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9/30/2013 Systems Level Design Review P14462 Single Line Tethered Glider Team P14462 Sub-System Level Design Review Jon Erbelding Paul Grossi Sajid Subhani Kyle Ball Matthew Douglas William Charlock

Single Line Tethered Glider

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Single Line Tethered Glider. Sub-System Level Design Review. Team P14462. Kyle Ball Matthew Douglas William Charlock. Jon Erbelding Paul Grossi Sajid Subhani. Team Introduction. Agenda. Project Description Review Engineering Requirements Review Functional Decomposition Review - PowerPoint PPT Presentation

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Page 1: Single Line Tethered Glider

9/30/2013 Systems Level Design Review P14462

Single Line Tethered Glider

Team P14462Sub-System Level Design Review

Jon ErbeldingPaul Grossi

Sajid Subhani

Kyle BallMatthew DouglasWilliam Charlock

Page 2: Single Line Tethered Glider

Team Introduction

Team Member Major

Sajid Subhani Industrial Engineer - Team Lead

Paul Grossi Mechanical Engineer

Matt Douglas Mechanical Engineer

Jon Erbelding Mechanical Engineer

Kyle Ball Mechanical Engineer

Bill Charlock Mechanical Engineer

Page 3: Single Line Tethered Glider

Agenda● Project Description Review● Engineering Requirements Review● Functional Decomposition Review● Top 3 Concepts from Last Review● Concept Feasibility

● Glider Analysis and Feasibility● Base Station Analysis and Feasibility

● Project Planning● Work Breakdown Structure

Page 4: Single Line Tethered Glider

Project Description Review● Goal: Design, build, and test a tethered,

small-scale, human-controlled glider.

● Critical Project Objectives:β—‹ Maintain maximum tension on the tetherβ—‹ Sustaining horizontal and vertical flight

pathsβ—‹ Measure and record tether tension and

positionβ—‹ Understand the influential parameters for

sustained, tethered, unpowered flight

Glider

Tether

Base Station

Operator w/controller

Page 5: Single Line Tethered Glider

Engineering Requirements

Page 6: Single Line Tethered Glider

Functional Decomposition

Page 7: Single Line Tethered Glider

Review of Top 3 System Concepts

3 Single Axis Load Cell IMU with Single Axis Load Cell 2 Potentiometers with Single Axis Load Cell

Page 8: Single Line Tethered Glider

Glider Analysis

Page 9: Single Line Tethered Glider

Choosing the Glider

Bixler v1.1 EPO Foam Wing span: 1.4 [m] Chord length: 0.2 [m] Mass: 0.65 [kg] Middle mounted propeller Only EPO Foam

Phoenix 2000 EPO Foam Wing span: 2 [m] Chord length: 0.3 [m] Mass: 0.98 [kg] Front mounted propeller Reinforced

Page 10: Single Line Tethered Glider

Choosing the Glider The smaller Bixler glider creates less

tension for a larger operating range Able to operate with an affordable load cell

Page 11: Single Line Tethered Glider

Flight Orientation

Page 12: Single Line Tethered Glider

Flight Orientation

Page 13: Single Line Tethered Glider

Flight Analysis

Wind Speed: ~ 11 mph

Page 14: Single Line Tethered Glider

Flight Analysis

Wind Speed: ~ 22 mph

Page 15: Single Line Tethered Glider

Flight Analysis

Wind Speed: ~ 44 mph

Page 16: Single Line Tethered Glider

Qualitative DOE

Slower wind speed: lower tension

Larger flight path radius: lower tension

Beta angle peaks: ~ 94-95Β°

Tension peaks: ~ 20 [m] tether length

Tension must be less than 5000 [N] (1100 lbs)

Page 17: Single Line Tethered Glider

Quantitative DOE Choosing flight configuration

Inputs Maximum allowable tension Observed wind speed

Outputs Beta angle Tether length Flight path radius

Page 18: Single Line Tethered Glider

Bridle and Tether Setup Use a tension of 3000 lbs as an overestimate.

Maximum allowable stress for Bixler glider: 30 MPa

Bridle attached at two points on the fuselage causes structural failure at the wing root with 180 MPa

Page 19: Single Line Tethered Glider

Proposed Tether and Bridle Design

Page 20: Single Line Tethered Glider

Ideal Bridle Location Analysis

Optimum tether location: 0.51 m from root. Optimum tether angle: 54 deg from airplane

Page 21: Single Line Tethered Glider

Wing Stress Analysis

Page 22: Single Line Tethered Glider

Wing Stress Analysis

Maximum stress: 15 MPa

Page 23: Single Line Tethered Glider

Fuselage Stress Analysis

Page 24: Single Line Tethered Glider

Tether and Bridle Configuration

Page 25: Single Line Tethered Glider

Base Station Analysis and Feasibility

Page 26: Single Line Tethered Glider

2 Potentiometers and Single-Axis Load Cell

Concept 1

Page 27: Single Line Tethered Glider

Vertical Rotation

Page 28: Single Line Tethered Glider

Static Analysis

βˆ‘ π‘€π‘œ=π‘‡π‘Ÿπ‘ π‘–π‘› (π›Ώπœ‘ )βˆ’π‘Š πΏπΆπ‘‘π‘π‘œπ‘  (πœƒ )βˆ’π‘€π‘π‘œπ‘‘βˆ’π‘€π‘π‘’π‘Žπ‘Ÿ=0βˆ΄π‘‡=

π‘€π‘π‘œπ‘‘+π‘€π‘π‘’π‘Žπ‘Ÿ+π‘Š πΏπΆπ‘‘π‘π‘œπ‘ (πœƒ)π‘Ÿπ‘ π‘–π‘›(π›Ώπœ‘)

Page 29: Single Line Tethered Glider

Dynamic Analysis

βˆ‘ π‘€π‘œ=π‘‡π‘Ÿπ‘ π‘–π‘› (π›Ώπœ‘ )βˆ’π‘Š πΏπΆπ‘‘π‘π‘œπ‘  (πœƒ )βˆ’π‘€π‘π‘œπ‘‘βˆ’π‘€π‘π‘’π‘Žπ‘Ÿ=πΌπΏπΆπ›Όβˆ΄π‘‡=

𝐼𝐿𝐢𝛼+π‘€π‘π‘œπ‘‘+π‘€π‘π‘’π‘Žπ‘Ÿ+π‘Š 𝐿𝐢 π‘‘π‘π‘œπ‘ (πœƒ)π‘Ÿπ‘ π‘–π‘›(π›Ώπœ‘)

Page 30: Single Line Tethered Glider

Dynamic Analysis Continued

Page 31: Single Line Tethered Glider

Horizontal Rotation

Page 32: Single Line Tethered Glider

Static Analysis

βˆ‘ π‘€π‘œ=π‘‡π‘Ÿπ‘π‘œπ‘  (πœƒ)𝑠𝑖𝑛 (π›Ώπœ† )βˆ’π‘€π‘π‘œπ‘‘βˆ’π‘€π‘π‘’π‘Žπ‘Ÿ=0βˆ΄π‘‡=

π‘€π‘π‘œπ‘‘+π‘€π‘π‘’π‘Žπ‘Ÿ

π‘Ÿ π‘π‘œπ‘ (πœƒ)𝑠𝑖𝑛(π›Ώπœ†)

Page 33: Single Line Tethered Glider

3 Single-Axis Load Cells

Concept 2

Page 34: Single Line Tethered Glider

CAD Model● Created 3-D model of the system in SolidWorks● Works well when the ball joints are kept in

tension as seen in Fig 1.● Ball joints fail when they are put into

compression as seen in Fig 2.

Fig. 1 Fig. 2

Page 35: Single Line Tethered Glider

Base Station EquipmentPhidgets 3140_0 – S Type Load

CellBourns 3540S-1-103L Potentiometer

Page 36: Single Line Tethered Glider

Initial Base Station Budget ComparisonP14462 Purchase List for 3 Load Cell Base Station

Part Description Unit Price Qty Individual TotalPhidgets 3140_0 - S Type Load Cell 50 3 150.00Ball End Joint Rod 3.78 6 22.68Shipping     0.00

Total Order Price     172.68

P14462 Purchase List for Potentiometer Base Station

Part Description Unit Price Qty Individual TotalPhidgets 3140_0 - S Type Load Cell 50 1 50.00Bourns 3540S-1-103L Potentiometer 20 2 40.00Miniature Aluminum Base-Mounted Stainless Steel Ball Bearingsβ€”ABEC-3 14.92 2 29.84Flanged Open 1/2 Inch Ball and Roller Bearing 7.61 1 7.61Shipping     0.00

Total Order Price     127.45

Page 37: Single Line Tethered Glider

Project Planning

Page 38: Single Line Tethered Glider

Project Planning

Page 39: Single Line Tethered Glider

Work Breakdown Structure (10-12)● Paul: ● Jon: ● Kyle: ● Matt: ● Saj: ● Bill:

Page 40: Single Line Tethered Glider

Questions?