tabogirl910 2010-7-30 10:04 AM
phy mc 97 #3
唔明點解V_y = 開方(v^2-u^2)
tabogirl910 2010-7-30 11:33 PM
push!
steven_1115 2010-7-30 11:35 PM
開方(v^2-u^2) / ?有呢個答案咩
v呢個速率可以分成兩個向量,Vhorizontal + V vertical
v= (u^2+Vy^2)^(1/2) y=vertical
v^2=u^2+Vy^2
Vy^2=v^2-u^2
Vy=0+gt
t=Vy/g=(v^2-u^2)^(1/2) /g
tabogirl910 2010-7-30 11:39 PM
回覆 #3 steven_1115 的帖子
冇ar
但在計算過程有
steven_1115 2010-7-30 11:43 PM
要畫個3角形睇下
tabogirl910 2010-7-30 11:43 PM
其實幾時先要拆vx同vy?
steven_1115 2010-7-30 11:46 PM
[attach]28542[/attach]
呢個時候個v喺兩個方向相加的向量,X方向,同Y方向,所以你要分解佢,求倒Y,再利用V=U+at,find t.
tabogirl910 2010-7-30 11:50 PM
回覆 #7 steven_1115 的帖子
呢個情況就冇水平力.....
咁斜拋運動冇咩力?
steven_1115 2010-7-31 12:24 AM
無咩力?
有重力Only
tabogirl910 2010-7-31 12:31 AM
咁題目問以水平?率3ms^-1拋出的話 , 姐係Ux=3ms^-1 ?
steven_1115 2010-7-31 12:47 AM
yup:)
kiwakwok 2010-7-31 12:49 AM
Hope that it helps
[attach]28544[/attach]
[attach]28545[/attach]