Angular Momentum of each particle about the origin

AI Thread Summary
The discussion focuses on calculating the angular momentum of three particles about the origin using the formula L = r x p, where p = mv. Participants clarify the correct vector representations for each particle's position and momentum, correcting initial mistakes in the calculations. For Point A, the angular momentum is computed as 22.72k, for Point B as -7.176k, and for Point C as 280k, with ongoing adjustments to the direction of the vectors. There is a debate about the orientation of the triangle related to Point C, affecting the final results. The conversation emphasizes the importance of accurately defining vectors to achieve correct calculations of angular momentum.
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Homework Statement


Determine the Angular Momentum of each particle about the origin

Point A Located @ (-8,12), 6kg,4m/s, headed 60degrees below the horizon to the right
Point B (2,1.5),4kg, 6m/s, headed 30 degrees above the horizon to the right
Point C (6,-2), 2kg, 2.6m/s, headed on a 5,12,13 angled to the left and down


Homework Equations



L=r x p
p=mv


The Attempt at a Solution



A. -8i+12j X 24(-i-8.66j)=
B. 2i+1.5j X 24(i+.5j)=
c. 6i-2j X 5.2(-12i-5j)=

If this is right i don't know how to calculate it
 
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joemama69 said:
Determine the Angular Momentum of each particle about the origin

Point A Located @ (-8,12), 6kg,4m/s, headed 60degrees below the horizon to the right
Point B (2,1.5),4kg, 6m/s, headed 30 degrees above the horizon to the right
Point C (6,-2), 2kg, 2.6m/s, headed on a 5,12,13 angled to the left and down

L=r x p
p=mv

A. -8i+12j X 24(-i-8.66j)=
B. 2i+1.5j X 24(i+.5j)=
c. 6i-2j X 5.2(-12i-5j)=

If this is right i don't know how to calculate it

Not quite right. To the right is +i isn't it?
A. -8i+12j X 24(-i-8.66j)=
should be
A. (-8i + 12j) X 24*(.5i - .866j)=

B. 2i+1.5j X 24(i+.5j)=
should be
B. (2i + 1.5j) X 24*(.866i + .5j)=

c. 6i-2j X 5.2(-12i-5j)=
should be
c. (6i - 2j) X 5.2*(-12i - 5j -13k) =

To take the cross product ...
http://en.wikipedia.org/wiki/Cross_product#Computing_the_cross_product
 
Last edited:
(-8i + 12j) X 24*(.5i - 8.66j)

It should be (-8i + 12j) X 24*(.5i - .866j)
 
rl.bhat said:
(-8i + 12j) X 24*(.5i - 8.66j)

It should be (-8i + 12j) X 24*(.5i - .866j)

Indeed it should. Thanks for the catch.
 
ok i see my mistakes.

just to clarify @ point C

13 is not the k value, it is the third side of the triangle/hipotinuse
 
Ok so here what i got

A. (-8i+12j)X(12i-20.784j)=22.72k
B. (2i+1.5j)X(2.784i+12j)=-7.176k
C. (6i-2j)X(62.4i-26j)=280k
 
joemama69 said:
Ok so here what i got

A. (-8i+12j)X(12i-20.784j)=22.72k
B. (2i+1.5j)X(2.784i+12j)=-7.176k
C. (6i-2j)X(62.4i-26j)=280k

A. (-8 i + 12 j) X (12 i - 20.784 j)= 22.272 k

C. (6i-2j)X(62.4i-26j)=280k
Looking at the original direction again I think it should be -26 i -62.4 j. This yields a different result.
 
Nope the triangle is not oriented like that


the bottom is 12 or -12i, the side is on the right and up -5j.
 
joemama69 said:
Nope the triangle is not oriented like thatthe bottom is 12 or -12i, the side is on the right and up -5j.

OK. I can't see the picture, so going with that ... so using -62.4 i -26 j
shouldn't it be -156 - 124.8 = -280.8 k
 

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