CrashOveride
Active Member
Show that the time required to travel from the centre of motion to a point at a distance from the centre equal to half the amplitude is 1/12 of the period.
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pc_wizz
ρ s y c н o ρ α τ н ™
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i end up with a funky answer .. 
if x = a cos (nt + b)
then amplitude = a
and period = (2pi)/n
its given that x = a/2
:. nt + b = arccos (1/2)
= pi/3
= (2pi - 6b)/6
:. t = (2pi - 6b)/6n
= (2pi/6n) - b/n
= 2(2pi/12n) - b/n
thats the closest i got .. =/
pcwizz
if x = a cos (nt + b)
then amplitude = a
and period = (2pi)/n
its given that x = a/2
:. nt + b = arccos (1/2)
= pi/3
= (2pi - 6b)/6
:. t = (2pi - 6b)/6n
= (2pi/6n) - b/n
= 2(2pi/12n) - b/n
thats the closest i got .. =/
pcwizz
CrashOveride
Active Member
ok i duno waht u did...but here is me:
Period: 2pi / n
To show time 1/12 of period, t = pi / 6n **
x = a cos (nt + &)
When t=0, x=0 (say)
0 = acos(&)
cos(&) = 0
& = Pi/2
When x = a/2:
a/2 = a cos (nt + pi/2)
1/2 = cos (nt + pi/2)
nt + pi/2 = Pi/3
nt = -Pi/6
t = -Pi / 6n **
If i take absolute value then i get t = Pi / 6n, as required.
Just the thing is...shouldn't it fall out as a +ve time anyway, i shudnt need to take abs value ?
Period: 2pi / n
To show time 1/12 of period, t = pi / 6n **
x = a cos (nt + &)
When t=0, x=0 (say)
0 = acos(&)
cos(&) = 0
& = Pi/2
When x = a/2:
a/2 = a cos (nt + pi/2)
1/2 = cos (nt + pi/2)
nt + pi/2 = Pi/3
nt = -Pi/6
t = -Pi / 6n **
If i take absolute value then i get t = Pi / 6n, as required.
Just the thing is...shouldn't it fall out as a +ve time anyway, i shudnt need to take abs value ?
George W. Bush
Banned
Let x = a sin (nt)
When x=0, t=0
When x= a/2
a/2 = a sin (nt)
nt = pi/6 (justify blah blah)
t= pi/6n
You have a negative value because you're using cos(nt + pi/2), at t=0 the particle is moving in a negative direction, so to get to a positive x value we are talking about -pi/6n -> 0. Draw a graph of the displacement if you don't understand what I mean.
When x=0, t=0
When x= a/2
a/2 = a sin (nt)
nt = pi/6 (justify blah blah)
t= pi/6n
You have a negative value because you're using cos(nt + pi/2), at t=0 the particle is moving in a negative direction, so to get to a positive x value we are talking about -pi/6n -> 0. Draw a graph of the displacement if you don't understand what I mean.
CrashOveride
Active Member
Oh ok, so you can say stuff like x = a sin (nt) ?
I thought x = acos(nt + &) was the universal thing, my textbook doesnt say anything about doing it that way.
I thought x = acos(nt + &) was the universal thing, my textbook doesnt say anything about doing it that way.
CrashOveride
Active Member
Ok so for my case just taking x as -a/2 would settle the matter
George W. Bush
Banned
We can define the centre of motion to be at any time t. As long as the displacement function represents SHM (i.e. x'' = -n^2 x) it can be whatever you like.
CrashOveride
Active Member
another thing, if i got x'' = -18 (2x - 1) ...and im wanting to show its in SHM, my teacher said u can just let 2x - 1 = X and that solves it. But arn't we just defining displacement in terms of displacement then ? :S So if X was 0 (the x'' would be 0 ) but 2x - 1 = 0 so x = 1/2. So im saying letting displacement be zero means dispalcement is 1/2 ?! Im confused here.
George W. Bush
Banned
-18(2x-1) = -36(x- 1/2)
I don't see your problem.
I don't see your problem.
CrashOveride
Active Member
-36(x - 1/2)
When x is zero (i.e. zero displacement, at the origin) x'' = 18
Property of SHM is x'' = 0 when displacement is zero (x=0)
When x is zero (i.e. zero displacement, at the origin) x'' = 18
Property of SHM is x'' = 0 when displacement is zero (x=0)
George W. Bush
Banned
No, x'' = 0 at the centre of motion.
CrashOveride
Active Member
Exactly....and when we're at the centre of motion, we have x = 0 as there is no displacement (x is defined as displacement from centre of motion, nay? )
George W. Bush
Banned
no.
CrashOveride
Active Member
x is defined as the distance of point P from the origin O. So i'm tending to stick with my arguement unless u can shed some light onto this....
CrashOveride
Active Member
the centre of motion and the origin the same thing?
George W. Bush
Banned
the origin doesnt have to be the center of motion
CrashOveride
Active Member
but we know x'' = 0 at centre of motion.
And my book says when x=0, x''= 0. That is, acceleration iz zero at the origin. And from the diagram in the book, it seems to be definign x as displacement from the centre of motion. So i would assume its being synonomous with origin and centre of motion :S
And my book says when x=0, x''= 0. That is, acceleration iz zero at the origin. And from the diagram in the book, it seems to be definign x as displacement from the centre of motion. So i would assume its being synonomous with origin and centre of motion :S
CrashOveride
Active Member
Ok so is 'x' the displacement from the centre of motion or origin?
So for eg. if something was going from 3 to 5 your saying at x=4 we have x'' = 0.
What book are you guys using ? I dont like the way mine explains things, its the crappy Couchman book
So for eg. if something was going from 3 to 5 your saying at x=4 we have x'' = 0.
What book are you guys using ? I dont like the way mine explains things, its the crappy Couchman book