高中物理题(电磁学),跪求解答过程,速度!
有界匀强磁场区域如图所示,质量为m,电阻为R,半径为r的圆形线圈一半在磁场内,一半在磁场外,t=0时磁感应强度为B,以后均匀减小直至为零,磁感应强度的变化率△B/△t为一常数k,线圈因产生感应电流,在磁场力作用下运动,不考虑重力影响。求:
(1)t=0时刻线圈的加速度;(2)线圈最后做匀速直线运动时,回路中的电功率
解:(1)E=S△B/△t=π(r^2)k············································①
I=E/R=π(r^2)k/R··························································②
F=BI·2r=2Bπ(r^3)k/R····················································③
∴a=F/m=2Bπ(r^3)k/(Rm)···············································④
即t=0时刻线圈的加速度大小为2Bπ(r^3)k/(Rm),方向向右。·····⑤
(2)根据题意,线圈最后做匀速圆周运动时全部进入磁场中。
由(1),得E=π(r^2)k·······················································⑥
∴P=(E^2)/R=(π^2)(r^4)(k^2)/R··········································⑦
过程解释:①是因为磁感应强度变化形成感生电场,因而产生感生电动势(如果还没学感生和动生,那就直接看成闭合线圈内部磁通量变化产生的电动势)。②是欧姆定律。③是通电导线在磁场中所受安培力的公式,原位F=BIL(L为有效长度)。④是牛顿第二定律。⑤中方向的判定是先根据楞次定律判断线圈中电流的方向(顺时针),再用左手定则判断线圈受力方向(线圈只有右半部分在磁场中,而该部分电流在水平方向受到的力互相平衡,在竖直方向相当于长为2r电流方向向下的直导线,因而受安培力向右)。⑥是因为线圈在完全进入磁场中后(仍有磁感应强度的变化,所以有磁通量的变化,所以有感应电动势,所以有感应电流),各部分所受到的安培力合力为零,因此做匀速直线运动,而感应电流仍存在。⑦根据公式P=UI=(U^2)/R得来,此时的U即为感应电动势E。
I=E/R=π(r^2)k/R··························································②
F=BI·2r=2Bπ(r^3)k/R····················································③
∴a=F/m=2Bπ(r^3)k/(Rm)···············································④
即t=0时刻线圈的加速度大小为2Bπ(r^3)k/(Rm),方向向右。·····⑤
(2)根据题意,线圈最后做匀速圆周运动时全部进入磁场中。
由(1),得E=π(r^2)k·······················································⑥
∴P=(E^2)/R=(π^2)(r^4)(k^2)/R··········································⑦
过程解释:①是因为磁感应强度变化形成感生电场,因而产生感生电动势(如果还没学感生和动生,那就直接看成闭合线圈内部磁通量变化产生的电动势)。②是欧姆定律。③是通电导线在磁场中所受安培力的公式,原位F=BIL(L为有效长度)。④是牛顿第二定律。⑤中方向的判定是先根据楞次定律判断线圈中电流的方向(顺时针),再用左手定则判断线圈受力方向(线圈只有右半部分在磁场中,而该部分电流在水平方向受到的力互相平衡,在竖直方向相当于长为2r电流方向向下的直导线,因而受安培力向右)。⑥是因为线圈在完全进入磁场中后(仍有磁感应强度的变化,所以有磁通量的变化,所以有感应电动势,所以有感应电流),各部分所受到的安培力合力为零,因此做匀速直线运动,而感应电流仍存在。⑦根据公式P=UI=(U^2)/R得来,此时的U即为感应电动势E。
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