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a/ \(AB\perp\left(BCD\right)\Rightarrow AB\perp CD\)
Mà \(BE\perp CD\Rightarrow CD\perp\left(ABE\right)\)
\(CD\in\left(ACD\right)\Rightarrow\left(ACD\right)\perp\left(ABE\right)\)
*/ \(AB\perp\left(BCD\right)\Rightarrow AB\perp DF\)
\(DF\perp BC\Rightarrow DF\perp\left(ABC\right)\Rightarrow DF\perp AC\)
Mà \(AC\perp DK\Rightarrow AC\perp\left(DFK\right)\Rightarrow\left(ACD\right)\perp\left(DFK\right)\)
b/ H là trực tâm ACD \(\Rightarrow CD\perp AH\)
Mà \(CD\perp AB\Rightarrow CD\perp\left(ABE\right)\)
\(\Rightarrow CD\perp OH\)
Theo câu a ta có \(AC\perp\left(DFK\right)\Rightarrow AC\perp OH\)
\(\Rightarrow OH\perp\left(ACD\right)\)
a) Ta có:
\(\left. \begin{array}{l}AB \bot \left( {BC{\rm{D}}} \right) \Rightarrow AB \bot C{\rm{D}}\\BE \bot CE\end{array} \right\} \Rightarrow C{\rm{D}} \bot \left( {ABE} \right)\)
Lại có \(C{\rm{D}} \subset \left( {A{\rm{D}}C} \right)\)
Vậy \(\left( {ADC} \right) \bot \left( {ABE} \right)\)
\(\begin{array}{l}\left. \begin{array}{l}AB \bot \left( {BC{\rm{D}}} \right) \Rightarrow AB \bot DF\\DF \bot BC\end{array} \right\} \Rightarrow DF \bot \left( {ABC} \right)\\\left. \begin{array}{l} \Rightarrow DF \bot AC\\DK \bot AC\end{array} \right\} \Rightarrow AC \bot \left( {DFK} \right)\end{array}\)
Lại có \(AC \subset \left( {A{\rm{D}}C} \right)\)
Vậy \(\left( {ADC} \right) \bot \left( {DFK} \right)\)
b) Ta có:
\(\left. \begin{array}{l}\left( {ADC} \right) \bot \left( {ABE} \right)\\\left( {ADC} \right) \bot \left( {DFK} \right)\\\left( {ABE} \right) \cap \left( {DFK} \right) = OH\end{array} \right\} \Rightarrow OH \bot \left( {ADC} \right)\)
\(\left\{{}\begin{matrix}\left(ABD\right)\perp\left(BCD\right)\\\left(ABC\right)\perp\left(BCD\right)\\\left(ABC\right)\cap\left(ABD\right)=AB\end{matrix}\right.\) \(\Rightarrow AB\perp\left(BCD\right)\)
b/ \(AB\perp\left(BCD\right)\Rightarrow AB\perp CD\)
Mà \(BE\perp CD\Rightarrow CD\perp\left(ABE\right)\)
\(CD\in\left(ACD\right)\Rightarrow\left(ACD\right)\perp\left(ABE\right)\)
*/ \(\left\{{}\begin{matrix}AB\perp\left(BCD\right)\Rightarrow AB\perp DF\\DF\perp BC\end{matrix}\right.\) \(\Rightarrow DF\perp\left(ABC\right)\Rightarrow DF\perp AC\)
Mà \(DK\perp AC\Rightarrow AC\perp\left(DFK\right)\)
\(AC\in\left(ACD\right)\Rightarrow\left(ACD\right)\perp\left(DFK\right)\)
* Vì: AB ⊥ (BCD) ⇒ AB ⊥ CD.
- Ta có:
- Lại có: