Question

（分）一汽車(chē)行駛時(shí)遇到緊急情況，駕駛員迅速正確地使用制動(dòng)器在最短距離內(nèi)將車(chē)停住，稱(chēng)為緊急制動(dòng)，設(shè)此過(guò)程中使汽車(chē)減速的阻力與汽車(chē)對(duì)地面的壓力成正比，其比例系數(shù)只與路面有關(guān)。已知該車(chē)以72km/h的速度在平直公路上行駛，緊急制動(dòng)距離為25m；若在相同的路面上，該車(chē)以相同的速率在坡度（斜坡的豎直高度和水平距離之比稱(chēng)為坡度）為1：10的斜坡上向下運(yùn)動(dòng)，則緊急制動(dòng)距離將變?yōu)槎嗌伲浚?i>g=10m/s²，結(jié)果保留兩位有效數(shù)字）

Answer 1

  S₂=29m

解析:

以汽車(chē)初速度方向?yàn)檎�方向，設(shè)質(zhì)量為m的汽車(chē)受到的阻力與其對(duì)路面壓力之間的比例系數(shù)為μ，在平直公路上緊急制動(dòng)的加速度為a₁。

根據(jù)牛頓第二定律  －μmg=ma₁  ·················································································· ①

根據(jù)勻減變速直線運(yùn)動(dòng)規(guī)律  a₁＝ ·········································································· ②

聯(lián)立解得  μ＝＝0.8

設(shè)汽車(chē)沿坡角為θ的斜坡向下運(yùn)動(dòng)時(shí)，緊急制動(dòng)的加速度為a₂，制動(dòng)距離為S₂。

根據(jù)牛頓第二定律  mgsinθ－μmgcosθ＝ma₂······································································ ③

根據(jù)勻變速直線運(yùn)動(dòng)規(guī)律  S₂＝··············································································· ④

由題意知tanθ=0.1，則  sinθ＝≈0.1        cosθ＝≈1

聯(lián)立解得  S₂=29m ··································································································· ⑤

說(shuō)明：若用其他方法求解，參照參考答案給分。

；28.57m