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Discuz Math Forum»Forum Mathematics High School 来自人教群的立几:PA⊥ABC,∠BPC=∠BAC 求 ∠ABC-∠PCB
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[几何] 来自人教群的立几:PA⊥ABC,∠BPC=∠BAC 求 ∠ABC-∠PCB

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kuing

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kuing posted 2024-1-3 04:27 |Read mode
山D教师tan9p 2024/1/2 18:42:32
QQ截图20240103042339.jpg
阅A爱好者🥰k 2024/1/2 19:19:37
图?
山D教师tan9p 2024/1/2 20:07:52
木有图,是某个公众号的题目
没图只好自己作,而在想好这图该怎么作时,其实就解出来了。
QQ截图20240103041756.png
如图所示,设 `\triangle PBC` 绕 `BC` 旋转至底面上为 `\triangle DBC`,则 `AD\perp BC`,记垂足为 `E`。

由条件得 `\angle BAC=\angle BPC=\angle BDC`,则 `ABCD` 四点共圆,所以
\begin{align*}
\angle ABC-\angle PCB&=\angle ABC-\angle DCB\\
&=\angle ABC-\angle BAE\\
&=\angle AEB\\
&=90\du.
\end{align*}
立体几何

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