2019-2020年中考数学压轴题精选(十)与答案 数学中考试题
91.(08新疆自治区24题)(10分)某工厂要赶制一批抗震救灾用的大型活动板房.如图,板房一面的形状是由矩形和抛物线的一部分组成,矩形长为12m,抛物线拱高为5.6m. (1)在如图所示的平面直角坐标系中,求抛物线的表达式.
(2)现需在抛物线AOB的区域内安装几扇窗户,窗户的底边在AB上,每扇窗户宽1.5m,高1.6m,相邻窗户之间的间距均为0.8m,左右两边窗户的窗角所在的点到抛物线的水平距离至少为0.8m.请计算最多可安装几扇这样的窗户?
2(08新疆自治区24题解析)24.(10分)解:(1)设抛物线的表达式为y?ax 1分 点B(6,?5.6)在抛物线的图象上. ∴?5.6?36a
7 ····················································· 3分 4572∴抛物线的表达式为y??································································· 4分 x ·
45a??(2)设窗户上边所在直线交抛物线于C、D两点,D点坐标为(k,t)
已知窗户高1.6m,∴t??5.6?(?1.6)??4 ·················································· 5分
?4??72k 45k1≈5.07,k2≈?5.07(舍去) ································································· 6分
∴CD?5.07?2≈10.14(m) ··································································· 7分 又设最多可安装n扇窗户
∴1.5n?0.8(n?1)≤10.14 ········································································· 9分
n≤4.06.
答:最多可安装4扇窗户. ········································································ 10分 (本题不要求学生画出4个表示窗户的小矩形)
92.(08四川资阳24题)24.(本小题满分12分) 如图10,已知点A的坐标是(-1,0),点B的坐标是(9,0),以AB为直径作⊙O′,交y轴的负半轴于点C,连接AC、BC,过A、B、C三点作抛物线.
(1)求抛物线的解析式;
(2)点E是AC延长线上一点,∠BCE的平分线CD交⊙O′于点D,连结BD,求直线BD的解析式;
(3)在(2)的条件下,抛物线上是否存在点P,使得∠PDB=∠CBD?如果存在,请求出点P的坐标;如果不存在,请说明理由.
图10
(08四川资阳24题解答)(1) ∵以AB为直径作⊙O′,交y轴的负半轴于点C,
∴∠OCA+∠OCB=90°, 又∵∠OCB+∠OBC=90°, ∴∠OCA=∠OBC,
又∵∠AOC= ∠COB=90°, ∴ΔAOC∽ ΔCOB, ··········································································· 1分 OAOC∴. ?OCOB又∵A(–1,0),B(9,0),
1OC∴,解得OC=3(负值舍去). ?OC9∴C(0,–3), ····································································································· 3分 设抛物线解析式为y=a(x+1)(x–9),
1∴–3=a(0+1)(0–9),解得a=,
3118∴二次函数的解析式为y=(x+1)(x–9),即y=x2–x–3. ························ 4分
333(2) ∵AB为O′的直径,且A(–1,0),B(9,0), ∴OO′=4,O′(4,0), ········································································· 5分 ∵点E是AC延长线上一点,∠BCE的平分线CD交⊙O′于点D,
11∴∠BCD=∠BCE=×90°=45°,
221连结O′D交BC于点M,则∠BO′D=2∠BCD=2×45°=90°,OO′=4,O′D=AB=5.
2∴D(4,–5). ··················································································· 6分 ∴设直线BD的解析式为y=kx+b(k≠0) ?9k?b?0,∴? ·················································· 7分
4k?b??5.??k?1,解得?
b??9.?∴直线BD的解析式为y=x–9. ······························· 8分 (3) 假设在抛物线上存在点P,使得∠PDB=∠CBD, 解法一:设射线DP交⊙O′于点Q,则BQ?CD. 分两种情况(如答案图1所示):
图10答案图1 ①∵O′(4,0),D(4,–5),B(9,0),C(0,–3).
∴把点C、D绕点O′逆时针旋转90°,使点D与点B重合,则点C与点Q1重合,
因此,点Q1(7,–4)符合BQ?CD, ∵D(4,–5),Q1(7,–4),
119∴用待定系数法可求出直线DQ1解析式为y=x–. ····························· 9分
33??1199?419?41?y?x?,x?,x?,?1?2????3322解方程组?得? ?18?29?41??29?41?y?x2?x?3.?y?;y?.12???33?66??9?41?29?419?41?29?41,),[坐标为(,)不符合题意,舍去]. 2626 ····································································································· 10分 ②∵Q1(7,–4),
∴点P1坐标为(∴点Q1关于x轴对称的点的坐标为Q2(7,4)也符合BQ?CD. ∵D(4,–5),Q2(7,4).
∴用待定系数法可求出直线DQ2解析式为y=3x–17. ································ 11分
?y?3x?17,?x1?3,?x2?14,?解方程组?得? ?128y??8;y?25.y?x?x?3.?1?2?33?∴点P2坐标为(14,25),[坐标为(3,–8)不符合题意,舍去]. ····································································································· 12分
9?41?29?41∴符合条件的点P有两个:P1(,),P2(14,25).
26
解法二:分两种情况(如答案图2所示): ①当DP1∥CB时,能使∠PDB=∠CBD. ∵B(9,0),C(0,–3).
1∴用待定系数法可求出直线BC解析式为y=x–3.
31又∵DP1∥CB,∴设直线DP1的解析式为y=x+n.
319把D(4,–5)代入可求n= –,
3119∴直线DP1解析式为y=x–. ····················· 9分 图10答案图2 33??1199?419?41?y?x?,x?,x?,??12????3322解方程组?得? ?18?29?41??29?41?y?x2?x?3.?y?;y?.12???33?66??9?41?29?419?41?29?41,),[坐标为(,)不符合题意,舍去]. 2626 ····································································································· 10分
②在线段O′B上取一点N,使BN=DM时,得ΔNBD≌ΔMDB(SAS),∴∠NDB=∠CBD.
1由①知,直线BC解析式为y=x–3.
355517取x=4,得y= –,∴M(4,–),∴O′N=O′M=,∴N(,0),
3333又∵D(4,–5),
∴直线DN解析式为y=3x–17. ···························································· 11分
?y?3x?17,?x1?3,?x2?14,?解方程组?得 ??128y??8;y?25.y?x?x?3.?1?2?33?∴点P2坐标为(14,25),[坐标为(3,–8)不符合题意,舍去].
∴点P1坐标为(
2019-2020年中考数学压轴题精选(十)与答案 数学中考试题
