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乐山市高中 2025 届期末教学质量检测
物 理(答案)
一、单项选择题
1 2 3 4 5 6 7
B D A C C B A
二、多项选择题
8 9 10
BC AC BD
三、实验题
11.(1)大(1分)
(2)CD(2分,漏选得 1分,错选不得分)
(3)
cos𝜃1(2分)
cos𝜃2
(4)偏小(2分)
12.(1)2𝑡 (2分) (2)𝑇2(2分)
0
4𝜋2
(3) (2分) (4)无(2分)
𝑘
四、计算题
13.(12分)第(1)问 6分,第(2)问6分
解:(1)根据题意画出该单色光在三棱镜中的光路图···················(1分)
单色光在 AB 边恰好发生全反射,由几何关系可得,
𝐶 = 37° ······································(1分)
1
已知sin𝐶 = 可得········································(2分)
𝑛
5
𝑛 = ········································(2分)
3
(2)由几何关系可得
单色光的三棱镜中的传播距离为𝑠 = 𝐷𝐸 +𝐸𝐹 = 𝐴𝐶 = 𝑎·······(1分)
𝑐
已知𝑛 = 可得···········································(2分)
𝑣
𝑐 3𝑐
单色光的三棱镜中的传播速度为𝑣 = = ···················(1分)
𝑛 5
𝑠 5𝑎
单色光的三棱镜中的传播时间为𝑡 = = ···················(2分)
𝑣 3𝑐
14.(14分)第(1)问 6分,第(2)问8分
解:(1)由波形图可知𝜆 = 9𝑚······································(1分)
甲
𝜆 = 4𝑚······································(1分)
乙
由𝑣 = 𝜆𝑓可得,···········································(2分)
𝑓
甲 = 4 ········································(2分)
𝑓 9
乙
(2)振动方程为𝑦 = 𝐴sin(2𝜋𝑓𝑡 +𝜑 ) cm,由波形图可知·········(2 分)
0
绳波乙的振幅𝐴 = 25cm···································(1分)
𝜆
绳波乙的周期𝑇 = ······································(2 分)
𝑣
𝑇
平衡位置为 4m 位置处的质点,再过 会运动到负向最大位移处可得
4
𝑇
−25 = 25sin(2𝜋𝑓 +𝜑 ) ·····················(1分)
0
4
𝜑 = 𝜋 ······································(1分)
0
所以平衡位置为 4m 位置处的质点的振动方程为:
15𝜋
𝑦 = 25sin( 𝑡+𝜋) cm························(1分)
2
15.(16 分)第(1)问 3分,第(2)问4分,第(3)问9分
解:(1)由交流发电机产生电动势的最大值𝐸 = 𝑁𝐵𝑆𝜔可得··········(2 分)
𝑚
𝐸 = 300√2V ································(1分)
𝑚
(2)用户区的流过电动机的电流𝐼 =
𝑃4
=
8.8×103
= 40A·············(1分)
4
𝑈4 220
降压变压器处,由
𝑛3
=
𝐼4可得,····························(1
分)
𝑛4 𝐼3
𝐼 = 4A ·····································(1 分)
3
输电线路上损耗的电功率∆𝑃 = 𝐼 2𝑅 = 160W·················(1分)
3
(3)降压变压器处,由
𝑛3
=
𝑈3可得·······························(1分)
𝑛4 𝑈4
𝑈 = 2200V ··································(1分)
3
升压变压器处,由𝑈 = 𝑈 +𝐼 𝑅可得························(1分)
2 3 3
𝑈 = 2240V ··································(1分)
2
由
𝑛1
=
𝑈1可得,𝑈
= 280V·································(1分)
1
𝑛2 𝑈2
由
𝑛1
=
𝐼3可得,𝐼
= 32A···································(1分)
1
𝑛2 𝐼1
由交流发电机产生的电压有效值为𝐸 =
𝐸𝑚
= 300V············(1分)
√2
故交流发电机线圈电阻 r上损耗的热功率𝑃 = 𝐼 𝐸 −𝐼 𝑈 = 640W(1 分)
𝑟 1 1 1
功率之比为4:1··········································(1分)
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