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{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}鞍山市普通高中 2023—2024 学年度高三第二次质量监测
物理答案
一、单项选择题:
1.A 2.C 3.B 4.B 5.B 6.C 7.A
二、多项选择题:
8.AB 9.ABD 10.BC
三、实验题:
2L
11.(1)AB (2)20.45 (3) (每空2分)
md2
12.(1)串、6 (2)甲、左 (3)4.8、3.6 (1,2问每空1分,3问每空2分)
四、计算题:
13(10分).解:(1)碰后B球做平抛运动运动,由
= 1 2 ...... (2分)
2
� ��
= ...... (2分)
B
� � ⋅�
4
得 = ...... (1分)
3
� �
(2)对A球列动能定理,设A球碰前的速度为 :
�0
= 1 2 ...... (1分)
2 0
푚�� 푚�
A、B两球碰撞满足动量守恒,设碰后A球速度为 ,向右为正:
0
�
= +2 ...... (2分)
0 A B
푚� 푚� 푚�
2
得 =
A
3��
� −
由牛顿第二定律得:
2
= A ...... (1分)
T
푚�
� −푚� 11 �
得 = ...... (1分)
T
9
� 푚�
注:其他方法结果正确即得分
1
{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}14.(12分)解: (1) M到N ...... (1分)
(2)假设金属杆b在进入磁场前与金属导轨相对运动,则
= = 4 ...... (1分)
� 휇푚� �
U型框的加速度为: = = 2 m/s2 ...... (1分)
1
� 3
� �
金属杆的加速度为: = =3m/s2 ...... (1分)
2
�−�
� 푚
a 2 >a 1 ,假设成立 (无此说明,计算正确不扣分)
金属杆进入磁场后匀速运动,受力平衡:
+ = ...... (1分)
� 퐵�� �
设金属杆匀速的速度为v: = ...... (1分)
� 퐵��
= ...... (1分)
�
� �
得 = 3m/s
�
由 2 = 2 ...... (1分)
2 0
� � �
得 =1.5m ...... (1分)
0
�
(3)金属杆进入磁场前的运动时间为:
= =1s ...... (1分)
1
�2
� �
U型框进入磁场前一直做匀加速直线运动,进入磁场时的速度为:
= + =2m/s ...... (1分)
a 1 0 1
� � � �
此时回路的电流为:
= a =2A ...... (1分)
퐵� �−�
� �
注:其他方法结果正确即得分,结果正确无中间结果不扣分
2
{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}15(18分).解:(1)对带电粒子列动能定理:
= 1 2 ...... (2分)
0
2
� � 푚�
得 = = 2 ...... (1分)
0
� 푚� 푚� �
2
(2)粒子在磁场中做圆周运动的周期为 , 由 = ...... (1分)
0
푚�
� ��퐵 �
得 = 2 0 ...... (1分)
푚�0 �
� �퐵
2
由 =
휋�
� �
2
得 = ...... (1分)
휋푚0
� �퐵
由 = T ...... (1分)
2�
� π
1
= 2
2
= (1200 和600也得分) ...... (1分)
3π π3
� �
粒在0 内的轨迹如图所示:
0
∼�
由几何关系得:
3
= ...... (1分)
2
� �
5
= ...... (1分)
2
� �
粒子的位置坐标为:
6 0 , 5 2 0 ...... (1分)
2푚�0� 2푚�0 �
�퐵 �퐵
(注:写成 x= 6 0 y= 5 2 0 也得此1分)
2푚�0� 2푚�0 �
�퐵 �퐵
3
{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}(3)
3
(i) 如图所示,当 时,粒子会击中 =2 的位置; ...... (1分)
0
π푚0
� ≥ �퐵 � �
5 2
当 = 时,t= 时 ,粒子会击中 = (1+ 3) 的位置 ...... (1分)
0
6π푚0 π푚0
� �퐵 �퐵 � �
所以y轴有粒子击中的范围为:
2 2 0 ~ 2 0 ...... (1分)
푚�0 � 푚�0 �
�퐵 (1+ 3) �퐵
又有,当 = 3 时,粒子轨迹如左图,击中y轴位置为y=(2+2 2) 2 0 ......
0
4π푚0 푚�0 �
� �퐵 �퐵
当 = 5 时,粒子轨迹如右图,击中y轴位置为 = ( +1)+ + 1 ( + 2 0
0
6π푚0 6− 2 6 2 2 푚�0 �
� �퐵 � 3 2 − 2 −1) �퐵
4
{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}所以y轴有粒子击中的范围为:
(2+2 ) 2 0 ~ ( +1)+ + 1 ( + 2 0 ...... (1分)
푚�0 � 6− 2 6 2 2 푚�0 �
2 �퐵 3 2 − 2 −1) �퐵
综上两个范围为粒子击中y轴的全部可能值
5
(ii)当 = 时:
0
6π푚0
� �퐵
= 1 sin75 ...... (1分)
min
� � − °
3
当 = 时:
0
4π푚0
� �퐵
= 2 sin45 ...... (1分)
max
� � − °
所以t=T 0时刻仍在第一象限中的粒子位置的横坐标取值范围为:
(4 2 6) 2 0 ~ (4 2) 2 0 ...... (1分)
− −4 0 푚� � − 2 푚0 � �
�퐵 �퐵
(注:写出最大值和最小值即得分)
注:其他方法结果正确即得分,结果正确无中间结果不扣分
5
{#{QQABbQCAogggAoAAABhCUQEQCkGQkAGAAAoGQAAIsAAACBNABAA=}#}
