f=ma一个重2000kg的车匀速行驶,速度为40m/s,踩下刹车后10秒停止(假设匀减速)1,刹车的force对车所做的force (what is the breaking force applied to the car?)2 ,刹车踩下时车又行驶了多少?(how far does the truck travel while the breaks are apllied?)
问题描述:
f=ma
一个重2000kg的车匀速行驶,速度为40m/s,踩下刹车后10秒停止(假设匀减速)
1,刹车的force对车所做的force (what is the breaking force applied to the car?)
2 ,刹车踩下时车又行驶了多少?(how far does the truck travel while the breaks are apllied?)
答
a=-4m/s^2 => F=4*2000N=8000N
40/2*10=200m
答
1、规定车行驶的方向为正方向,10秒时速度为零,所以40-at=0,a=4m/s方向为负,f=ma=2000*4=8000N,方向为负.
2、s=v t -(1/2)at^2=40*10-(1/2)4*100=400-200=200m
大概是这样吧,希望公式没记错