engine conversion from combustion to compressed air

17
Pressurized Air Vehicle Engine Conversion from Combustion to Compressed Air

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Page 1: Engine Conversion from Combustion to Compressed Air

Pressurized Air Vehicle

Engine Conversion from Combustion to Compressed Air

Page 2: Engine Conversion from Combustion to Compressed Air

Ordinary gasoline combustion engine converted to run on compressed air

Drivable, proof-of-concept car◦5-10 minutes◦10-15 mph

Three groups: engine modification, vehicle integration, testing and theory

Project Goals

Page 3: Engine Conversion from Combustion to Compressed Air

Four stroke engine vs. two stroke engine

Golf cart, go-kart, building a chassis, mini Baja

Engine and Chassis Choice

Page 4: Engine Conversion from Combustion to Compressed Air

Chose to modify thetiming by CNC machiningcam lobes.

Norfolk Machine Shop

Engine Modification

Page 5: Engine Conversion from Combustion to Compressed Air

1. Remove Timing Case – 5 bolts

2. Place camshaft – line up timing mark

3. Remove old gasket material, and place new gasket

4. Re-attach Timing Case

5. Check all plugs are sealed

6. Add oil 7. Attach intake

manifold

Engine Assembly

Page 6: Engine Conversion from Combustion to Compressed Air

Engine Troubleshooting Engine running backwards

Intake valve being blown open

Low airflow

Page 7: Engine Conversion from Combustion to Compressed Air

Vehicle Integration

Intake Adapter Tanks Ball valve (Throttle) 5/16” Line Original design too restrictive Met basic flow requirements after post-

install modifications

Page 8: Engine Conversion from Combustion to Compressed Air

Relatively Light Weight Available Locally

(Low Lead Time) Price High Pressure Common Regulator Easy Filling Low Price For Used

Scuba Tank Selection

Page 9: Engine Conversion from Combustion to Compressed Air

Available at ODU motorsports lab.

Consulted with Dr. Ash about use.

Crank shaft was too large so adapter was machined to allow for use with Baja engine.

Dynamometer Testing

Page 10: Engine Conversion from Combustion to Compressed Air

Dyno run #1 0.1 horsepower at 600 rpm

Dyno run #2 0.2 horsepower at 950 rpm

Results

Page 11: Engine Conversion from Combustion to Compressed Air

Using ideal gas assumptions

After manipulation:

Gas Dynamics Thermo Model

Page 12: Engine Conversion from Combustion to Compressed Air

Engine Efficiency

Page 13: Engine Conversion from Combustion to Compressed Air

Comparing EfficienciesInternal

Combustion [1] Hybrid [1] Electric [2] Pressurized AirEngine Efficiency,% 21 30 11

Motor Efficiency, % 79 78

Battery & Battery Charger Efficiency, %

81

Total Efficiency, % 21 24 21 4

Heat Rate, Btu/kWh Efficiency, %

Coal 10444 32.67Petroleum 10826 31.52Natural Gas 8152 41.85Nuclear 10464 32.61

[1] N. D. a. J. Deutch, "Hybrid Cars Now, Fuel Cell Cars Later," Science Magazine, vol. 305, pp. 974-976, August 13, 2004 2004.[2] U. S. D. o. Energy. (2013, April 22). Electric Vehicles (EVs). Available: http://www.fueleconomy.gov/feg/evtech.shtml[3] U. S. E. I. Administration. (April 21). Table 8.1. Average Operating Heat Rate for Selected Energy Sources. Available: http:// www.eia.gov/electricity/annual/html/epa_08_01.html

Page 14: Engine Conversion from Combustion to Compressed Air

Future Improvements•Larger air capacity and flow rate

•Better valve and camshaft design

•Use a more efficient engine type

•Lighter chassis

Page 15: Engine Conversion from Combustion to Compressed Air

https://www.facebook.com/groups/PAVprojectdesign/?hc_location=stream

Completed Engine Conversion

Page 16: Engine Conversion from Combustion to Compressed Air

Gantt Chart

Page 17: Engine Conversion from Combustion to Compressed Air

Questions?