Physics education research, electronic materials, and the musings of Christopher Moore, Ph.D.

finemooncheese · 2010-03-30 14:25:34

Hi so I'm not sure how much the time for the horizontal range is assumed to be in projectile motion.

Walter Lewin · 2010-05-30 10:55:00

It's simply $\frac{2v_{0}Sin(\alpha)}{g}$ or $\frac{2v_{0}_{x}}{g}$

Last edited by Walter Lewin (2010-05-30 10:56:44)

Astro · 2010-05-30 13:40:40

But perhaps, using trig answers might confuse the OP. He may have required a much more simpler derivation.

devesh singh · 2010-09-10 13:21:58

Y=UT+1/2gT^2 (IN VERTICAL DIRECTION ) g=g(effectiv) U=Uy, Y=net vertical displacement from projection point
above eque. in vector form ......this formula is alwags true...T=time period for horigental rang

devesh singh · 2010-09-10 13:26:35

T=(2USin*)/g is not alwage true

Physics education research, electronic materials, and the musings of Christopher Moore, Ph.D.

#1 2010-03-30 14:25:34

Projectile motion

#2 2010-05-30 10:55:00

Re: Projectile motion

#3 2010-05-30 13:40:40

Re: Projectile motion

#4 2010-09-10 13:21:58

Re: Projectile motion

#5 2010-09-10 13:26:35

Re: Projectile motion

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