Beyond Agrivoltaics: A Governance-Embedded Socio-Technical Systems Architecture for Decentralized Agro-Industrial Ecosystems and Competence-Driven Rural Industrialization
Keywords:
Agrivoltaics; Socio-Technical Systems Engineering; Engineering Competence Infrastructure; Governance-Embedded Systems; Agro-Industrial Development; Rural Energy Systems; NigeriaAbstract
Agrivoltaic systems have emerged as a promising strategy for addressing the water
energy-food nexus through the co-location of photovoltaic energy generation and
agricultural production. However, existing agrivoltaic models are predominantly designed
to optimize land-use efficiency, energy generation, and crop productivity, with limited
attention to the institutional, technical, governance, and socio-economic conditions
necessary for sustainable rural industrialization. This study proposes a governance
embedded socio-technical systems architecture that reconceptualizes agrivoltaics as the
foundational energy infrastructure for decentralized agro-industrial ecosystems.
Drawing upon systems engineering, biomimetic design principles, competence
infrastructure, and community co-development, the study develops an integrated,
layered framework that systematically links renewable energy generation, agricultural
production,
agro-processing,
governance,
engineering
capability,
institutional
coordination, and adaptive resilience within a unified systems architecture. The
methodology integrates conceptual synthesis, socio-technical systems architecture
development, mathematical representation of subsystem interactions, and an illustrative
pilot application based on a representative rural community in Nigeria. The proposed
framework models the dynamic interactions among energy, material, information,
governance, knowledge, and feedback flows to demonstrate how coordinated subsystem
integration improves overall system performance, resilience, and sustainability. The
illustrative application demonstrates the technical feasibility of a decentralized
agrivoltaic energy node capable of supporting solar-powered irrigation, agro-processing,
cold storage, and essential community services, while indicating significant potential to
reduce post-harvest losses, increase local value addition, strengthen engineering
competence, improve institutional capacity, and enhance community participation. By
explicitly embedding governance, engineering competence, and community co
development as endogenous system variables, the proposed architecture advances
agrivoltaics beyond conventional dual land-use optimization toward a scalable, adaptive,
and competence-driven socio-technical framework for decentralized rural
industrialization and sustainable development across the Global South.
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