2024~2025学年第一学期高三年级期末学业诊断
物理试卷
(考试时间:上午10:45一12:00)
说明:本试卷分第I卷(选择题)和第Ⅱ卷(非选择题)两部分。考试时间75分钟,满分100分。
第I卷(选择题,共46分)
一、单项选择题:本题包含7小题,每小题4分,共28分。请将正确选项填入第Ⅱ卷前的答题
栏内。
1.G21次高铁列车出站由静止开始做直线运动,列车的加速度与位移关系如左图所示,下列
选项图像中描述该运动的是
0
D
2.神舟十九号与空间站在同一圆周轨道上绕地球做匀速圆周运动,若要使后方的神舟十九号
在该轨道追上空间站,神舟十九号持续喷射燃气的方向可能正确的是
神舟十九号
喷气方向
神舟十九号
◆
空间站
空间站
喷气方向
A
B
神舟十九号
神舟十九号
空间站
空间站
喷气方向
喷气方向
C
D
高三物理第1页(共10页)
3.图中a、b为两根互相垂直的无限长直导线,导线中通有大小相等、方向如图的电流,0为a、b
最短连线上的中,点,A、B、C、D分别是纸面内正方形的四个顶点。下列选项正确的是
A.0点的磁感应强度为0
B.A点与C点磁感应强度的大小相等
D
b
C.B点与D点磁感应强度的方向相同
D.撤去b导线,O点磁感应强度的方向垂直纸面向里
4.如图所示,电源电动势为E、内阻为r,R为电阻箱,C为水平放置的平行板电容器,M为电容
器极板间的一固定点。现闭合开关,达到稳定状态后,下列说法正确的是
A.电容器两端的电压大小为E
B.仅调节电阻箱R阻值变大,电容器极板上的电荷面密度变大
C.断开开关瞬间,通过电阻箱R的电流方向改变
D.断开开关后,M点的电势不会变化
5.如图所示,取下轴承的外圈竖直放置,轴承外圈可看作内壁光滑的竖直圆形轨道,其内恰
好可填装5个完全相同且重为G的光滑球状钢珠。钢珠1、5的重心与圆心0在同一条平行
于地面的水平线上。下列选项正确的是
A.1受到轴承外圈的弹力水平向左
B.根据题设条件,2对1的作用力不可求
C.2受到1、3作用力的合力与水平方向成45°角
D.2与3的作用力大于1与2的作用力
高三物理第2页(共10页)
6.如图所示,矩形区域内有垂直纸面向里的匀强磁场,固定一水平金属棒AD,弹性金属丝绕
过绝缘笔端点P与A、D连接,金属丝始终处于拉直状态且在纸面内,AD与金属丝的电阻均
不可忽略。在绝缘笔端点P沿虚线从B点经C点移动到D点的过程中,下列说法正确的是
A.穿过△APD的磁通量先增大后减小
P
B.△APD中的感应电流始终为O
C.A点的电势始终高于P点的电势
×X×X义
D.P点的电势始终高于D点的电势
7.如图所示,完全相同且长为L的两根轻杆,一端用光滑铰链连接质量为m的小球,另一端用
光滑铰链分别连接等高且间距为L的固定点A、B,小球恰好可在竖直平面内绕AB中点O做
圆周运动。重力加速度为g,不考虑空气阻力,下列说法正确的是
A.小球在最低点处,杆上的弹力大小为5mg
B.小球在最高点处,杆上的弹力大小为0
C.小球从最低点到最高点的过程中,杆上的弹力做功√3mgL
B
D.将A、B缓慢等距靠近O点的过程中,若小球机械能保持不变,
小球在最低点处,杆上的弹力越来越小
二、多项选择题:本题包含3小题,每小题6分,共18分。在每小题给出的四个选项中,至少有
两个选项正确,全部选对的得6分,选对但不全的得3分,有选错的得0分。请将正确选项填
入第‖卷前的答题栏内。
高三物理第3页(共10页)2024~2025学年第一学期高三年级期末学业诊断
物理参考答案及评分建议
一、单项选择题:本题包含 7小题,每小题 4分,共 28分。
题号 1 2 3 4 5 6 7
选项 C A B B D D D
二、多项选择题:本题包含 3小题,每小题 6分,共 18分。
题号 8 9 10
选项 AB BC ABC
三、实验题:共 16分。
11.(7分)
(1) 1.20 (1分) 12.0 (2分) (3)右 (2分) (4)小于(2分)
12.(9分)
(1) (2分)
(3) (2分)
1
(4)1.11(1.00-1.30) (1分) 1.31(1.00-1.60)(2分)
(5)小于 (1分) 小于(1分)
四、计算题:共 38分。
13.(8分)
(1)在 t 时间内,cd棒、ab棒均由静止开始运动
cd棒:Ft - I 安 = mv··················································(1分)
ab棒: I 安 = mvab ·····················································(1分)
v = ab - v····························································· (2分)
(2)cd棒由静止开始做加速度减小的加速运动,ab棒由静止开始做加速
度增大的加速运动。经过足够长的时间,两棒以相同的加速度做匀加
速直线运动
cd棒:F-BIL=ma····················································(1分)
ab棒:BIL=ma·······················································(1分)
I = △ ································································ (1分)
△ = ·······························································(1分)
14.(12分)
(1)质子在直线加速器中做直线运动
6e =
mv02·························································(2分)
=
···························································(2分)
(2)质子在圆形区域电场中做类平抛运动
eE = ma·································································(2分)
R + Rcosθ = t······················································ (2分)
Rsinθ = at2··························································· (2分)
2
E = ························································· (2分) ( + )
15.(18分)
(1)小球刚要离开地面时
qv0B = mg······························································ (2分)
v0= ······················································· (2分)
(2)小球在 OO'由静止开始加速
qEx = mv02 - 0······················································(2分)
x = ······························································(2分)
(3)小球重力与电场力的合力为恒力 F 合,设 F 合与水平方向夹角为θ
F = ( ) 合 + ( ) ···············································(1分)
tanθ = ······························································(1分)
小球离地瞬间,将其速度 v0 分解为垂直于 F 合方向斜向上的速度 v1
和另一分速度 v2
v 1与 v0的夹角为 - θ2
qv1B = F 合······························································(1分)
v = ( ) +( )1 ······················································(1分)
根据小球受力情况,另外一分速度 v2方向竖直向下
qv2B = qE·······························································(1分)
v2= ····································································(1分)
小球的运动可看作以 v1做匀速直线运动与和以 v2做匀速圆周运动
的合运动
2 = = cosθ
1 合
小球的最大速度为
3
vmax= v1+ v2
v ( ) +( ) max= + ············································(1分)
方向与 v0夹角 - θ斜向上·········································(1分)
小球的最小速度为
vmin= v1 - v2
v = ( )
+( ) - min ·············································(1分)
方向与 v0夹角 - θ斜向上·········································(1分)
4
