IP Library Granted Patent US 7,082,388
Granted Patent B2
US 7,082,388 · App. 10/000,023 · Granted Jul 25, 2006

Flutter test model

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,082,388
App. No.
10/000,023
Granted
Jul 25, 2006
Kind
B2
Abstract

A flutter test model is provided that utilizes a novel approach for fixing wing elements to an elastic spar, resulting in reduced airflow disturbance. A test wing has an elastic spar that simulates the elasticity of a wing of an actual airplane, and a plurality of wing elements that simulate the external shape of the wing of the actual airplane. A pair of fore and aft anchor members are fixed to the elastic spar by bolts, the wing element that is formed by stereolithography is fitted around the anchor members from the wing tip side, and the wing element is fastened to the anchor members by bolts that run through the wing element from the wing tip side. A weight, which is a tungsten rod, is housed in a weight support hole formed in the wing element. The anchor members and the bolts are not exposed on the surface of the wing element and the airflow over the surface of the test wing is not disturbed when a flutter test is carried out in a wind tunnel, thereby enhancing the accuracy of the flutter test.

Claims (26)

1. A flutter test model, comprising:

an elastic spar that simulates an elasticity of an actual wing;

a plurality of wing elements that simulate an external shape of the actual wing, the plurality of wing elements being fixed along the elastic spar so as to form a test wing; and

connecting means for connecting the wing elements to the elastic spar, the connecting means being disposed within the wing elements, wherein the connecting means are interior to an exterior surface of the test wing.

2. The flutter test model according to claim 1 , wherein the connecting means comprises:

an anchor member that is fixed to the elastic spar; and

a bolt that fixes a wing element of the plurality of wing elements to the anchor member, the wing element being fitted around the elastic spar and the anchor member from a wing tip side, and the bolt passing through the wing element from the wing tip side and being fastened to the anchor member.

3. The flutter test model according to claim 2 , wherein one of the wing element and the anchor member includes a weight disposed within a weight support hole.

4. The flutter test model according to claim 1 , wherein said wing element is formed by stereolithography.

5. A flutter test model comprising:

an elastic spar that simulates an elasticity of an actual wing;

a plurality of wing elements that simulate an external shape of the actual wing, wherein the plurality of the wing elements are fixed along the elastic spar so as to form a test wing;

a plurality of anchor members that are fixed to the elastic spar; and

a plurality of engaging members that fix each of the plurality of wing elements to each of the plurality of anchor members, wherein each of the plurality of wing elements are fitted around the elastic spar, and each of the plurality of engaging members are engaged with each of the plurality of anchor members via a passage in each of the plurality of wing members, the passage passing through each of the plurality of wing members from a wing tip side and is disposed within an interior of an exterior surface of the actual wing.

6. The flutter test model according to claim 5 , wherein the engagement members comprise bolts.

7. The flutter test model according to claim 5 , wherein one of the wing elements and the anchor members includes a weight disposed within a weight support hole.

8. The flutter test model according to claim 5 , wherein said wing element is formed by stereolithography.

9. A flutter test model comprising:

an elastic spar that simulates an elasticity of an actual wing and extends in a span direction;

a plurality of wing elements that simulate an external shape of the actual wing, the plurality of wing elements being fixed along the elastic spar so as to surround the elastic spar and form a test wing; and

connecting means for connecting the wing elements to the elastic spar, the connecting means being entirely disposed within the wing elements so as to be interior to an exterior surface of the test wing.

10. The flutter test model according to claim 9 , wherein the connecting means comprises:

an anchor member that is fixed to the elastic spar; and

a bolt that fixes a wing element of the plurality of wing elements to the anchor member, the wing element being fitted around the elastic spar and the anchor member from a wing tip side, and the bolt passing through the wing element from the wing tip side and being fastened to the anchor member.

11. The flutter test model according to claim 10 , wherein one of the wing element and the anchor member includes a weight disposed within a weight support hole.

12. The flutter test model according to claim 9 , wherein said wing element is formed by stereolithography.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2022
From: HONDA PATENTS & TECHNOLOGIES NORTH AMERICA, LLC
To: AMERICAN HONDA MOTOR CO., INC.
Reel/Frame 061497/0609 →
CORRECTED ASSIGNMENT TO CORRECT ASSIGNEE'S NAME RECORDED AT REEL 027456 FRAME 0988. Recorded Jan 17, 2013
From: HONDA GIKEN KOGYO KABUSHIKI KAISHA
To: HONDA PATENTS & TECHNOLOGIES NORTH AMERICA, LLC
Reel/Frame 029744/0401 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 29, 2011
From: HONDA GIKEN KOGYO KABUSHIKI KAISHA
To: HONDA PATENTS & TECHNOLOGIES NORTH AMERICA, LLC
Reel/Frame 027456/0988 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2002
From: OMOTANI, HIDEO
To: HONDA GIKEN KOGYO KABUSHIKI KAISHA
Reel/Frame 012564/0297 →