別人問我的 A block of mass "m" is released on a wedge of mass M at a height h above the floor. All surfaces are frictionless. Find the speed of the wedge when the block hits the floor. 簡單的說就是楔形木塊問題(楔形木塊的底角為α) 以下解法是錯的, 因為解答中有sinα sol/ 重力位能mgh 轉為兩塊的動能 又水平方向動量守恆, m(v1cosα)=M(v2) [v1沿斜面向下] ,系統在鉛直方向動量不守恆(受重力) 所以mgh = 1/2m(v1)^2 + 1/2M(v2)^2 v1 = (M/m cosα)(v2) 代進第二式硬幹得v2 請問各位先進.. 是錯在哪兒哩 感謝啦~ -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 140.112.25.140