（1）A下降的距离为x＝x₁＋x₂＝时速度最大

（2）当M＞m时，B物块将不会与C相碰。

（1）因为m＜M＜2m，所以开始时弹簧处于伸长状态，其伸长量x₁，则

(2m－M)g＝kx₁····················································································································· （2分）

得x₁＝g······················································································································ （1分）

若将B与C间的轻线剪断，A将下降B将上升，当它们的加速度为零时A的速度最大，此时弹簧处于压缩状态，其压缩量x₂，则

(M－m)g＝kx₂······················································································································· （2分）

得x₂＝g······················································································································· （1分）

所以，A下降的距离为x＝x₁＋x₂＝时速度最大··································································· （2分）

（2）A、B、C三物块组成的系统机械能守恒，设B与C、C与地面的距离均为L，A上升L时，A的速度达到最大，设为v，则

2mgL－MgL＝(M＋2m)v² ·································································································· （4分）

当C着地后，A、B两物块系统机械能守恒。

若B恰能与C相碰，即B物块再下降L时速度为零，此时A物块速度也为零，则

MgL－mgL＝(M＋m)v²········································································································ （4分）

解得：M＝m···················································································································· （3分）

由题意可知，当M＞m时，B物块将不会与C相碰。············································（1分）