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楼主
发表于 2008-9-19 07:40:41 | 只看该作者 回帖奖励 |倒序浏览 |阅读模式

如果你认为 A=2B时,切割成3个三角形,然后拼成一个正方形,就算你小学几何60分吧.www.ddhw.com

 

现在www.ddhw.com

再问:www.ddhw.com

1. AB在什么关系下,该长方形可以被直线切割成3,切割线不可以平行与长方形的边,被切开的www.ddhw.com

3块面积不相等,

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沙发
发表于 2008-9-19 23:14:19 | 只看该作者

Watching Ryder cup, no time to draw.[:-K][:-K][:-K


when A*B <= (A/2)^2 + B^2, it can be done;
when A*B > (A/2)^2 + B^2, it can't be done.

 
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板凳
发表于 2008-9-20 01:37:57 | 只看该作者

equivalent


"A*B <= (A/2)^2 + B^2, it can be done" is equivalent to A <=2B

from
A*B <= (A/2)^2 + B^2
then
4A*B<= A^2 + 4B^2
0<= A^2 -4A*B+ 4B^2
0<= (A-2B)^2
gives roots
2B =>A ( take)
and
2B <=A ( omit)

(I don't believe kids in elementary school have learnt this)




www.ddhw.com

 
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地板
 楼主| 发表于 2008-9-21 21:54:45 | 只看该作者

回复:Watching Ryder cup, no time to draw.[:-K][:-K][


  

 www.ddhw.com

 

      只要找2的点就可以了.

 
www.ddhw.com

 

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5#
发表于 2008-9-22 03:06:23 | 只看该作者

Ryder cup is over


Given a retangle abcd, where ab=cd=A, and bc=da=B, the area of it is A*B. Cut it somehow and rearrange it to a square with an edge length sqroot(A*B) for the square should have the same area as that of the retangle. Here is the procedure to cut it.

Pass through the corner abc, draw a line with a length of sqroot(A*B), and join the edge cd at e. (1st cut) Then daw a line perpendicular to line be, and cross the corner dab (2nd cut) Then move them around to make a square with edge length of sqroot(A*B). www.ddhw.com

 

  本贴由[salmonfish]最后编辑于:2008-9-21 21:16:3  

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6#
发表于 2008-9-22 07:28:41 | 只看该作者

for your "a length of sqroot(A*B)"


A and B are just signs not are exact numbers 

what you can have are a scissors and a compass only.www.ddhw.com

i think that may be only a scissors or cutter we can use. www.ddhw.com

 

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7#
发表于 2008-9-22 07:33:39 | 只看该作者

Never be this kinds of Question calculated, right?


  Never be this kinds of Question calculated, right?




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8#
发表于 2008-9-22 18:51:36 | 只看该作者

[:-K] I even did not use.....(图)


I did not use anything, no scissors, no compass, no cutter, even no paper and pencils.   Use brain only!
 www.ddhw.com
Imagine a retangle with edge lengthes A and B, and A > B (there was no specific numbers in my mind, except for the two "signs", A and B). So the retangle has an area A*B. Somehow to make it into a square with the equal area, the square's edge SHOULD be sqroot(A*B) (who cares what number it would be here).
 www.ddhw.com
(For your convenience, I "print" the brain images here) Since parallel lines, to A and B, are out of the question, now IMAGINE a line passing (b) and joining the opposite long edge (A) at (e). Just LET length of this line, (be), be sqroot(A*B), for that such a line SHOULD exist, and MUST exist. This is beause 
 
for B
Hence, Line (be) = sqroot(A*B) < length of line (bd) = sqroot(A^2 + B^2)
 
Also, from A>B, we have  A*B > B^2, and hence
Line (be) = sqroot(A*B) > length of edge B
 www.ddhw.com
If such a line is existed, I'll take it (So I have the line (be) with a length sqroot(A*B)). Still no scissors,......
 
Now imagine the second line which passes the point (a) and perpendicularly join line (be) at (g).
Since the triangle (bce) is similar to the triangle (agb) (angle bce= angle agb = 90 deg, and angle bec= angle gba), we have
     line (ag)/A = B/sqroot(A*B)
that is, line (ag) =A*B/sqroot(A*B) = sqroot(A*B)
Ooooooooooops! www.ddhw.com
If line (be) = sqroot(A*B)> sqroot((A/2)^2 + B^2) (that is (ce) longer than A/2), the line (ag) will be short than sqroot(A*B). So a restrictive condition has to be posted here. That is, (A*B) has to be < or = (A/2)^2 + B^2, or A <=2B.
 
Now, imagine one can fold the retangle and tear it along line (be) first, and then along line (ag). Now you can shove the three pecies around until you gt the desired square.www.ddhw.com


Told you that I did not use scissors, compass, cutter, even paper or pencils


 

 

www.ddhw.com

 

  本贴由[salmonfish]最后编辑于:2008-9-22 11:2:13  
www.ddhw.com

 

  本贴由[salmonfish]最后编辑于:2008-9-22 13:42:16  

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9#
发表于 2008-9-22 22:24:41 | 只看该作者

回复:


For 1st question:
If you can draw a line of a given length (number) with a certain accuracy, then I can daw a square root of that number with the same accuracy. Reversely, if you can't daw a sqroot(2)= 1.41423... on a paper, you also can't draw a line of length 2.00000... with the same accuracy. 
 
For 2nd question:
As long as there EXISTS such a perpendicular line with a length of sqroot(A*B), then the asked question CAN BE DONE. Once it has been proved can be done, my job is over. 
Who is gonna do it in real life? Be my guest.
www.ddhw.com

 
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10#
发表于 2008-9-22 22:28:08 | 只看该作者

change it to a diamond retangle


 
Mentally, I can still cut it into the three pecies.
www.ddhw.com

 
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