Claims
- 1. Apparatus for producing a representation of predicted flow in an area of interest around an object comprising:
- means for defining a model of the object,
- means for defining a plurality of vorticity segments over the area of interest including vorticity segments at the surface of the object having a known velocity,
- means for defining over the area of interest a plurality of sets of boxes, each set having a predetermined relationship in size and position to the boxes in the other sets,
- means for determining the velocity for each segment based upon the vorticity of that segment, the vorticity of each segment in the same box and in neighboring boxes and the vorticity of groups of other boxes surrounding the neighboring boxes taken collectively,
- means for summing the velocities thereby to determine the velocity of each segment based upon the influence of all the vorticity segments in the area of interest, and
- means responsive to the summed segment velocities for displaying the predicted flow over the area of interest.
- 2. Apparatus as recited in claim 1 wherein the velocity of each box is determined by summing the influence of all vorticities of the vortex segments in that box about the center of that box.
- 3. Apparatus as recited in claim 2 wherein each set of boxes has a predetermined level, L, wherein L=0 designates the first set of boxes and wherein each additional set of boxes comprises 4.sup.L boxes.
- 4. Apparatus as recited in claim 3 wherein said velocity is defined on the bases of groups of other boxes for sets in which L>1.
- 5. Apparatus as recited in claim 3 wherein the relationship between the velocity and vorticity of each vorticity segment is given by: ##EQU19## wherein ".alpha..sub.n " and ".gamma." are the strengths for panel "n" of length "1.sub.n ", the object is defined by "N" panels, and ##EQU20##
- 6. Apparatus as recited in claim 5 wherein the known velocity of the vorticity elements at the object surface is 0, the initial thickness of each element is: ##EQU21## and the vorticity of the element is:
- .omega..multidot.dA=.gamma..multidot.dl
- where .omega. is the element vorticity, dA is the element area, .gamma. is the surface velocity jump on the panel and dl is the surface panel length.
- 7. Apparatus as recited in claim 6 wherein the associated velocity field is determined by ##EQU22##
- 8. Apparatus as recited in claim 7 wherein summing means provides a final expression for each velocity component according to ##EQU23## wherein "B" represents the coefficients of the far-field influence of all vorticity elements and "h" and "k" represent the local coordinates relative the center of each box in the field.
- 9. A method for producing a representation of predicted flow in an area of interest around an object comprising the steps of:
- defining a model of the object,
- defining a plurality of vorticity segments over the area of interest including vorticity segments at the surface of the object having a known velocity,
- defining over the area of interest a plurality of sets of boxes, each set having a predetermined relationship in size and position to the boxes in the other sets,
- determining the velocity for each segment based upon the vorticity of that segment, the vorticity of each segment in the same box and in neighboring boxes and the vorticity of groups of other boxes surrounding the neighboring boxes taken collectively,
- summing the velocities thereby to determine the velocity of each segment based upon the influence of all the vorticity segments in the area of interest, and
- displaying the predicted flow over the area of interest in response to the summation of the velocities.
- 10. A method as recited in claim 9 wherein the velocity of each box is determined by summing the influence of all vorticities of the vortex segments in that box about the center of that box.
- 11. A method as recited in claim 3 wherein each set of boxes has a predetermined level, L, wherein L=0 designates the first set of boxes and wherein each additional set of boxes comprises 4.sup.L boxes.
- 12. A method as recited in claim 11 wherein said velocity is defined on the bases of groups of other boxes for sets in which L>1.
- 13. A method as recited in claim 12 wherein the relationship between the velocity and vorticity of each vorticity segment is given by: ##EQU24## wherein ".alpha..sub.n " and ".gamma." are the strengths for panel "n" of length "1.sub.n ", the object is defined by "N" panels, and ##EQU25##
- 14. A method as recited in claim 13 wherein the known velocity of the vorticity elements at the object surface is 0, the initial thickness of each element is: ##EQU26## and the vorticity of the element is:
- .omega..multidot.dA=.gamma..multidot.dl
- where .omega. is the element vorticity, dA is the element area, .gamma. is the surface velocity jump on the panel and dl is the surface panel length.
- 15. A method as recited in claim 14 wherein the associated velocity field is determined by ##EQU27##
- 16. A method as recited in claim 15 wherein said summing step provides a final expression for each velocity component according to ##EQU28## wherein "B" represents the coefficients of the far-field influence of all vorticity elements and "h" and "k" represent the local coordinates relative the center of each box in the field.
STATEMENT OF GOVERNMENT INTEREST
The invention described herein may be manufactured and used by or for the Government of the United States of America for governmental purposes without the payment of any royalties thereon or therefor.
US Referenced Citations (9)