m.s. thesis defense for christopher a. haller electrical engineering and computer science

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Calibration, Characterization, and Linear Quadratic Gaussian Estimation of Sensor Feedback Signals for a Novel Ocean Wave Energy Linear Test Bed M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science Major Advisor: Dr. Ted Brekken Oregon State University. 2010 June10 th 1

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Calibration, Characterization, and Linear Quadratic Gaussian Estimation of Sensor Feedback Signals for a Novel Ocean Wave Energy Linear Test Bed. M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science Major Advisor: Dr. Ted Brekken Oregon State University. - PowerPoint PPT Presentation

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Page 1: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Calibration, Characterization, and Linear Quadratic Gaussian Estimation

of Sensor Feedback Signals for a Novel Ocean Wave Energy Linear Test Bed

M.S. Thesis Defense for Christopher A. Haller

Electrical Engineering and Computer Science

Major Advisor: Dr. Ted Brekken

Oregon State University.

2010 June10th

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Page 2: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

C.C.L.Q.G.E.S.F.S.N.O.W.E.L.T.B. - Agenda

I.Background

II.Load Cell Calibration

III.Kalman Filtration

[7]

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Page 3: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

I.Background

II.Load Cell Calibration

III.Kalman Filtration

[7]

[8]

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Page 4: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Wallace Energy Systems and Renewables Facility (WESRF)

4[13]

Page 5: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Ocean Testing

[1]

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Page 6: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Renewable Energy from the Ocean

[1]

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Page 7: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

OSU Wave Energy Linear Test BedTests ocean wave energy generators by creating relative linear motion between the center spar and surrounding float.

Specifications[1]:

10kW with a 50% efficient device, and up to 19kW @ 95% efficiency

1m/sec @ 20,000 N Thrust (4500 lbf)

2m/sec @ 10,000 N Thrust (2250 lbf)

Modes: Point-Point (fixed or captured

position//wave profile vs. time) & Force (load cell feedback)

2m relative motion/stroke (6.5 feet)

Upper & Lower Gimbal mounting

(for alignment variation)

16.5ft tall x 10.5ft wide x 8.5ft deep7

[7]

Page 8: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force Control Scheme

Linear Test Bed (LTB)

External Control Computer

•Analog position command signal sent to Linear Test Bed.

•Analog feedback signals may be used to control force applied by LTB.

[9],[10],[11]

Position Command

Acceleration Feedback

Velocity FeedbackPosition Feedback

Force Feedback

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Page 9: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Problem: Feedback Signals with Noise

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Page 10: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Research Focus

10

To Advance the LTB Toward Closed-Loop Force Control

Construct L.Q.G. Estimator (Kalman Filter) to solve feedback noise issues

Develop LTB Calibration Procedure and Assess Force Sensor Accuracy (Load Cells)

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Page 11: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

I.Background

II.Load Cell Calibration

III.Kalman Filtration

[7]

[8]

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Page 12: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

LTB Load Cell Calibration

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Page 13: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Tension & Compression Measurement

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Page 14: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Load Cell Accuracy

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Page 15: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Right Load Cell Error for Points 4, 5, 6, and 7

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Page 16: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Least Squares Best Fit Lines

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R2 = 0.9999 R2 = 0.9999

Left Load Cell Right Load Cell

Page 17: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Load Cell Conclusion // Future Work

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Page 18: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

I.Background

II.Load Cell Calibration

III.Kalman Filtration

[7]

[8]

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Page 19: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Problem: Feedback Signals with Noise

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Page 20: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

The Discrete Kalman Estimator

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[5],[6][16]

from LTB Transfer Functions A, B, C Find:

LTB Noise Analysis R and Q

Page 21: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

21

[5],[6][16]

Increment Time

Start

The Discrete Kalman Estimator

Prediction

Prior State Estimate

Prior Error Covariance

Correction

State Estimate

Error Covariance

Observer Gain

Page 22: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

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A, B, C from LTB Transfer FunctionsFind:

Step #1 for Construction of Kalman Estimator for LTB

Page 23: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Transfer Function Signal Path

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Page 24: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Transfer Function (HP) Bode Plot

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Page 25: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Bode Plot

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Page 26: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Bode Plot (ident 4th order)

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Page 27: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Velocity and Acceleration Transfer Functions

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Page 28: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force Transfer Function Signal Path

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Page 29: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force Step Response

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Page 30: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

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R from LTB Noise AnalysisFind:

Step #2 for Construction of Kalman Estimator for LTB

Page 31: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

System Noise Analysis

Page 32: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

System Noise Analysis

Covariance[4]:

Page 33: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

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Step #3 Construct Kalman Estimator

Page 34: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Kalman Filter Matrices

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Page 35: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Results

35Simulated Wave Data File [14]

Page 36: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Position Results – Close Up

36Simulated Wave Data File [14]

Page 37: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Velocity Results – Close Up

37Simulated Wave Data File [14]

Page 38: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force and Acceleration

38Simulated Wave Data File [14]

Page 39: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Improvement Analysis

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Page 40: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Improvement Analysis Data

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Page 41: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Kalman Improvement Results

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Page 42: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Conclusion // Future Work

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Page 43: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

References[1] “Wave Energy Opportunities and Developments,” [Online]. Available:

http://eecs.oregonstate.edu/wesrf/projects/images/Wave%20Energy_Final.ppt. [Accessed: April 19, 2010].

[2] M. H. Patel and J. A. Witz, Compliant Offshore Structures. London: Butterworth-Heinemann Ltd., 1991.

[3] M. S. Grewal and A. P. Andrews, Kalman Filtering: Theory and Practice. United States: Prentice-Hall, Inc., 1993.

[4] D. C. Montgomery and G. C. Runger, Applied Statistics and Probability for Engineers. United States: John Wiley & Sons, Inc., 1999.

[5] Stefani, Savant, Shahian, and Hostetter, Design of Feedback Control Systems. United States: Saunders College Publishing, 1994.

[6] “Kalman” [Online]. Available: http://www.mathworks.com/access/helpdesk/help/toolbox/control/ref/kalman.html. [Accessed: April 20, 2010].

[7] “Linear Test Bed Pictures” [Image] provided by Ean Amon. May 2010.

[8] Interface-Force Inc. Load Cell [Online Image]. Available: http://www.interfaceforce.com/includes/thumb.php?resize=275&img=images%2Floadcells%2FLOW_PROFa_000.jpg. [Accessed: April 20, 2010].

[9] Dell Monitor[Online Image]. Available: http://www.theinquirer.net/img/1177/dell_monitor.jpg. [Accessed: April 23, 2010].

[10] Industrial Computer [Online Image]. Available: http://img.diytrade.com/cdimg/960066/9655368/0/1247037540/Rack_Mount_Chassis_industrial_Computer_Case_4u450AT.jpg. [Accessed: April 23, 2010].

[11] Ocean Wave [Online Image]. Available: http://megroberts.files.wordpress.com/2008/12/ocean-wave-jj-001.jpg. [Accessed: April 23, 2010].

[12] Strain Gauge States [Online Image]. Available: http://http://en.wikipedia.org/wiki/Strain_gauge. [Accessed: June 3, 2010].

[13] WESRF Lab [Image]. WESRF Share Drive [Accessed: June 7, 2010].

[14] D. Elwood, \Simulated Ocean Wave Data Files," 2010, Oregon State University.

[15] P. Hogan, Thesis. 2007, Oregon State University.

[16] Kalman Filter [Website]. Available :http://bilgin.esme.org/BitsBytes/KalmanFilterforDummies. [Accessed: June 9, 2010].

[8]

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Page 44: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Questions ?

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Page 45: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Load Cell Composition• Two load cells directly

coupled to buoy. • Each load cell is rated for

5000 lb-f in tension or compression.

45

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Page 46: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Typical Calibration Test

1. Measure zero point (no weight).

2. Measure five tension points to capacity.

3. Measure one return point (25% of capacity).

4. Measure zero point (no weight).

5. Measure five compression points to capacity.

6. Measure one return point (25% of capacity).

7. Measure zero point (no weight).

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Page 47: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Simulating Load Cell Response

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Page 48: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Tuning the Kalman Filter

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ωP = 0.8

ωV = 200π

ωA = 400π

QN = 5000

ωP = 5.35

ωV = 10π

ωA = 5π

QN = 10 Starting

Values

Final Values

Page 49: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Mean Squared Error Analysis

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Page 50: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Acceleration Results – Close Up

50Simulated Wave Data File [14]

Page 51: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force Results – Close Up

51Simulated Wave Data File [14]

Page 52: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Force Results

52Simulated Wave Data File [14]

Page 53: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Noisy Plant attached to Kalman Filter

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Page 54: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Proposed Solution:Linear Quadratic Gaussian Controller

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Page 55: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

S-Type Load Cell with Readout DisplayUsed for Calibration of the LTB Load Cells

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Page 56: M.S. Thesis Defense for Christopher A. Haller Electrical Engineering and Computer Science

Load Cell Suspension Arm

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