac{\sqrt{5}}{5}$

$x \approx 1.9 m$

Hope I did it right

I believe $u = 2\sqrt{5}$ , which resulted in your answer being different from mine. (see above)

luffy · « **Reply #10 on:** April 15, 2011, 06:36:43 pm »

Quote from: Vincezor on April 15, 2011, 06:19:40 pm

Quote from: luffy on April 15, 2011, 05:52:15 pm
Hello Vincezor

Question 1.
Vertically:
x = 1
v = 0
a = -10
u = ?

Find u (using v^2 = u^2 + 2ax) and you will find it is $\sqrt{5}$ .

Find t, (using $x = vt - \frac{1}{2}at^2$

$t = \frac{\sqrt{5}}{5}$

Now draw a triangle to find horizontal initial velocity.
i.e. u_horizontal = $\sqrt{4.8^2 - 5}$
$= \sqrt{18.04} ms^{-1}$

Therefore, horizontally:
$u = \sqrt{18.04}$
$v = \sqrt{18.04}$
a = 0
$t = \frac{\sqrt{5}}{5}$
x = ?

$x = 0.5( u + v)t$

$x = \sqrt{18.04} \times \frac{\sqrt{5}}{5}$

$x \approx 1.9 m$

Hope I did it right

I believe $u = 2\sqrt{5}$ , which resulted in your answer being different from mine. (see above)

Sorry, my mistake. I'll edit my original post.

schnappy · « **Reply #11 on:** April 15, 2011, 06:36:53 pm »

2.
Find the time of the flight from the vertical: u=18sin(50), x=-15, a=-10
Then horizontally:
v=d/t, v=18cos(50), t=[as above], d=?
Where d is the range of your motion.

For the final speed, the horizontal component is just 18cos(50). Use the kinematics equations to find the final velocity when x=-15, then create a right angled triangle.

Search the forums now!

We have moved!

Author Topic: Projectile Motion (Read 2007 times) Tweet Share

Vincezor

Projectile Motion

onur369

Re: Projectile Motion

xZero

Re: Projectile Motion

onur369

Re: Projectile Motion

onur369

Re: Projectile Motion

Vincezor

Re: Projectile Motion

onur369

Re: Projectile Motion

Vincezor

Re: Projectile Motion

luffy

Re: Projectile Motion

Vincezor

Re: Projectile Motion

luffy

Re: Projectile Motion

schnappy

Re: Projectile Motion

Recent Posts

User:
Password: