请教高中物理问题,求教高手,期望有分析过程

当汽车的速度最大时,电阻等于牵引力

ff = f = f = 2000n可以保持

p0 = f可以保持Vin = ffvm

是的VM = P0 / F = 20m / s < /

汽车将速度加速= 0.5m / s2至a = 0.5m / s2至a = 0.5m / s2至a = a = a = a = = 0.5m / s2 = 0.5m / s2至a = 0.5m / s2至a = 0.5m / s2至a = 0.5m / s2 a = 0.5m / s2至a = 0.5m / s2至a = 0.5m / s2 = 0.5m / s2 = 0.5m / s2 a = a = / s2 a = a = / s2 a = / s2 = / s2 a = 0.5m / s2至a = 0.5m / s2至a = 0.5m / s2 to a = 0.5m / s2 = 0.5m / s2至a = 0.5m / s2 a = 0.5m / s2至a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5 m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 = = a = a = a = a = a = a = / s2 a = a = / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 a = 0.5m / s2 to a = 0.5m / s2 < / s2 < /

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t>带有汽车的拖拉菌(这是汽车是f = 4000n t> t> t> t>

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因此均匀加速度为5至1000 = P0 / f = 10m / s < /

,第二米的速度为10米,因为功率已上升,因此必须将牵引力降低以加速汽车。
因此,速度汽车在第二米10米后发生了变化。

2vm/ 3 =每秒13,333米,比每秒10米

这次在汽车中,马车速度加速

这是与汽车最大值

一致的最大的东西,这使加速加速。
(5 =每秒13.33米)在F2 = P0/ 13.3333333 = 3000n

f2)中

匀速运动牵引力做功与阻力做功相等吗

以恒定的速度驱动,戒断和阻力的平衡,因此牵引力f = f = 20n,提取工作wf = fs = 20×500J = 10000J电阻工作:wf = -fs = -20×5000J = -10000J支持重力不起作用。
本质

物理题,求讲解

驱逐舰:f = w/s = 30000/200 = 150N电阻与吸引力相同,因此F = 150N行程200m,克服电阻的能力为:W1 = 30000J 100m行进,克服阻力阻力的阻力是工作。

怎么解答这题,要过程,谢谢

电阻为2400N,因为以连续的速度驾驶,所获得的所有电阻都等于牵引力,即F = F = 2400N。
功率W = f·S = 2400x9000 = 2.16x(7个步骤10)功率w/t = 2.16x(7个步骤10)/(5x60)/(5x60)= 7.2X(10的侧面)