Open design engine
Open design engine is an area for developing, sharing, organizing, studying, and improving openly documented engine designs. It can include complete engines, experimental engines, individual engine components, supporting systems, research results, manufacturing methods, testing information, and designs intended to be collaboratively improved.
The basic idea is to apply principles of open design and open hardware to engines.
An open engine project can make enough information available that other people can study the design, reproduce parts of it, test it, identify problems, propose improvements, and potentially manufacture compatible versions.
Open design engines can be developed for education, transportation, machinery, electrical generation, research, agriculture, aviation experiments, distributed manufacturing, and other uses. Here is for where open engine designs can be shared and collaboratively organized with respect to creation.
Types of engines
The term engine includes many different technologies.
Possible areas for open engine development include:
|
An electric motor is normally distinguished from a heat engine, although electric motors, generators, batteries, engines, and power electronics can all be combined in hybrid power systems.
An open design project should clearly identify what type of engine is being developed and what problem it is intended to solve.
What should an open engine design include?
A useful open engine project involves more than publishing a picture of an engine.
Ideally, documentation could include:
- CAD models
- Engineering drawings
- Dimensions and tolerances
- Bill of materials
- Materials specifications
- Component specifications
- Assembly documentation
- Manufacturing information
- Maintenance information
- Lubrication requirements
- Cooling requirements
- Fuel or energy requirements
- Testing information
- Performance data
- Revision history
- Known problems
- Safety information
- Licensing information
Not every experimental project will have all of this information at first.
The documentation can develop with the engine.
An early project might begin with a concept and rough CAD model. Later versions could add detailed drawings, test data, manufacturing instructions, and a complete bill of materials.
Keeping older versions can also be useful because they show how the design developed and what approaches did or did not work.
Collaborative engine design
Engines involve several areas of engineering at the same time.
A single project may involve knowledge of:
|
|
This makes engine design suitable for collaborative work.
One person might develop the crankcase while another studies combustion. Someone else could work on cooling, electronic controls, manufacturing, or testing.
Changes should be documented so that contributors can understand why a design changed.
An issue tracker or wiki could be used to organize questions such as:
- Which parts fail most often?
- Which parts are expensive to manufacture?
- Can components be standardized?
- Can weight be reduced?
- Can efficiency be improved?
- Can maintenance be simplified?
- Can locally available materials be used?
- Are there unnecessary proprietary components?
- Can the engine operate using several fuels or energy sources?
These questions can become separate research projects.
Modularity
Modularity can make an open engine easier to repair and modify.
Instead of treating an engine as one inseparable product, a design can divide it into systems.
For example:
- Engine block or structural frame
- Cylinder and piston assembly
- Crankshaft
- Valvetrain
- Fuel system
- Intake system
- Exhaust system
- Cooling system
- Lubrication system
- Starting system
- Sensors
- Electronic control
- Power output interface
Standardized mounting points and interfaces can make it easier to replace or experiment with individual systems.
A modular power unit could also allow different engines to provide mechanical, electrical, or hydraulic power to the same machine.
This approach can be useful in open design car, agricultural machinery, generators, construction equipment, and experimental vehicles.
Manufacturing
An open design is more useful when people can realistically manufacture it.
Engine components may require:
- CNC machining
- Casting
- Forging
- Grinding
- Welding
- Sheet metal fabrication
- Additive manufacturing
- Heat treatment
- Precision measurement
Some components require significantly greater precision than others.
A protective housing might be relatively easy to fabricate. A crankshaft, bearing surface, injector, turbine component, or cylinder bore may require specialized manufacturing equipment and tight tolerances.
One research goal can therefore be to determine which components can be manufactured locally and which are more practical to purchase as standardized components.
An open engine does not necessarily need every bolt, bearing, sensor, or fuel injector to be manufactured from raw materials.
Using widely available standard parts can sometimes make an open design substantially easier to reproduce.
Repairability
Repairability can be treated as a design goal rather than something considered after the engine has already been built.
An engine intended for long-term repair might use:
- Standard fasteners
- Replaceable bearings
- Accessible filters
- Replaceable seals
- Common hoses and fittings
- Easily removable covers
- Published diagnostic information
- Modular sensors and controls
- Widely available replacement components
Documentation should also explain how components fit together.
Exploded diagrams, photographs, CAD files, and part numbers can make repairs easier.
An engine that can theoretically run for many years may still have a short practical life if replacement parts or repair information become unavailable.
Testing and measurement
Engine development requires testing.
Useful measurements can include:
- Power output
- Torque
- Fuel consumption
- Efficiency
- Temperature
- Oil pressure
- Vibration
- Noise
- Emissions
- Reliability
- Component wear
- Operating hours before maintenance
Publishing unsuccessful tests can be valuable.
If an engine component fails after a particular number of operating hours, documenting the failure provides information that other designers can use.
Open engineering should make it possible to learn from failure rather than hiding it.
Design changes can then be linked to measured results.
For example:
- Identify a problem.
- Propose a modification.
- Build or simulate the modified component.
- Test it.
- Record the results.
- Compare the results with the previous design.
- Keep, revise, or reject the modification.
- Document the decision.
This creates an engineering history rather than simply a collection of files.
Simulation and digital design
Modern engine development can make extensive use of digital tools before physical parts are manufactured.
Possible tools include:
- Computer-aided design
- Computational fluid dynamics
- Finite element analysis
- Thermal simulation
- Combustion simulation
- Motion simulation
- Manufacturing simulation
- Engine cycle modeling
Open-source software can potentially be used for some of this work.
Simulation does not replace physical testing, but it can reduce the number of designs that need to be manufactured.
A project could publish simulation files together with CAD files so other researchers can reproduce the analysis.
Artificial intelligence and engine design
Artificial intelligence can also assist open engine projects.
AI systems can potentially help:
- Organize design documentation
- Generate initial CAD or scripting ideas
- Review bills of materials
- Compare engine architectures
- Analyze test data
- Identify patterns in failures
- Generate simulation scripts
- Search technical literature
- Develop alternative component designs
- Explain engineering concepts
AI-generated engineering work should still be reviewed and tested.
An engine involves physical forces, heat, pressure, rotating components, fuel, and other hazards. A plausible-looking generated design is not evidence that the design is safe or functional.
Open engines and distributed manufacturing
An important research question is whether engine manufacturing could become more distributed.
Instead of one company manufacturing every component, an open design might allow different workshops to manufacture compatible parts.
A local machine shop could manufacture one component while standardized bearings, electronics, injectors, or other components are purchased from existing suppliers.
Digital manufacturing files could be distributed globally while physical manufacturing occurs closer to where an engine is needed.
This approach creates questions involving quality control, tolerances, certification, and compatibility.
Successful distributed manufacturing would require clear standards and reliable testing.
Efficiency and environmental research
Open engine research can also examine efficiency and environmental impacts.
Areas of research can include:
- Reduced fuel consumption
- Alternative fuels
- Waste heat recovery
- Reduced friction
- Improved combustion
- Lower emissions
- Lightweight components
- Longer engine life
- Rebuildability
- Compatibility with renewable fuels
- Hybrid systems
The most environmentally appropriate technology depends on the application.
In some applications, replacing an engine with an electric motor may be practical. In others, combustion engines or other heat engines may remain useful.
Open research can compare these alternatives rather than assuming one solution is appropriate everywhere.
Safety
Engine development can involve significant hazards.
Engines may involve high temperatures, rotating components, pressurized fluids, fuel, exhaust gases, electricity, vibration, and significant mechanical forces.
Testing equipment should be designed to contain failures and protect people nearby.
Engine testing may also require ventilation, fire protection, emergency shutdown systems, guarding, and appropriate measuring equipment.
Designs intended for vehicles, aircraft, industrial machinery, or other safety-critical applications require substantially greater verification.
Open documentation should include safety information and known limitations rather than presenting experimental hardware as proven equipment.
Learning and research activities
Possible activities include:
- Study the components of an existing engine.
- Create an exploded CAD model of a small engine.
- Compare gasoline, diesel, Stirling, and steam engines.
- Research engine efficiency.
- Compare different cooling systems.
- Examine how lubrication systems work.
- Design a modular engine test platform.
- Study common engine failure modes.
- Compare locally manufactured parts with commercially produced parts.
- Develop a bill of materials for an experimental engine.
- Study how engine controllers use sensors.
- Research whether an existing engine could be redesigned for easier repair.
Discussion questions, essay ideas, and learning related AI prompt ideas
- What information is required for an engine design to be genuinely open?
- How much of an engine can realistically be manufactured in a small machine shop?
- Which engine components are most difficult to manufacture?
- Should open engines prioritize efficiency, simplicity, durability, low cost, or repairability?
- How could modularity improve engine design?
- What standardized interfaces would make engines easier to exchange between machines?
- Can distributed manufacturing produce reliable engine components?
- When is an electric motor preferable to a combustion engine?
- What types of engines are most suitable for open hardware development?
- Could an open engine remain repairable for several decades?
- How should failures be documented in an open engineering project?
- Ask an AI system to compare several engine architectures for a small electrical generator.
- Ask an AI system to identify the information missing from an example open engine design.
- Design a research program for improving the efficiency of a small open engine.
- Compare centralized engine manufacturing with distributed manufacturing using open design files.
Wikipedia readings
- Engine
- Internal combustion engine
- Heat engine
- Diesel engine
- Gasoline engine
- Stirling engine
- Steam engine
- Gas turbine
- Engine efficiency
- Computer-aided design
- Computer-aided engineering
- Open-source hardware