Optimization and Experiment of Livestock and Poultry Manure Composting Equipment with Vented Heating
Abstract
:1. Introduction
2. Experiments and Methods
2.1. Overall Structure and Workflow of the Equipment
2.1.1. 3D Model of Composting Equipment
2.1.2. Working Process
2.2. Structural Optimization of Ventilation Heating System
2.3. Optimization of Mixing Blades
2.4. Optimization of Control Part
2.5. Experimental Verification of the Practicality of Composting Equipment
3. Result and Analysis
3.1. Temperature Changes in Composting
3.2. PH Value Changes in Composting
3.3. Oxygen Concentration Changes in Composting
3.4. Humidity Changes in Composting
3.5. Seed Germination Index Changes in Composting
3.6. Comparison of Test Results and Evaluation of Equipment Practicality
4. Discussion
5. Conclusions
- Enhancements in the mixing structure, ventilation and heating system, and automation level greatly contribute to the overall efficiency of the composting process. These improvements could potentially have a significant impact on agricultural sustainability and address challenges related to livestock manure management.
- The seed germination index (GI) value of the organic fertilizer produced using the improved equipment has increased from 81% to 89%, suggesting a higher maturity level and less potential harm to crops. The pH value remains within the industry standard of 5.5–8.5, recorded specifically at 6.6. The minimum stacking humidity has been reduced slightly from 8.9% to 8.1%, still well within the acceptable industry standard of less than 30%.
- The modified composting equipment successfully maintained the high-temperature duration of the composting material for a period of 7 days, complying with industry regulations.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
MCGS | Monitor and Control Generated System |
PLC | Programmable logic Controller |
°C | Anders Celsius |
kJ | Kilojoules |
h | hour |
K | Kelvins |
m3 | cubic meter |
mm | millimeter. |
W | Watt |
GI | Germination index |
PH | Potential of hydrogen |
Heat released by the electric heating tube | |
The heat absorbed by the air pump during heating | |
Heat conduction on the wall of the heating box | |
Heat absorbed by water evaporation in the air | |
Other forms of heat loss | |
Specific heat capacity of air | |
Air density | |
Ventilation capacity | |
Air temperature change value | |
Air thermal conductivity | |
Contact area | |
Temperature difference between objects | |
Heat transfer distance | |
Net mass of water vapor in the air | |
Enthalpy value of water vapor |
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Serial Number | Name | Function |
---|---|---|
1 | Electronic scale | Weigh sheep manure |
2 | Activated carbon | Adsorption waste |
3 | Seedling tray | Planting mung beans |
4 | Farmland soil | Mixed fermented compost for mung bean cultivation |
5 | Mung bean | Measuring germination rate |
6 | Starter and glass measuring cylinder | Promote compost maturity |
7 | Soil detector | Detecting factors such as moisture content, pH value, and conductivity of compost |
8 | barrel | Mix compost amount and moisture content |
Serial Number | Test Parameters | Unimproved Equipment | Improved Equipment |
---|---|---|---|
1 | Composting cycle | 13 days | 11 and a half days |
2 | High-temperature maintenance time | 8 days | 7 days |
3 | Maximum temperature of stacking material | 67.8 °C | 69.9 °C |
4 | Minimum humidity of stacking material | 8.9% | 8.1% |
5 | Maximum Seed Germination Index (GI) | 83% | 89% |
6 | Minimum pH value | 6.5 | 6.6 |
7 | Minimum oxygen concentration | 14.8% | 15% |
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Ren, K.; Su, L.; Zhang, Y.; He, X.; Cai, X. Optimization and Experiment of Livestock and Poultry Manure Composting Equipment with Vented Heating. Sustainability 2023, 15, 11353. https://doi.org/10.3390/su151411353
Ren K, Su L, Zhang Y, He X, Cai X. Optimization and Experiment of Livestock and Poultry Manure Composting Equipment with Vented Heating. Sustainability. 2023; 15(14):11353. https://doi.org/10.3390/su151411353
Chicago/Turabian StyleRen, Kailin, Lide Su, Yong Zhang, Xiang He, and Xuyang Cai. 2023. "Optimization and Experiment of Livestock and Poultry Manure Composting Equipment with Vented Heating" Sustainability 15, no. 14: 11353. https://doi.org/10.3390/su151411353
APA StyleRen, K., Su, L., Zhang, Y., He, X., & Cai, X. (2023). Optimization and Experiment of Livestock and Poultry Manure Composting Equipment with Vented Heating. Sustainability, 15(14), 11353. https://doi.org/10.3390/su151411353