/*=========================================================================

  Program:   Visualization Toolkit
  Module:    $RCSfile: vtkPointLoad.h,v $
  Language:  C++
  Date:      $Date: 2001/10/11 13:37:56 $
  Version:   $Revision: 1.33 $


Copyright (c) 1993-2001 Ken Martin, Will Schroeder, Bill Lorensen 
All rights reserved.

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   this list of conditions and the following disclaimer.

 * Redistributions in binary form must reproduce the above copyright notice,
   this list of conditions and the following disclaimer in the documentation
   and/or other materials provided with the distribution.

 * Neither name of Ken Martin, Will Schroeder, or Bill Lorensen nor the names
   of any contributors may be used to endorse or promote products derived
   from this software without specific prior written permission.

 * Modified source versions must be plainly marked as such, and must not be
   misrepresented as being the original software.

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AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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=========================================================================*/
// .NAME vtkPointLoad - compute stress tensors given point load on semi-infinite domain
// .SECTION Description
// vtkPointLoad is a source object that computes stress tensors on a volume. 
// The tensors are computed from the application of a point load on a 
// semi-infinite domain. (The analytical results are adapted from Saada - see 
// text.) It also is possible to compute effective stress scalars if desired.
// This object serves as a specialized data generator for some of the examples
// in the text.

// .SECTION See Also
// vtkTensorGlyph, vtkHyperStreamline

#ifndef __vtkPointLoad_h
#define __vtkPointLoad_h

#include "vtkStructuredPointsSource.h"

class VTK_IMAGING_EXPORT vtkPointLoad :  public vtkStructuredPointsSource
{
public:
  vtkTypeMacro(vtkPointLoad,vtkStructuredPointsSource);
  void PrintSelf(ostream& os, vtkIndent indent);

  // Description:
  // Construct with ModelBounds=(-1,1,-1,1,-1,1), SampleDimensions=(50,50,50),
  // and LoadValue = 1.
  static vtkPointLoad *New();

  // Description:
  // Set/Get value of applied load.
  vtkSetMacro(LoadValue,float);
  vtkGetMacro(LoadValue,float);

  // Description:
  // Specify the dimensions of the volume. A stress tensor will be computed for
  // each point in the volume.
  void SetSampleDimensions(int i, int j, int k);

  // Description:
  // Specify the dimensions of the volume. A stress tensor will be computed for
  // each point in the volume.
  void SetSampleDimensions(int dim[3]);
  vtkGetVectorMacro(SampleDimensions,int,3);

  // Description:
  // Specify the region in space over which the tensors are computed. The point
  // load is assumed to be applied at top center of the volume.
  vtkSetVector6Macro(ModelBounds,float);
  vtkGetVectorMacro(ModelBounds,float,6);

  // Description:
  // Set/Get Poisson's ratio.
  vtkSetMacro(PoissonsRatio,float);
  vtkGetMacro(PoissonsRatio,float);

  // Description:
  // Turn on/off computation of effective stress scalar.
  vtkSetMacro(ComputeEffectiveStress,int);
  vtkGetMacro(ComputeEffectiveStress,int);
  vtkBooleanMacro(ComputeEffectiveStress,int);

protected:
  vtkPointLoad();
  ~vtkPointLoad() {};

  void Execute();

  float LoadValue;
  float PoissonsRatio;
  int SampleDimensions[3];
  float ModelBounds[6];
  int ComputeEffectiveStress;

private:
  vtkPointLoad(const vtkPointLoad&);  // Not implemented.
  void operator=(const vtkPointLoad&);  // Not implemented.
};

#endif


