7.9kg正方体铁块静止于1m^2的水瓶桌面*,求铁块对桌面的压强.(取铁的密度=7.9g/cm^3,g=10N/kg)
问题描述:
7.9kg正方体铁块静止于1m^2的水瓶桌面*,求铁块对桌面的压强.(取铁的密度=7.9g/cm^3,g=10N/kg)
答
v=m/密度=10^-3
s=0.01
p=f/s=79/0.01
=7900pa
答
先计算出正方体的体积,V=m/ρ=1000cm³,其中边长L=10cm,受力面积s=100cm²,压强P=F/s=G/L²=mg/L²=7.9×10^5N。
答
V=m/密度=7.9/(7.9×10^3)=1×10^-3m^2
h=三次根号v=三次根号1×10^-3m^2=0.1m
s=h^2=0.1×0.1=0.01m^2
0.01小于1
所以S=0.01m^2
P=F/S=G/S=mg/S=7.9×9.8/0.01=7742pa
答:压强为7742pa
答
79n