Claims
- 1. A method for determining a first optimum camber line and thickness distribution in a first blade used in a first impeller and a second optimum camber line and thickness distribution in a second blade used in a second impeller, comprising the steps of:
determining a series of performance parameters and design constraints for a counter rotating fan comprised of said first impeller and said second impeller; determining a chord length, a camber angle, and a stagger angle for said first blade and a chord length, a camber angle, and a stagger angle for said second blade, utilizing Bezier curves to determine the optimum camber line and thickness distributions in said first blade and in said second blade.
- 2. The method of claim 1 wherein:
one of the design constraints is that said first blade is identical to said second blade except that in said counter rotating fan said second blade is oppositely pitched to said first blade.
- 3. A method for determining optimum camber line and thickness distributions in a first blade used in a first impeller and in a second blade used in a second impeller where said first blade and said second blade each have a root portion, a tip portion, a leading edge and a trailing edge, comprising the steps of:
determining a series of fan performance parameters and design constraints for a counter rotating fan comprised of said first impeller and said second impeller; utilizing Bezier curves to determine the appropriate camber line and thickness distributions according to the equation 3F(u)=∑k=Ok=nfkBkn(u)wherein: F(u) represents the solution of the Bezier curve; u is a parameter that varies linearly between 0 and 1, (u=0 at the leading edge and u=1 at the trailing edge); fk is a one-dimensional array of Bezier control points; Bkn(u) is the Bernstein polynomial of degree n; Bkn(u)=(kn)uk(1−u)n−k; n+1 is the number of Bezier control points; and (kn) are the binomial coefficients as defined in CRC Standard Mathematical Tables, 22nd Ed., 1974, p. 627; selecting initial values of the Bezier control points; separately applying F(u) to determine the camber line x and y coordinates as well as the thickness distributions; conducting an inviscid flow analysis to determine a surface velocity distribution and a work distribution for each of the resultant camberline and thickness distributions; altering the Bezier control points, acquiring different camber and thickness distributions, and repeating the process until a favorable solution is achieved.
- 4. The method disclosed in claim 3 wherein:
the fan performance parameters include a volumetric flow rate, a shaft speed and inlet air density.
- 5. The method disclosed in claim 3 wherein:
the design constraints include fan size, fan weight, motor input power, and acoustic noise signature.
- 6. The method disclosed in claim 3 wherein:
the fan performance parameters include a volumetric flow rate, a shaft speed and inlet air density; and the design constraints include fan size, fan weight, motor input power, and acoustic noise signature.
- 7. The method disclosed in claim wherein:
n is chosen to be 18 so that the resultant Bezier equations are an 18th degree polynomial.
- 8. The method disclosed in claim wherein:
the surface velocity distribution does not promote boundary layer separation.
- 9. The method disclosed in claim 3 wherein:
the work distributions locate the maximum work distribution at a point between the root portion and the tip portion.
Parent Case Info
[0001] This application is a continuation of co-pending U.S. application Ser. No. 09/911,281 filed on Jul. 23, 2001, which was a continuation-in-part of U.S. application Ser. No. 09/624,583 filed on Jul. 24, 2000, which was a continuation of U.S. application Ser. No. 09/118,843 filed on Jul. 20, 1998.
Continuations (2)
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10393868 |
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09118843 |
Jul 1998 |
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09624583 |
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Continuation in Parts (1)
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