2008年广州中考数学试题第24题的(2)问,不要只给答案,方便的解释一下!
推荐回答(4个)
第一问分析:求证四边形OGCH是平行四边形,
就是要证明它 对边平行
或证明它 对边相等
或证明它有一组 对边平行且相等
或证明它对角线互相平分
就本题而言,前三种方案均需要通过 全等 来证明,较麻烦。
第四种方案“证明它对角线互相平分” 较为简洁。解释如下:
先由CD⊥OA、CE⊥OB、圆心角∠AOB=90° 您可知,
四边形OECD 当中 有三个角是直角,故 四边形OECD是矩形。
而矩形作为一种特殊的平行四边形,它当然具有平行四边形“对角线互相平分”的性质。
∴ 连OC, 设OC与DE交于M,则有:MO=MC 且 ME=MD
∵HE=GD
∴ME--HE = MD--GD
即:MH = MG 结合 MO=MC 知四边形OGCH对角线互相平分,故它是平行四边形。
以下重点解释第二问!
第二问的结论是:DG长度不变。
理由是:矩形OECD的对角线相等,ED = 半径OC = 3,
∴DG = (1/3)×ED = 1, DG长度不变。
① CD为什么长度改变?
因为 随着点C在弧AB移动,点C到OA的距离CD 是不断变化的。
② CG为什么长度改变? (这一问是本题的重点所在)
设 CD = x ,则 CE = √(9--x2) ( 即 CE =(9--x2) 的算术平方根 )
过C 作 CN ⊥ ED 于 N,
由 S△ECD = (1/2)× CD× CE = (1/2)× ED× CN 得:
CD× CE = ED× CN
∴ CN = (CD× CE)/ ED
= [ x √(9--x2)] / 3
∴ CN2 = [ x2 (9--x2)] / 9
∴ DN2 = CD2 -- CN2
= x2 -- [ x2 (9--x2)] / 9
= 9 分之x的四次方
∴ DN = x2/3
∴ GN = DN -- DG
= x2/3 -- 1
∴ CG2 = GN2 + CN2
= (x2/3 -- 1)2 + [ x2 (9--x2)] / 9
= (3x2 + 9)/ 9
以上是CG与x的关系式,由于x是变量,故CG长度改变。
注:现在网页上 有关本题的答案当中,
均出现 “ 由 DE × CG = CD × EC 得 CG = [ x √(9--x2)] / 3 “ 的解释,实在令人费解。同学们由此误以为 CG ⊥ DE 。
希望通过我的解答,提问者能彻底掌握该题。
参考答案(比较简短) :DG不变,在矩形ODCE中,DE=OC=3,所以DG=1.
解说(纯属自己组织,希望看得明白~):首先说一下为什么CD、CG长度会改变, 因为当C点在弧BC上移动时,C点到线段AO的距离一定会改变,所以CD会改变;而同样的,当C点移动时,虽然线段ED会相应的移动,但是C点到线段CG的距离不一定不变。
而ED的线段长一定是一个定值,所以DG(是ED的三分之一)也一定不会改变。在第一小问中,已求出四边形OGCH是一个平行四边形,我们可以得知,OC=DE(对角线长相等),而扇形AOB是以AO为半径的,所以从圆心O到弧AB上任意一条线段都等于半径OA(题目给出等于3),那么我们可以得知OC就等于3,又知DE=OC=3,我们就可求出DG=3/1DE=1.
希望LZ采纳~~
内有详细解释
http://wenku.baidu.com/view/31ad1e8583d049649b6658b8.html
http://wenku.baidu.com/view/31ad1e8583d049649b6658b8.html
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