DOI: 10.3390/su18199703 ISSN: 2071-1050

Balancing Resource Circularity and Farm Profitability: A Secondary Probabilistic Bioeconomic Assessment of Partial Nutrient Solution Recirculation in a Korean Indoor Strawberry System

Hyebin An, Jin Woo Nam, Byeong Han Lee, Kyong Hee Joung, Gil Seog Park, Sang Seok Oh, Yong Hoon Im, Young Jik Youn, Ju Young Lee

Partial nutrient-solution recirculation can improve resource efficiency without establishing net environmental sustainability or private profitability. This secondary bioeconomic assessment used four fixed-layout operational records per setting for 0%, 30%, and 50% recirculation in a Korean two-tier indoor aeroponic strawberry system. Resource indicators were integrated with partial budgeting, 200,000-draw Monte Carlo simulations, downside-risk measures, complementary uncertainty cases, Sobol sensitivity analysis, and capital-recovery and avoided-discharge shadow-value frontiers. Thirty-percent recirculation reduced freshwater make-up by 30.0% and freshwater intensity by 28.3%, while retaining 97.7% of control yield. At the base price and tariff, its incremental margin was −8364 Korean won (KRW), approximately −6.09 United States dollars (USD), per (25/3) m2 block-cycle; parity required 98.54% yield retention. With the observed mean yield difference fixed, the scenario-conditional positive-margin probability was only 2.95%. It was 24.94% under four-record empirical resampling and 55.35% under an exploratory triangular yield envelope, falling to 16.56% when declared labor and energy/consumables burdens were added to that envelope. The triangular result interpolates across sparse, non-independent records and is not a more empirically supported probability estimate. All probabilities assume independent model inputs and retained, incompletely auditable fertilizer-cost allocations. Fifty-percent recirculation remained unfavorable because yield losses outweighed input savings. These findings identify a resource–profitability trade-off, not an environmentally sustainable or optimal recirculation rate; numerical conclusions require independent crop-, facility-, and market-specific evidence.