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太原市 2026 年高三年级模拟考试(二)
物理参考答案与评分建议
一、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
项是符合题目要求的。
题目 1 2 3 4 5 6 7
答案 D B B D B D C
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。
题目 8 9 10
答案 AB AD AC
三、实验题:本题包含2小题,共16分。
11.(8分)
(1)A(2分) (2)0(2分) ( 或 1: 均可)(2分) (3)不变(2分)
12.(8分)
(1) 5.545(5.543~5.547)(2分) (2) BC(2分)
(3)(2分)
(4)5×10-3(2分)四、计算题:本题包含3小题,共38分。解答应写出必要的文字说明、方程式和重要演算
步骤,只写出最后答案的不能得分。有数值计算的题,答案中必须明确写出数值和单位。
13.(9分)
(1) 由几何关系,光在 面的折射角 ······························(2分)
∘
············ ·· ··················· ··=··· ·· ·································(2分)
= =
。
(2) 光在材料中发生全反射的临界角为 ,由 则
=
小于 °············································································(1分)
由几何6关0系,光在 面上发生全反射,光在 面不发生全反射,光从 面
射出,光在该材料 中 传播的路程
······································································(2分)
∘
= =
光在材料中的传播速度 ····················································· (1分)
=
光在材料中的传播时间 ··············································· (1分)
14.(12分) = =
(1) 小球沿圆弧轨道下滑过程,由动能定理
·····················································(1分)
小 球 在( 最−低 点 N)处=, 轨 道 的−0支持力 向上,重力 、洛伦兹力 向下
′
由牛顿第二定律
···························································(1分)
′
− − =
································································(1分)
′
= +
由牛顿第三定律
小球对轨道的压力 ,大小与 相等,方向竖直向下··············(1分)
′ ′
(2) 小球离开轨道后 的=−初 速度
小 球=离开 轨 道( 后−受 到 水)平=向 右 的电场力 、竖直向下的重力 ,且 ,
等效合重力加速度 ,方向斜向右下,与水平方向的夹角为 。
=
′ ∘
= 小球减速过程,其速度沿等效重力方向的分速度减为0,时间为 ,则
·························································· (1分)
∘
⋅
= ′ = =
若将小球的运动沿水平方向与竖直方向分解,小球水平方向的加速度大小为 ,
由运动学公式
( ) ···························································(1分)
= + −
=
···········································································(1分)
=−
········································································(1分)
=−
小球在电场中下落的总时间为t ,小球在水平方向上的运动先加速再减速,则
2
·················································································(1分)
=
=
加速过程,重力做的功
( )·······················································(2分)
= −
·········································································(1分)
15 .(=17 分 )
(1)对 、 组成的整体,由牛顿第二定律
·······················································(2分)
拉+力 的 位−移 为 =,(则 + )
·······································(2分)
(2 =) 以⋅竖 直=向( 上−为 正) 方 向+,( 绳断+ 裂)瞬 间,P的初速度大小为
····························································· ·· ·········(1分)
P 上 升=之 后又− 继续下落,位移大小为 ,其碰撞底座前速度大小为
( (
− ) − )= − 则 方向向下,大小为
·················································(1分)
= + = ( + )
碰撞过程,由动量定理
( )·············································(2分)
− = ⋅ − −
方向竖直向上··································(1分)
= + ( + )
(3)依题意,一切电阻不计,初始位置线圈的自感电动势与P的动生电动势相等。
但阻碍而非阻止,P还是要对线圈供电,P的动能逐渐转化为线圈的磁场能。则
·············································································(1分)
=
两边同乘 ,且
则∑ =·· ···⋅· ·· ························································(1分)
电路 中⋅电 流=的∑大 小 与 P相对于出发点位置位移的大小关系为
···············································································(1分)
= ⋅
P所受安培力大小
··········································································(1分)
安
= ⋅
依题意,P从释放点到最低点,由能量守恒,其动能与重力势能的减少量
不超过P克服安培力做的功
·······················································(2分)
+ ≤ ⋅ ⋅
由 ,则
= −···0········································································(1分)
( + )
≥
则h的最小值为 ···························································(1分)
( + )
