Conference Agenda
Overview and details of the sessions of this conference. Please select a date or location to show only sessions at that day or location. Please select a single session for detailed view (with abstracts and downloads if available).
Please note that all times are shown in the time zone of the conference. The current conference time is: 24th Aug 2026, 05:33:28am America, Santiago
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Daily Overview |
| Session | |
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14D: Sustainability Virtual location: VIRTUAL: Agora Meetings | |
| Presentation 3 | |
2:16pm - 2:24pm
Chinese‑type biodigester design using an automatic PLC-based control system in the Chillón Valley, Peru. 1: Universidad Tecnologica de Perú - (PE), Perú; 2: Center for Energy and Environment Studies (CEEMA), Faculty of Engineering, University of Cienfuegos Carlos Rafael Rodríguez, Cienfuegos 59430, Cuba; 3: Departamento de Gestión, Pontificia Universidad Catolica del Perú, Lima 32, Peru; 4: Universidad Nacional Agraria La Molina, Lima, Peru; 5: Department of Mechanical Electrical Engineering, Universidad Nacional Tecnologica de Lima Sur, Lima 16, Peru The research proposes improving the design of a Chinese-type biodigester located in the Chillón Valley by implementing an automatic control system based on PLC. The study starts from the current problem: these biodigesters require high human intervention, have little uniformity in the substrate mixture, and have variations in biogas production due to the lack of controlled agitation. Different types of biodigesters are analyzed, and the Chinese type is selected for its robustness and low cost. For the substrate of guinea pig manure mixed with water, properties such as density and viscosity are determined, which justify the need to install a mechanical agitation system. Based on these properties, the necessary motor power is calculated, determining that a 0.75 kW motor with a marine propeller is adequate to maintain a homogeneous mixture. The volume of biogas produced daily (2,495 m³/d) and its energy potential were also estimated, demonstrating that it can generate useful energy for self-consumption. Finally, an automated system was designed with a PLC, level sensors, contactors, gear motors, and electrical protections, allowing for the control of mixing times, levels, and motor operation without constant intervention. The study concludes that automation is technically and operationally viable, improving process efficiency, reducing human error, and increasing stability in biogas generation. | |
