IP Library › Granted Patent US 10,202,211
Granted Patent B2
US 10,202,211 · App. 14/396,782 · Granted Feb 12, 2019

Free-falling body verification device for drag-free spacecraft

Inventors: Zebing Zhou (Wuhan, CN); Yanzheng Bai (Wuhan, CN); Shuchao Wu (Wuhan, CN); Hongyin Li (Wuhan, CN); Jun Luo (Wuhan, CN)
Assignee: HUAZHONG UNIVERSITY OF SCIENCE AND TECHNOLOGY
B64G7/00B64G1/26G05D1/0883B64G2001/245
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Quick Facts
Patent No.
US 10,202,211
App. No.
14/396,782
Granted
Feb 12, 2019
Kind
B2
Abstract

A free-falling body verification device for a drag-free spacecraft comprises a spacecraft simulation device ( 1 ), used for carrying out free-falling body motion on the ground; an inertial sensor or accelerometer ( 2 ), used for measuring the residual disturbance acceleration of the spacecraft simulation device ( 1 ); an attitude sensor ( 3 ), used for measuring attitude parameters of the spacecraft simulation device ( 1 ); a drag-free controller ( 4 ), used for processing the residual disturbance acceleration and the attitude parameters so as to obtain a feedback control signal; and a propeller ( 5 ), used for generating thrust action applied on the spacecraft simulation device ( 1 ) under the control of the feedback control signal, so as to enable the spacecraft simulation device ( 1 ) to overcome the residual disturbance of the external environment and maintain the attitude. The space operating environment is simulated by means of the free-falling body motion of the spacecraft on the ground within short time; the inertial sensor or accelerometer ( 2 ), the attitude sensor ( 3 ), the drag-free controller ( 4 ), and the propeller ( 5 ) are combined, so that the performance and function test verification for a space drag-free aerospace system is realized in the technical ground environment within short time.

Claims (8)

1. A free-falling verification device for a drag-free spacecraft, the device comprising:

a) a spacecraft simulator ( 1 ) operating to simulate free-falling motion on ground;

b) a plurality of inertial sensors/accelerometers ( 2 ) each operating to measure residual acceleration and disturbance acceleration of said spacecraft simulator ( 1 );

c) an attitude sensor ( 3 ) operating to measure attitude of said spacecraft simulator ( 1 );

d) a drag-free controller ( 4 ) operating to process said residual acceleration and said disturbance acceleration measured by said inertial sensor/accelerometer ( 2 ), and said attitude measured by said attitude sensor ( 3 ) whereby obtaining a feedback control signal; and

e) one or more thrusters ( 5 ) each operating to generate force under control of said feedback control signal, and to apply said force on said spacecraft simulator ( 1 ) whereby enabling said spacecraft simulator ( 1 ) to resist residual disturbance from external environment and to maintain an attitude thereof.

2. The device of claim 1 , wherein as a number of said inertial sensors/accelerometers ( 2 ) is greater than 1, one of said inertial sensors/accelerometers ( 2 ) is disposed at a centroid of said spacecraft simulator ( 1 ), and the others are distributed at positions of said spacecraft simulator ( 1 ) other than said centroid.

3. The device of claim 1 , wherein said attitude sensor ( 3 ) is a gyroscope.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2014
From: ZHOU, ZEBING; BAI, YANZHENG; WU, SHUCHAO; LI, HONGYIN; LUO, JUN
To: HUAZHONG UNIVERSITY OF SCIENCE AND TECHNOLOGY
Reel/Frame 034025/0683 →
Priority Claims (1)
CN 2012 1 0042617 · Feb 23, 2012 · national
Continuity (1)
Related Publication 20180134419A1 · May 17, 2018
Cited By (1)
US 12,491,744