如圖所示,在矩形ABCD內(nèi)對角線BD以上的區(qū)域存在有平行于AD向下的勻強(qiáng)電場,對角線BD以下的區(qū)域存在有垂直于紙面的勻強(qiáng)磁場(圖中未標(biāo)出),矩形AD邊長L,AB邊長為L。一個質(zhì)量為m、電荷+q的帶電粒子(不計(jì)重力)以初速度v0從A點(diǎn)沿AB方向進(jìn)入電場,在對角線BD的中點(diǎn)P處進(jìn)入磁場,并從DC邊上的Q點(diǎn)垂直于DC離開磁場,試求:
(1) 電場強(qiáng)度的大小
(2) 帶電粒子經(jīng)過P點(diǎn)時速度的大小和方向
(3) 磁場的磁感應(yīng)強(qiáng)度的大小和方向
【標(biāo)準(zhǔn)解答】
(1) 帶電粒子受電場力作用做類平拋運(yùn)動,則
L=at2··································································································· ①(1分)
L=v0t···································································································· ②(1分)
Eq=ma········································································································ ③(1分)
得 a=,場強(qiáng)為································································· ④(2分)
(2)在豎直方向上做勻變速運(yùn)動,Y方向分速度為vy,則有
2 a= vy2 得vy==v0································································ ⑤(2分)
到P點(diǎn)時速度為V==v0························································· ⑥(1分)
速度與水平方向的夾角θ滿足 =·········································· ⑦(2分)
得此時速度與水平方向的夾角為θ=arctan············································· ⑧(1分)
(3)BD與水平方向的夾角滿足 ··························································· ⑨(1分)
則 有v⊥BD············································································ ⑩(1分)
粒子在磁場中運(yùn)動軌跡的圓心就在D點(diǎn),則R=BD=L··················· (1分)
由V=v0,qvB=m········································································· (2分)
得·························································································· (1分)
方向垂直紙面向外·················································································· (1分)
【思維點(diǎn)拔】
若題中邊長未知,求BD與CD間的夾角又變成新題
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