IP Library › Granted Patent US 11,181,120
Granted Patent B2
US 11,181,120 · App. 16/198,266 · Granted Nov 23, 2021

Throat distribution for a rotor and rotor blade having camber and location of local maximum thickness distribution

Inventors: Nick Nolcheff (Chandler, AZ); Jeffrey Hayes (Apache Junction, AZ); John A. Gunaraj (Chandler, AZ); Yoseph Gebre-Giorgis (Phoenix, AZ); David Richard Hanson (Tempe, AZ); John Repp (Gilbert, AZ)
Assignee: HONEYWELL INTERNATIONAL INC.
F04D29/384F01D5/141F05D2240/30
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Quick Facts
Patent No.
US 11,181,120
App. No.
16/198,266
Granted
Nov 23, 2021
Kind
B2
Abstract

A rotor blade for a compressor of a gas turbine engine includes an airfoil extending from a root to a tip and having a leading edge and a trailing edge. The airfoil has a span that extends from 0% at the root to 100% at the tip and a mean camber line that extends from the leading edge to the trailing edge. The airfoil has a total camber distribution that increases from the root to a maximum value of total camber between 5% of the span and 20% of the span.

Claims (26)

1. A compressor of a gas turbine engine, comprising:

a hub; and

an airfoil extending from a root to a tip and having a leading edge and a trailing edge, the airfoil coupled to the hub at the root, the airfoil having a span that extends from 0% at the root to 100% at the tip and a mean camber line that extends from the leading edge to the trailing edge, and a total camber distribution that increases from the root to a maximum value of total camber between 5% of the span and 20% of the span to reduce a twist-to-flex ratio of the fundamental vibratory mode shape of the airfoil, with the maximum value of the total camber less than or equal to 48 degrees and greater than or equal to 42 degrees or less than or equal to 45 degrees and greater than or equal to 40 degrees.

2. The compressor of claim 1 , wherein the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees, and the total camber distribution decreases monotonically from the maximum value of the total camber to the tip.

3. The compressor of claim 1 , wherein the total camber distribution decreases from the maximum value of the total camber to at least 80% of the span of the airfoil.

4. The compressor of claim 3 , wherein the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees, and the total camber distribution increases between the at least 80% of the span of the airfoil to the tip.

5. The compressor of claim 1 , wherein the total camber distribution has a first value of total camber at the root, which is greater than a second value of total camber between 20% of the span and 30% of the span and the first value is less than or equal to 40 degrees and greater than or equal to 34 degrees when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees or the first value is less than or equal to 40 degrees and greater than or equal to 35 degrees when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees.

6. The compressor of claim 5 , wherein the total camber distribution has a third value of total camber at the tip, the third value is less than the first value, the second value and the maximum value of the total camber, and the third value is less than or equal to 10 degrees and is greater than or equal to 3 degrees when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees and the first value is less than or equal to 40 degrees and greater than or equal to 34 degrees.

7. The compressor of claim 5 , wherein the total camber distribution has a third value of total camber at 85% of the span, the third value is less than the first value, the second value and the maximum value of the total camber, and the third value is less than or equal to 12 degrees and is greater than or equal to 8 degrees when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees and the first value is less than or equal to 40 degrees and greater than or equal to 35 degrees.

8. The compressor of claim 7 , wherein the total camber distribution has a fourth value of total camber at the tip, the fourth value is greater than the third value and the fourth value is less than or equal to 19 degrees and greater than or equal to 14 degrees.

9. The compressor of claim 1 , wherein the maximum value of total camber is between about 7% of the span and 12% of the span.

10. The compressor of claim 1 , wherein the hub has a hub slope angle that is greater than 20 degrees.

11. A compressor of a gas turbine engine, comprising:

a hub; and

an airfoil extending from a root to a tip and having a leading edge and a trailing edge, the airfoil coupled to the hub at the root, the airfoil having a span that extends from 0% at the root to 100% at the tip and a mean camber line that extends from the leading edge to the trailing edge, and a total camber distribution of a total camber of the mean camber line, the total camber has a first value at the root, a maximum value between 5% of the span and 20% of the span to reduce a twist-to-flex ratio of the fundamental vibratory mode shape of the airfoil, the maximum value is less than or equal to 48 degrees and greater than or equal to 42 degrees or less than or equal to 45 degrees and greater than or equal to 40 degrees, the total camber has a second value at the tip, which is less than the first value and the maximum value, the first value of total camber is less than 40 degrees and greater than or equal to 34 degrees when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees or the first value is less than or equal to 40 degrees and greater than or equal to 35 degrees when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees.

12. The compressor of claim 11 , wherein the total camber distribution decreases monotonically from the maximum value of the total camber to the tip when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees.

13. The compressor of claim 11 , wherein the total camber distribution decreases from the maximum value of the total camber to at least 80% of the span of the airfoil.

14. The compressor of claim 13 , wherein the total camber distribution increases from the at least 80% of the span of the airfoil to the tip when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees.

15. The compressor of claim 11 , wherein the total camber distribution has a value of total camber between 20% of the span and 30% of the span, which is less than the first value of total camber.

16. The compressor of claim 11 , wherein the total camber distribution has a value of total camber at 80% of the span which is less than the second value at the tip when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees.

17. The compressor of claim 11 , wherein the maximum value of total camber is between about 5% of the span and 12% of the span.

18. A compressor of a gas turbine engine, comprising:

a hub; and

an airfoil extending from a root to a tip and having a leading edge and a trailing edge, the airfoil coupled to the hub at the root, the airfoil having a span that extends from 0% at the root to 100% at the tip and a mean camber line that extends from the leading edge to the trailing edge, and a total camber distribution of a total camber of the mean camber line, the total camber has a first value at the root, a maximum value between 5% of the span and 20% of the span to reduce a twist-to-flex ratio of the fundamental vibratory mode shape of the airfoil, the maximum value is less than or equal to 48 degrees and greater than or equal to 42 degrees or less than or equal to 45 degrees and greater than or equal to 40 degrees, the first value is less than 40 degrees and greater than or equal to 34 degrees when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees or the first value is less than or equal to 40 degrees and greater than or equal to 35 degrees when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees, and the total camber distribution decreases from the maximum value to at least 80% of the span of the airfoil.

19. The compressor of claim 18 , wherein the total camber distribution decreases monotonically from the maximum value of the total camber to the tip when the maximum value of the total camber is less than or equal to 45 degrees and greater than or equal to 40 degrees.

20. The compressor of claim 18 , wherein the total camber distribution increases from the at least 80% of the span of the airfoil to the tip when the maximum value of the total camber is less than or equal to 48 degrees and greater than or equal to 42 degrees.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2018
From: NOLCHEFF, NICK; HAYES, JEFFREY; GUNARAJ, JOHN A.; GEBRE-GIORGIS, YOSEPH; HANSON, DAVID RICHARD; REPP, JOHN
To: HONEYWELL INTERNATIONAL INC.
Reel/Frame 047565/0149 →
Continuity (1)
Related Publication 20200158127A1 · May 21, 2020
Cited By (1)
US 12,196,104