The goal of this plan is to estimate the total daily volume of organic waste (manure and plant matter) produced on the homestead to correctly size the anaerobic digester. The calculation is based on the populations and areas defined in the Food Production Plan.md.
A key assumption is that the density of the waste slurry is approximately 993 kg/m³ [62 lbs/ft³], similar to water.
| Waste Source |
Population / Size |
Rate per Unit (kg/day [lbs/day]) |
Total Daily Waste (kg [lbs]) |
Notes |
| Humans |
10 People |
0.45 [1.0] |
4.5 [10.0] |
|
| Dairy Cows |
2 |
68 [150] |
136 [300] |
Assumes lactating cows. |
| Other Cattle |
4 |
29 [65] |
116 [260] |
Average for steers and young stock of various sizes. |
| Laying Hens |
15 |
0.14 [0.3] |
2 [4.5] |
|
| Meat Chickens |
100 |
0.07 [0.15] |
7 [15.0] |
Average across the flock's short lifecycle. |
| Greenhouse |
93 m² [1,000 sq ft] |
~0.008 [~0.017] |
7.5 [16.5] |
Estimated based on annual plant waste from produce harvesting. |
| Fish Barn |
7,570 L [2,000 gal] |
- |
13.6 [30.0] |
Estimated daily solids from filter backflush. See fish-barn-plan. |
| TOTAL |
|
|
~288 [~636] |
|
To size the digester, we need to convert the total weight of the waste into volume.
- Total Daily Weight: 288 kg [636 lbs]
- Slurry Density: ~993 kg/m³ [62 lbs/ft³]
- Calculation: 288 kg / 993 kg/m³ = 0.29 m³ [10.25 ft³] per day
The increase in waste volume is minimal and does not impact the overall sizing of the digester. For planning purposes, we will continue to use a Total Average Daily Waste Input of 0.28 m³ [10 ft³].
The size of the digester is determined by the daily waste volume and the required retention time—the amount of time the material must stay in the tank to be fully processed by the microbes. For a temperate Northeast climate, a longer retention time is beneficial. A 30-day retention time is a good standard.
- Calculation (Volume): 0.28 m³/day * 30 days = 8.4 m³ [297 ft³]
- Calculation (Liters/Gallons): 8.4 m³ * 1000 = 8,400 L [2,219 gal]
To ensure adequate capacity, provide a buffer, and allow for tank standardization, we will use a 15,140 L [4,000 gal] tank with an adjustable working volume.
- Recommended Size: 15,140 L [4,000 gal] (with adjustable 9,460 - 13,250 L [2,500 - 3,500 gal] Working Volume, integrated into the greenhouse-plan)
- A 4,000-gallon pre-cast concrete or durable plastic tank is recommended for standardization with other courtyard tanks.
- The liquid output port will be set at an adjustable height corresponding to a 2,500 - 3,500 gallon working volume. This ensures optimal thermal efficiency, as only the active slurry needs to be heated. This digester is a core component of the Integrated Feed Factory, as detailed in the greenhouse-plan.
- The remaining headspace within the tank will serve as a built-in gasholder for biogas storage, simplifying the overall system.
- This design also provides future-proofing: if waste input increases, the working volume can be expanded up to 4,000 gallons by adjusting the output port.
- The digester must be well-insulated and integrated with the thermal battery to maintain its temperature year-round.
- The output from the digester will be nutrient-rich liquid and solid digestate, and biogas (methane). The liquid and solid digestate fractions will be processed and utilized as detailed in the nutrient-cycling-plan.
The biogas produced by the anaerobic digester is a valuable energy resource for the homestead, designed to be used in multiple ways to enhance self-sufficiency and resilience.
- Greenhouse Use: Biogas, after processing, will be used to inject CO2 into the Integrated Feed Factory (as detailed in the greenhouse-plan) to boost plant photosynthesis and growth rates.
- Primary Use: Biogas will be utilized via the High-Grade Thermal Loop as specified in the energy-infrastructure-specification. It will be burned in a high-temperature burner that feeds the common Sand Battery (refractory sand bed). This sand battery buffers heat for the Stirling Engine Modules, which convert the thermal energy into baseload electricity.
- Thermal Battery Integration: Exhaust from the biogas/Stirling process and direct thermal energy from the biogas burner will be transferred to the central 4,000-gallon water-based thermal battery. This ensures a consistent heat supply for climate control, domestic hot water, and maintaining digester temperatures. This integration maximizes resilience by allowing either biogas or wood gas to sustain the homestead's energy needs.
- Direct Use: The produced biogas can also be used directly for cooking purposes within the homestead's communal kitchen (Great Hall), further reducing reliance on external energy sources.
¶ 5.5. Storage and Management
- Integrated Gasholder: The 1,500 gallons of headspace within the 4,000-gallon digester tank itself will serve as a built-in gasholder for temporary biogas storage, simplifying the system and providing a buffer for demand fluctuations.
- Biogas Upgrading: Equipment for biogas upgrading (scrubbing) will be in place to clean the raw biogas, removing impurities and increasing its methane content, making it suitable for generators and direct use.
¶ 6. System Operations & Maintenance
¶ Man-hours for Construction and Operation
- Tank Installation (as part of Courtyard Tank System): ~150-250 hours (excavation, placement)
- Plumbing & Integration (Waste Inlets, Digestate Outlets, Biogas lines): ~200-300 hours
- Biogas Generator & Boiler Installation: ~80-120 hours
- System Commissioning & "Seeding": ~40-60 hours (establishing the microbial colony)
- Total Estimated Construction Man-hours: ~470-730 hours
- Daily Feeding/Manure Management: ~300-400 hours/year (collecting and adding manure to the digester)
- System Monitoring: ~50-70 hours/year (checking temperature, pH, and gas production)
- Digestate Management: ~50-80 hours/year (pumping and distributing liquid fertilizer)
- Total Estimated Operational Man-hours: ~400-550 hours/year
¶ Maintenance Financial Report (Annual Estimate)
- Pump Maintenance/Repair Fund: ~$200 - $500
- Biogas Generator Maintenance: ~$200 - $400 (oil changes, spark plugs, etc.)
- Lab Analysis (optional, for optimizing performance): ~$100 - $300
- Minor Repair Parts (Valves, Gaskets, etc.): ~$100 - $200
- Total Estimated Annual Maintenance Cost: ~$600 - $1400
- "The Complete Biogas Handbook" by David William House: A comprehensive guide to small-scale biogas systems.
- "Biogas for Permaculture" by David Stephen: Focuses on integrating biogas into a permaculture design.
- Appropedia.org: An online resource with many open-source designs and articles on biogas digesters.
- Home Power Magazine archives: Contains numerous articles and projects on DIY biogas systems.