MedVision ad

mechanics q (1 Viewer)

john-doe

Member
Joined
Jul 29, 2012
Messages
179
Gender
Male
HSC
2012
a body of mass m is projected vertically upwards with speed u, air resistance is k times the square of the speed, where k is a constant. find the speed of the body when it is next at the point of projection.

i got the answer as -u. But i think thats only possible where air resistance is neglected so i might have made a mistake..Help! thanks
 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
You have to find when it comes back down as well.
 

barbernator

Active Member
Joined
Sep 13, 2010
Messages
1,439
Gender
Male
HSC
2012
Ok here is the gist of it. when the particle is travelling upwards, its equation of acceleration is a=-g-kv^2. So integrate dx/dv to find x in terms of v. When you have evaluated the constant, find the x value when v=0. This x value will be used for our next acceleration constant.

Now that the particle has reached its peak, the equation if motion changes as resistance is in opposition to gravity. so a=g-kv^2. integrate again dx/dv to find x in terms of v. Find the constant by using the point (x=0,v=0 (we are resetting the start for new equation)) and then substitute in x=(displacement you had found before) and solve for v.
 

john-doe

Member
Joined
Jul 29, 2012
Messages
179
Gender
Male
HSC
2012
do you want a hint or solution?
anything?

You have to find when it comes back down as well.
alright i got the following expression for x in terms of v...

x=(m/2k).ln(ku^2+mg)-(m/2k)ln(kv^2+mg)...now they want the velocity at point of projection so i let x=0..

i end up with v^2=u^2 therefore v= -u ....where did i go wrong??

an
 

barbernator

Active Member
Joined
Sep 13, 2010
Messages
1,439
Gender
Male
HSC
2012
anything?



alright i got the following expression for x in terms of v...

x=(m/2k).ln(ku^2+mg)-(m/2k)ln(kv^2+mg)...now they want the velocity at point of projection so i let x=0..

i end up with v^2=u^2 therefore v= -u ....where did i go wrong??

an
you have to realise that there are different equations for motion as the particle is going up and down, so you have to solve the first, and then use this to evaluate the second. Also, for ease, you don't need mass in your equations as k is just a simple constant rather than k/m or whatever as they mean the same thing, especially as this question doesn't require an evaluation of the constant.
 

john-doe

Member
Joined
Jul 29, 2012
Messages
179
Gender
Male
HSC
2012
you have to realise that there are different equations for motion as the particle is going up and down, so you have to solve the first, and then use this to evaluate the second. Also, for ease, you don't need mass in your equations as k is just a simple constant rather than k/m or whatever as they mean the same thing, especially as this question doesn't require an evaluation of the constant.
can you just upload your working out if u dont mind?? i wanna see it! thanks if u can
 

D94

New Member
Joined
Oct 5, 2011
Messages
4,423
Gender
Male
HSC
N/A
Ok here is the gist of it. when the particle is travelling upwards, its equation of acceleration is a=-g-kv^2. So integrate dx/dv to find x in terms of v. When you have evaluated the constant, find the x value when v=0. This x value will be used for our next acceleration constant.
Since resistance is a force, Fresistance = kv2. Then, a = (±)g-kv2/m. Yes/no?
 

barbernator

Active Member
Joined
Sep 13, 2010
Messages
1,439
Gender
Male
HSC
2012
Since resistance is a force, Fresistance = kv2. Then, a = (±)g-kv2/m. Yes/no?
but because the constant is the same for both equations, this doesn't matter right?
 
Last edited:

barbernator

Active Member
Joined
Sep 13, 2010
Messages
1,439
Gender
Male
HSC
2012
my answer. <a href="http://www.codecogs.com/eqnedit.php?latex=v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" target="_blank"><img src="http://latex.codecogs.com/gif.latex?v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" title="v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" /></a>
can someone confirm?
 

john-doe

Member
Joined
Jul 29, 2012
Messages
179
Gender
Male
HSC
2012
my answer. <a href="http://www.codecogs.com/eqnedit.php?latex=v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" target="_blank"><img src="http://latex.codecogs.com/gif.latex?v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" title="v=\sqrt{\frac{u^2g}{g-ku^2}}~where~k~includes~mass" /></a>
can someone confirm?
the answer for the velocity at the point of projection is

u^2/ {sqrt [1+ (ku^2/mg)]} note the k in this answer doesnt include mass
 

barbernator

Active Member
Joined
Sep 13, 2010
Messages
1,439
Gender
Male
HSC
2012
the answer for the velocity at the point of projection is

u^2/ {sqrt [1+ (ku^2/mg)]} note the k in this answer doesnt include mass
shit ok ill fix tomorrow and post solution. too tired
 

D94

New Member
Joined
Oct 5, 2011
Messages
4,423
Gender
Male
HSC
N/A
the answer for the velocity at the point of projection is

u^2/ {sqrt [1+ (ku^2/mg)]} note the k in this answer doesnt include mass
Yes, that's what I got. I used Fresistance = kv2 for my calculations. Initial equation was: ma = mg + kv2 and second equation was: ma = -mg + kv2

Edit: wait... was the answer with a big square root sign?
 

john-doe

Member
Joined
Jul 29, 2012
Messages
179
Gender
Male
HSC
2012
Yes, that's what I got. I used Fresistance = kv2 for my calculations. Initial equation was: ma = mg + kv2 and second equation was: ma = -mg + kv2
care to share the workin out???
 

Aysce

Well-Known Member
Joined
Jun 24, 2011
Messages
2,394
Gender
Male
HSC
2012
Yes, that's what I got. I used Fresistance = kv2 for my calculations. Initial equation was: ma = mg + kv2 and second equation was: ma = -mg + kv2

Edit: wait... was the answer with a big square root sign?
Wouldn't the initial equation where the particle is vertically projected be ma = -mg-kv^2 ?
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top