Problems on Length contraction

AI Thread Summary
The discussion revolves around understanding length contraction in special relativity, particularly for a bar moving at 0.5c at various angles. It highlights that only the component of the bar's length parallel to the direction of motion will experience contraction, while the vertical component remains unchanged. When the bar is tilted at 60 degrees, the observer must resolve the velocity and length components to calculate the observed length accurately. The confusion arises regarding the different lengths observed in the stationary frame versus the bar's rest frame, emphasizing that the angle of the bar will also change due to the contraction. Ultimately, the key takeaway is that length contraction affects only the dimensions aligned with the direction of motion.
chingcx
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Problems on "Length contraction"

Homework Statement


This is a problem in my text. The idea is that a bar is moving with a high speed (say 0.5c) relative to us. We now want to know what will be the length appeared to us if the bar is parallel, perpendicular and 60 degrees tilted. And we are asked when the bar is tilted, how long is it in the co-moving frame.


Homework Equations



L=(Lo)/y where Lo is the proper length

The Attempt at a Solution



First two are very straight-forward, but I can't understand the difference between the last two questions. I tried to resolve the velocity component but still I could not work it out.
Any explanation is appreciated, thank you in advance.
 
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Ok. So you know in this problem that the observer of the bar is going to see the bar a shorter length in the, let's say +x direction. The only parts of the bar that will shrink are the parts parallel to its' velocity; its not going to shrink vertically or diagonally. You will have to modify your Lorentz factor to account for the velocity in the x direction only.
 
lcon.gif



The length of any object in a moving frame will appear foreshortened in the direction of motion, or contracted. The amount of contraction can be calculated from the Lorentz transformation. The length is maximum in the frame in which the object is at rest.

lencon.gif
 

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Winzer said:
Ok. So you know in this problem that the observer of the bar is going to see the bar a shorter length in the, let's say +x direction. The only parts of the bar that will shrink are the parts parallel to its' velocity; its not going to shrink vertically or diagonally. You will have to modify your Lorentz factor to account for the velocity in the x direction only.

Ok and thank you, but did you misunderstand my question? The bar is still moving in +x direction, but the orientation of the bar is not along +x direction, but make an angle of 60 degrees instead. So I think the velocity of the bar is still 0.5c in +x direction, and this is the thing I don't really understand...

physixguru said:
lcon.gif
The length of any object in a moving frame will appear foreshortened in the direction of motion, or contracted. The amount of contraction can be calculated from the Lorentz transformation. The length is maximum in the frame in which the object is at rest.

lencon.gif

Oh, I know this already, and this problem is somehow different in my opinion, thank you anyway.
 
At a just got up guess, you have to resolve the velecity for the x direction (as it is now moving in two planes relative to the stationary reference frame. Also you need to resolve the apparent length in the x direction using simple trig?
 
chingcx said:
Ok and thank you, but did you misunderstand my question? The bar is still moving in +x direction, but the orientation of the bar is not along +x direction, but make an angle of 60 degrees instead. So I think the velocity of the bar is still 0.5c in +x direction, and this is the thing I don't really understand...
Hint: Only the component of length parallel to the direction of motion will be contracted. Find the x & y dimensions in the proper ("moving") frame, then transform to the "stationary" frame.
 
Doc Al said:
Hint: Only the component of length parallel to the direction of motion will be contracted. Find the x & y dimensions in the proper ("moving") frame, then transform to the "stationary" frame.

Thank you. In fact, the textbook problem set v=0.8c (relative to a frame S) and L=1m, and the answers are 0.917m (as observed in the stick's rest frame) and 0.832m (as observed in S) respectively.

From your hint, I get 0.917m, which I expected to be the length observed in S and I've no idea how 0.832m is arrived at. So what's the difference we will see in stick's rest frame and in S frame?
 
The length of the stick in its rest frame is 1 m, of course. (That's what L = 1m means, I presume.) The length of the stick in frame S is about 0.917 m. I have no idea what 0.832 m is supposed to be.
 


Is the bar still at a 60 degree angle as seen in the unmoving frame?
 
  • #10


richard7893 said:
Is the bar still at a 60 degree angle as seen in the unmoving frame?
No. Since only the horizontal dimension 'contracts', the angle of the bar must change.
 

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