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广安市高2022 级高三第二次诊断性考试
物理参考答案
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,只有一项是符合题目要求的。
1.B 2.D 3.C 4.A 5.D 6.D 7.C
二、多项选择题:本题共 3小题,每小题6分,共 18分。在每小题给出的四个选项
中,有多项符合题目要求。全部选对的得满分,选对但不全的得 3 分,有选错
的得0分。
8.BD 9.AC 10.AD
第Ⅱ卷 非选择题
三、实验题:本题共2 小题,11题6分,12题 10分,共16分。
11.(6分,每空 2分)
H 𝑑 2𝑔𝐻𝑆
① ; ② ; ③
L 𝑡2 √𝐻2+𝐿2
12.(10分)(每空2分)
(1)11.016(11.014—11.018均给满分)
(2)𝜋𝑑2𝑅𝑥(3)①R
③22300 ④大于
1
4𝐿
四、计算题:本题共3 小题,13题10分,14题 12分,15题16分,共 38分。解答
时应写出必要的文字说明、公式、方程式和重要的演算步骤,只写出结果的不
得分,有数值计算的题,答案中必须写出明确的数值和单位。
13. (10分)答案(1)T =
𝜌0TOv
(2)M=
s𝑃0 (𝑚−𝜌0𝑣)
1
𝑚 𝜌0Vg
【解析】
(1)乒乓球刚好能浮起,说明浮力等于重力,即 ρ gV=mg······························1分
1
𝑚
解得 ρ = ··········································································1 分
1
𝑉
𝑚
气体发生等压变化时有 𝑉0 = 𝑉1, 𝜌 = 气 ··················································1分
𝑇0 𝑇1 气 𝑉
气
可得:ρ T =ρ T ······································································1分
0 0 1 1
解得T =
𝑉𝜌0𝑇0
·······································································1分
1
𝑚
(2)乒乓球刚好也能浮起,说明浮力等于重力,即ρ gV=mg ··························1分
1
𝑚
气体发生等温变化时p V =(p )V 𝜌 = 气 ·····································1分
0 0 0+Mg 1; 气 𝑉
气
高三物理试卷第1页(共页)
{#{QQABLYyUogCAABAAAAgCAwGQCkMQkACACQoOAFAYoAIAwRFABAA=}#}可得
𝑝0
=
𝑃0+𝑀𝑔
······································1分
𝜌0 𝜌1
解得 M=
𝑠𝑃0 (𝑚−𝑉𝜌0 )
···························································2分
𝑔𝑉𝜌0
14.(12分)答案:2m/s;1m/s;1.6m/s,1.3m/s
解析:
(1)设第一次碰后 AB两滑块的速度分别为𝑣 和𝑣 ,碰前A速度为𝑣
𝐴 𝐵 0
对B由动能定理可得:
−𝑚 gH−μ𝑚 gcos𝜃 𝐻 = 0− 1 𝑚 𝑣 2 ·······································2分
𝐵 𝐵 sin𝜃 2 𝐵 𝐵
解得𝑣 = 2𝑚/𝑠 ······················································1分
𝐵
碰撞过程,由动量守恒:
𝑚 𝑣 = 𝑚 𝑣 +𝑚 𝑣 ··················································· 2分
𝐴 0 𝐴 𝐴 𝐵 𝐵
解得 𝑣 = −1𝑚/𝑠····················································· 1分
𝐴
′ ′
𝑣 −𝑣
(2)①由恢复系数公式e = 2 1 ··················································1 分
𝑣 −𝑣
1 2
代入第一次碰撞数据解得:e = 0.6·············································1分
②再次到达水平面时速度为𝑣 ,从H处再次滑下时,由动能定理可得
𝐵1
𝑚 gH−μ𝑚 gcos𝜃 𝐻 = 1 𝑚 𝑣2 −0 ·····································1分
𝐵 𝐵 𝐵 𝐵1
sin𝜃 2
再次碰撞时:设向左为正方向,碰后AB速度分别为𝑣 、𝑣
𝐴2 𝐵2
由动量守恒和恢复系数公式可得:
𝑚 𝑣 +𝑚 𝑣 = 𝑚 𝑣 +𝑚 𝑣 ·····································1分
𝐵 𝐵1 𝐴 𝐴 𝐵 𝐵2 𝐴 𝐴2
𝑣𝐴2−𝑣𝐵2
= 0.6······················································1分
𝑣𝐵1−𝑣𝐴
可得:𝑣 = 1.6𝑚/𝑠、𝑣 = 1.3𝑚/𝑠············································1 分
𝐴2 𝐵2
(其它合理解法参照给分)
高三物理试卷第2页(共页)
{#{QQABLYyUogCAABAAAAgCAwGQCkMQkACACQoOAFAYoAIAwRFABAA=}#}15.(16分)(1) E=5.0×103𝑉/𝑚 B=0.1T(2)𝑣 =2×105𝑚/𝑠
𝑚𝑎𝑥
(3)𝑥 =[8+(4𝑛+2)𝜋]×10−2𝑚 ( 𝑛 =0,1,2,3⋯⋯)
1
和𝑥 =(4+4𝑛𝜋)×10−2𝑚 ( 𝑛 =1,2,3⋯⋯)
2
解:(1)(6分)如图,粒子在I区域从A到B做类平抛运动,设粒子运动的时间为t
1
O
1
𝑣
𝑦 𝑣
r 𝑐
𝑣
𝑥
L=𝑣 𝑡
0 1
1 𝐿 = 1 𝑎 𝑡2
2 2 1 1
qE=m𝑎
1
解得E=5.0×103𝑉/𝑚 ······································3分
粒子运动到B点的速度为 𝑣 =√𝑣2+(𝑎𝑡 )2
𝐵 0 1
解得𝑣 =√2×105𝑚/𝑠
𝐵
如图方向与x轴正方向成450
如图,粒子在Ⅱ区域从B到C做匀速圆周运动
𝑚𝑣2
q𝑣 𝐵 = 𝐵
𝐵
𝑟
√2𝐿
r=
2
解得B=0.1T ······································3分
(2)(4分)如图,粒子在Ⅱ区域逆时针转过900运动到C点
𝑣 =√2×105𝑚/𝑠
𝐶
方向与x轴成450
速度分解如图
𝑣 =1×105𝑚/𝑠
𝑥
𝑣 =1×105𝑚/𝑠
𝑦
𝐵
因q𝑣 =𝑞𝐸
𝑥
2
𝐵 𝑚𝑣2
𝑦
q𝑣 =
𝑦2 𝑅
2𝜋𝑚
T=
𝐵
𝑞
2
高三物理试卷第3页(共页)
{#{QQABLYyUogCAABAAAAgCAwGQCkMQkACACQoOAFAYoAIAwRFABAA=}#}解得R=L=0.02m,T=4π×10−7𝑠
则粒子的运动可分解成在x轴正方向以𝑣 做匀速直线运动和在xoy平面做半径为R、顺时针方向
𝑥
的匀速圆周运动,则两个分运动的速度大小不变,均为v=1×105𝑚/𝑠
𝑇
粒子从C点开始经t= +𝑛𝑇,两个分运动速度方向都为x轴正方向,
4
即最大速度为𝑣 =2𝑣
𝑚𝑎𝑥
𝑣 =2×105𝑚/𝑠 ······································4分
𝑚𝑎𝑥
(3)(6分)如图,由粒子在Ⅲ区域的运动由在x轴正方向以𝑣 做匀速直线运动和xoy平面做半径
𝑥
为R的匀速圆周运动合成,运动轨迹如图:
1
当匀速圆周运动t=nT+ 𝑇时,粒子恰好运动到x轴
2
1
𝑥 =2L+2R+𝑣 (𝑛𝑇+ 𝑇)
1 𝑥
2
解得𝑥 =[8+(4𝑛+2)𝜋]×10−2𝑚 ( 𝑛 =0,1,2,3⋯⋯)···························3分
1
当匀速圆周运动t=nT时,粒子也恰好运动到x轴
𝑥 =2L+𝑣 𝑛𝑇
2 𝑥
解得𝑥 =(4+4𝑛𝜋)×10−2𝑚 ( 𝑛 =1,2,3⋯⋯) ··································3分
2
(单位用cm,表达式正确也得分)
其它解法正确合理同样给分
高三物理试卷第4页(共页)
{#{QQABLYyUogCAABAAAAgCAwGQCkMQkACACQoOAFAYoAIAwRFABAA=}#}
