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Why doesn't this work? I have bypassed this before but i can't remember how i did it, and I never went on to figure out why this type of inputs didn't work. About time to get to know it!

For those who cant see the pic:

RegionPlot3D[
 x^2 + 2 y^2 - 2 z^2 = 1 && -1 <= z <= 1, {x, -5, 5}, {y, -5, 
  5}, {z, -1, 1}]    
Set::write: "Tag Plus in -2.+25.+50. is Protected"

And then there is just an empty cube without my surface.

no description

share|improve this question
5  
First of all, you use Set (=) instead of Equal (==). That is the reason for the Set::write: messages. – Alexey Popkov May 21 '11 at 13:34
up vote 3 down vote accepted

If z is limited by other surfaces you could go like this:

RegionPlot3D[
 x^2 + 2 y^2 - 2 z^2 < 1 && z < x + 2 y && z^2 < .5, 
 {x, -2, 2}, {y, -2, 2}, {z, -1, 1}, 
 PlotPoints -> 50, MeshFunctions -> {Function[{x, y, z}, z]}, 
 PlotStyle -> Directive[Red, Opacity[0.8]]]  

enter image description here

Or with ContourPlot:

ContourPlot3D[
 x^2 + 2 y^2 - 2 z^2 == 1,
 {x, -2, 2}, {y, -2, 2}, {z, -1, 1}, 
 RegionFunction -> Function[{x, y, z}, z < x + 2 y && z^2 < .5], 
 PlotPoints -> 50, MeshFunctions -> {Function[{x, y, z}, z]}, 
 ContourStyle -> Directive[Red, Opacity[0.8]]]]

enter image description here

share|improve this answer
    
I couldn't remember how to do this. Thanks! – Mr.Wizard May 22 '11 at 6:40
    
This is excellent! – ErikTJ May 22 '11 at 11:36

Try this

RegionPlot3D[x^2 + 2 y^2 - 2 z^2 < 1, 
  {x, -5, 5}, {y, -5, 5}, {z, -1, 1}]

Or, if you just want the surface

ContourPlot3D[x^2 + 2 y^2 - 2 z^2 == 1, 
  {x, -5, 5}, {y, -5, 5}, {z, -1, 1}]

Note the double equals sign, rather than the single equals sign.

share|improve this answer
    
Thanks. What if z it limited by some other surface, lets say a plane. How do i go about this then? (Using the CountourPlot3D funciton) – ErikTJ May 21 '11 at 15:28

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