Journal of food science and technology(Iran)

Journal of food science and technology(Iran)

Optimization of dry-peeling method for plums using infrared radiation heating with response surface methodology and evalation of physicochemical characteristics in compare of lye peeling method

Document Type : Original Article

Authors
1 Department of Agrotechnology, College of Agricultural Technology (Aburaihan) - University of Tehran, Pakdasht, Tehran, Iran
2 Department of Agrotechnology, College of Agricultural Technology (Aburaihan) - University of Tehran
10.48311/fsct.2026.119647.83085
Abstract
Peeling is a key stage from post-harvest processing for plum fruit, which traditional methods (using lye solution) meets to some challenges such as a high peeling loss, low efficiency of process, high consumption of water and energy, chemical wase water production that finally led to reduction of product quality. This study investigates the feasibility and optimization of dry-peeling for plums using infrared radiation heating as a sustainable alternative to conventional lye peeling. A laboratory-scale system including a ceramic IR emitter and the rotating fruit rollers for plum processing was designed. The effects of IR emitter power (350-1000 W), heating time (90-150 s), and emitter distance (20-70 mm) on physico-chemical properties and peeling performance (moisture loss, peel thickness, surface temperature, color properties, and ascorbic acid) were evaluated using Response Surface Methodology (RSM). The results showed that optimal conditions (797.48 W, 70 mm, 107 s) achieved 0.30% moisture loss, 0.12 mm peel thickness, 40°C surface temperature, 13.5 ΔE color change, and 14 mg/100 g ascorbic acid retention. In compare with conventional lye peeling method (10% NaOH, 85°C, 100 s), IR peeling significantly reduced moisture loss (0.30% vs. 9.56%), preserved bright yellow hue (Hue angle 82 vs. 55°), and enhanced ascorbic acid retention (14 vs. 10.5 mg/100 g), while eliminating chemical wastewater. These findings proved the high potential of infrared radiation heating as a green method, effective with high quality for plum processing.
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