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2022—2023 学年度第一学期期末学业水平检测
高三物理答案及评分标准
一、单项选择题:本大题共8小题,每小题3分,共24分。
1.A 2.C 3.C 4.B 5.D 6.A 7.B 8.C
二、多项选择题:本大题共4小题,每小题4分,共16分,选不全得2分,有选错得0分。
9.AD 10.AD 11.CD 12.BCD
三、非选择题(60分)
13.(6分)
(1) 2.10(2分); (2)0.48(2分);
(3) ①木板的倾角要适中;②A点与传感器距离适当大些。(2分)(给出其中一种说法即可)
14.(8分)
(1) AC(2分) ;(2)不变(1分);变长(1分)
Q
(3)图像与x轴所围图形的面积与电容器的电荷量Q数值相等,由C= 求出电容(2分)
U
(4) B(2分)
15.(8分)
(1)璃砖转过30°角时,折射光路如图,由几何关系可知入射角i=30°
10 3
又因为tanθ= = 则θ=30˚
10 3 3
折射角γ=60°·························(2分)
sini 1
由折射定律可知 = γ
sinγ n
解得n= 3 ·························· (2分)
1
(2)发生全反射时有sinC= ······(2分)
n
3
所以sinα = sinC= ··········(2分)
3
评分标准:第1问,4分;第2问,4分。共8分。
16.(9分)
(1)滑船从A点滑到C点时,由机械能守恒定律
1
可知mgH mv2············································(1分)
2 C
v2
在C点时由牛顿第二定律可得F mg m C ······(1分)
NC R
解得H=0.4R=5m·························································(1分)
高三物理试题答案 第1页(共4页)
学科网(北京)股份有限公司1
(2)划船到达D点时速度mg(H-h)= mv 2
D
2
解得v = 5g ················································(1分)
D
滑船在斜面上只受重力和斜面的支持力,
mgsin37°
则运动的加速度大小a= =0.6g····················(1分)
m
运动最高点J到水平底边ad的距离
(v sin53°)2 8
s= D = m······································· (1分)
2a 3
(3)滑船从D点开始到进入接收平台的
v sin53°
时间为t=2 D ·········································(1分)
a
则x=v cos53°t···············································(1分)
D
解得:x=8m··················································(1分)
评分标准:第1问,3分;第2问,3分;第3问,3分。共9分。
17.(13分)
(1)粒子在x0空间中做匀速圆周运动,
mv 2
由qv B= 0 ················································(1分)
0
R
mv
得R= 0······················································(2分)
qB
(2)由已知可得,粒子在x<0范围中偏转,磁场为一圆柱体,如图可得磁场垂直y方向的截面
半径 :r =Rsin30˚·········································(1分)
根据V =πr2h θ
v0
O
α x
πhm2v 2
可得:V= 0 ············································(2分) R
4q2B2 r
v0
(3)由分析知最低点的粒子x>0,y<0区域内向x轴正方向做螺旋前进,即yOz平面的圆周运
mv
动与沿x轴正向的匀速直线运动的合运动,其半径为r = 1
1
qB
1
h
由于两粒子在x轴相遇,可得:r = ················(1分)
1
4
其中速度v =v cosθ·········································(1分)
1 0
2 3mv
联立可得:B = 0·····································(1分)
1
qh
高三物理试题答案 第2页(共4页)
学科网(北京)股份有限公司(4)由分析知最高点释放粒子在y方向为匀加速运动
h 1
可得: = at2······································································(1分)
2 2
πm
由两粒子恰好在x轴第一次相遇,可知:t= ····(1分)
qB
1
qE 2 3mv
又因为a= 且B = 0·····························(1分)
1
m qh
12mv 2
联立可得:E= 0 ·······································(1分)
π2qh
评分标准:第1问,3分;第2问,3 分;第3问,3分;第4问,4分。共13分。
18.(16分)
(1)设B到达水平位置时的速度为v,根据机械能守恒定律:
1
m gL= m v2·················································(1分)
B B
2
C击中B的过程中二者动量守恒,击中后BC的速度为v :
1
m v +m v=(m +m )v ·······································(1分)
c 0 B B C 1
(m +m )v 2
由牛顿第二定律得:T -(m +m )g= B C 1 ·(1分)
m B C
L
根据牛顿第三定律得:T =90N·························(1分)
m
(2)对M受力分析得:μ(m +m )g=Ma
B C
解得:a=1m/s2········································································(1分)
由v2 =2ax
A
解得A碰P前的速度:v =2m/s························(1分)
A
由于碰撞挡板P之前A和BC总动量守恒,由(m +m )v =(m +m )v +Mv
B C 1 B C B A
解得:v =4m/s·············································· (1分)
B
可求出碰撞P之后:(m +m )v =-Mv
B C B A
因此:A与P仅碰撞一次··································(1分)
(3)由(m +m )v =-Mv 可知,碰撞一次后木板和木块最终会停下来
B C B A
1
有能量守恒可得:μ(m +m )gd= (m +m )v 2··············(1分)
B C B C 1
2
解得d=16m·················································· (1分)
高三物理试题答案 第3页(共4页)
学科网(北京)股份有限公司(4)若木板A与挡板恰好发生了8次碰撞,最后,物块B和木板A都停下来。而每次木板发
生x大小的位移所用时间t相同,则木块在第8次碰撞后:
15μ(m +m )gt=(m +m )v -(m +m )v (1分)
B C B C 1 B C B··························
木板A每次与挡板碰撞的速度均满足:
μ(m +m )gt=Mv (1分)
B C A····································································
由于恰好发生了8次碰撞:(m +m )v =Mv
B C B A
1
联立解得:v = m/s········································(1分)
A
4
1
根据v2 =2ax解得:x = m·····························(1分)
A 8
32
2
同理:恰好发生了7次碰撞联立解得:v = m/s
A
7
2
根据v2 =2ax解得解得:x = m······················ (1分)
A 7
49
1 2
因此能碰8次的条件是 m≤x< m··················(1分)
32 49
评分标准:第1问,4 分;第2问,4分;第3问,2分;第4问,6分。共16分。
高三物理试题答案 第4页(共4页)
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