1、P=F/S=64/(0.2)²=1600Pa
2、因为ρ=m / v m相等,所以 ρA:ρB=VB:VA=0.3³:0.2³=27:8
3、
设切去高度为H时,PA′=PB′
即ρAg(0.2-H)SA²/SA²= ρBg(0.3-H)SB²/SB²
ρA(0.2-H)= ρB(0.3-H)
解得H= 3/19≈0.16m
当h<0.16m时,PA′>PB′
当h>0.16m时,PA′<PB′
当h=0.16m时,PA′=PB
F =300公斤×10N/kg = 3000N
至少S = F / P = 3000N / 4×10 4PA =0.075米2 = 7.5×10 2厘米2
W有用= MGH =(90米3 / H×0.5H)×1000KG /立方米×10N/kg×20M = 9×10 6 J
W总= PT = 8000W×30×60秒= 1.44×10 7?
效率= W有用/ W总= 62.5%
1.A底面积为0.2×0.2=0.04
P=F/S=64/0.04pa=1600pa
2.m同,A体积为0.2×0.2×0.2=0.008m³
B体积为0.3×0.3×0.3=0.027m³
ρA:ρB=mA/va:mB/vB=1/va:1/vB=1/0.008:1/0.027=27:8
3.
设切去高度为H时,PA′=PB′
即ρAg(0.2-H)= ρBg(0.3-H)
解得H= ≈0.16m
当h<0.16m时,PA′>PB′
当h>0.16m时,PA′<PB′
当h=0.16m时,PA′=PB
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