Vector application problem? ?

3 ANSWERS

1. 
   

   Yes the can.
   
   A simple set having the desired properties would be
   
   v₁ = (1,1,0)  and v₂(-1,1,0)
   
   If you sketch the two vectors in the xy-plane, you will see that I'm right.
   
   To prove it formally that such a set of vectors exist use the the dot product. The dot product of two perpendicular vectors equals zero.
   
   Let
   
   v₁ = (x₁,y₂,z₂)  and v₂(x₂,y₂,z₂) be two vectors.
   
   They are perpendicular so:
   
   v₁∙ v₂ = 0
   
   <=>
   
   x₁∙x₂ + y₁∙y₂ + z₁∙z₂ = 0
   
   The vectors have opposite x-components
   
   x₂ = -x₁
   
   Hence:
   
   -x₁² + y₁∙y₂ + z₁∙z₂ = 0
   
   <=>
   
   y₁∙y₂ + z₁∙z₂ = x₁²
   
   There are many sets of vectors satisfying this condition. Since you have one equation for five unknowns you can choose arbitrary values for four components and then calculate the last one from the equation
   
   For the set above i choose
   
   x₁ = 1
   
   z₁ = z₂ = 0
   
   and
   
   y₁ = 1
   
   =>
   
   y₂ = (x₁² - z₁∙z₂) / y₁ = 1
   
   Many other sets exist but it's sufficient for the proof of the statemant that one exists.

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2. 
   

   Yes, these vectors can be perpendicular.  They look like an arrow /\ or\/.  a 45degree angle and a 135 degree angle have opposite x components, are perpendicular to each other, and can have the same origin.  Same goes for 225 and 315

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3. 
   

   vecA don=vec0
   
   vecBdont=vec0
   
   then vecA.vecB=0 IF and only if[ vecA perpendiclar vecB]

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