高一物理参考答案第PAGE
潮阳区2022-2023学年度第一学期高一级教学质量监测试卷
物理
一、单项选择题:本题共7小题每小题4分,共28分。
二、多项选择题:本题共4小题,每小题5分,共20分。全部选对得5分,选对但不全的得3分,有选错的得0分。
题号
1
2
3
4
5
6
7
8
9
10
11
答案
C
B
C
B
D
D
C
ABD
BC
CD
AC
三、实验:本大题共2小题,共16分。
12.(6分,每空2分)
(1)10;
(2)1000;
(3)F=1000(L-0.1)
13.(10分)
(1)重物会落在桌面上(或“纸带打点过短”等类似的答案);应先接通电火花计时器电源,再释放纸带。(4分)
(2)b(2分);
(3)左(2分);9.75(2分)
四、计算题(本题共3小题,共36分)
14(8分).(1)冰车和小孩受力如图所示
竖直方向的合力为零,则有FN+Fsinθ=mg··············································(2分)
解得支持力FN=188N·······················································································(1分)
(2)在水平方向,根据牛顿第二定律得Fcosθ-Ff=ma·····························(2分)
滑动摩擦力Ff=μF压由牛顿第三定律得FN=F压·········································(2
解得加速度a=0.33m/s2·············································································(1分)
15.(12分)解:据题意小轿车初速度v0=30m/s,加速度a=—0.5m/s2;驾驶员的视距d=60m,反应时间
(1)从刹车到停止时间为t2,则:··········································(3分)
(2)反应时间内做匀速运动,则:··················································(2分)
从刹车到停止汽车做匀减速运动直到速度为0,则:········(3分)
小轿车从发现物体到停止的全部距离为:····················(2分)
三角警示牌距车的最小距离为:······································(2分)
16.(16分)解:(1)(6分)对小物块和小车分别使用牛顿第二定律得:
μmg=mam··················································(2分)
F-μmg=MaM····················································(2分)
代入数据解得:am=2m/s2·················································(1分)
aM=0.5m/s2··················································(1分)
(2)(4分)对小物块和小车分别使用运动学公式得:v共=amt1,v共=v0+aMt1·····
解得:t1=1s··········································································(2分)
(3)(6分)当两者达到相同的速度后,假设两者保持相对静止,以共同的加速度a做匀加速运动对小物块和小车整体,由牛顿第二定律有:F=(M+m)a解得:a=0.8m/s2
此时小物块和小车之间的静摩擦力f=ma=1.6N
而小物块和小车之间的最大静摩擦力fm=μmg=4N
ffm,所以两者达到相同的速度后保持相对静止。························(2分)
在开始的t1=1s内,小物块的位移sm=eq\f(1,2)amteq\o\al(2,1)=1m末速度v=amt1=2m/s·····(2分)
在接下来的t-t1=0.5s内,小物块与小车相对静止,以共同的加速度a=0.8m/s2做匀加速运动,这0.5s内小物块通过的位移s=v(t-t1)+eq\f(1,2)a(t-t1)eq\o\al(2,)代入数据解得:s=1.