Asked by Wellness

Prove that A.(BxC) = (AxB).C
Answered by bobpursley
A × B = (Ax î + Ay ĵ + Az ˆk) × (Bx î + By ĵ + Bz ˆk)

A × B = Ax î × Bx î + Ax î × By ĵ + Ax î × Bz ˆk
+ Ay ĵ × Bx î + Ay ĵ × By ĵ + Ay ĵ × Bz ˆk
+ Az ˆk × Bx î + Az ˆk × By ĵ + Az ˆk × Bz ˆk

A × B = AxBy ˆk − AxBz ĵ
− AyBx ˆk + AyBz î
+ AzBx ĵ − AzBy î

A × B = (AyBz − AzBy) î + (AzBx − AxBz) ĵ + (AxBy − AyBx) ˆk

When you dot this with C= Cxi + Cyj + Czk the dot products ii=jj=kk=1; while the dot products ij=ik=jk=kj=0.

B × C =(ByCz − BzCy) î + (BzCx − BxCz) ĵ + (BxCy − ByCx) ˆk

When you dot this with A= Axi + Ayj + Azk the dot products ii=jj=kk=1; while the dot products ij=ik=jk=kj=0.

NOTICE WHEN THIS IS DONE :
Ax(ByCz − BzCy) +Ay(BzCx − BxCz)+ Az(BxCy − ByCx) = (AyBz − AzBy) Cx + (AzBx − AxBz)Cy +(AxBy − AyBx)Cz

AxByCz - AxBzCy + AyBzCx - AyBxCz + AzBxCy - AzByCx =
AyBzCx − AzByCx + AzBxCy − AxBzCy + AxByCz− AyBxCz

So each term on the left side has an identical term on the right side of the equal sign and the identity is proven
QED
Answered by janiah
So, whats the property of it
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