第二次调研考试 物 理 一、单项选择题:本题共 7小题,每小题 4分,共 28分。在每小题给出的四个选项中,只有 一项是最符合题目要求的。 1 2 3 4 5 6 7 B D C A C B C 二、多项选择题:本题共 3小题,每小题 6分,共 18分。每小题有多项符合题目要求,全部 选对的得 6分,选对但不全的得 3分,有选错的得 0分。 8 9 10 BD AD AC 三、非选择题:本题共 5 小题,共 54 分。其中第 13-15 小题解答时请写出必要的文字说明、 方程式和重要的演算步骤,有数值计算时,答案中必须明确写出数值和单位。 11.(8 分,每空 2 分) 2 (1)5.30 (2) (3)偏小 2 12.(8 分,除定值电阻和滑动变阻器选择各 1 分外,其余每空 2 分) ( ) (1) ③ ⑥ 2 1 1 1 (4)176 13.(10 分)解: (1)运功员从 A 运动到 B 的过程中,动能定理可得, 1 2 1 = B 2 A ···································(2 分) 2 2 B = 30 m s·············································(2 分) (2)运动员在空中做平抛运动,由运动的分解可得, 水平方向: = B ·················································(·2 分) 1 竖直方向: = 2·················································(2 分) 2 tan 37° = ···············································(1 分) = 4.5s·················································(1 分) 14.(12 分)解: (1)由题意可得,线框恰好匀速进入区域 I,有 = 安················································(1 分) 安 = ················································(1 分) = ····················································(1 分) = ·················································(1 分) = 2 2·················································(1 分) (2)线框下边进入区域 II 时,上、下边均切割磁感线,线框产生的总电动势为 ′ = 2 ···············································(1 分) ′ 此时线框中的感应电流为 ′ = 此时线框受到的总的安培力为 ′安 = 2 ′ ·····························(1 分) 由牛顿第二定律可得 ′安 = ··································(1 分) = 3 ··················································(1 分) (3)令线框离开区域 II 的速度为 ′,由题意可得,线框匀速离开区域 II,有 ′ = ···················································(1 分) 从线框下边开始进入区域 II 到线框下边开始离开区域 II,由功能关系可得 1 2 1 = + ′ 2································(·1分) 2 2 = ················································ ... ...
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