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https://doi.org/10.17113/ftb.64.03.26.9455 | Article in press |
Comparative Analysis of Drying and Preservation Techniques in Whey Powder: Enhancing Physicochemical and Functional Properties
Seçil Dede1 and Sebnem Ozturkoglu-Budak2*
1Graduate School of Natural and Applied Sciences, Ankara University, 06110 Dışkapı, Altındağ, Ankara, Turkiye
2Department of Dairy Technology, Faculty of Agriculture, Ankara University, 06110 Dışkapı, Altındağ, Ankara, Turkiye
Copyright © 2024 This is a Diamond Open Access article published under CC-BY licence. Copyright remains with the authors, who grant third parties the unrestricted right to use, copy, distribute and reproduce the article as long as the original author(s) and source are acknowledged.
Food Technol. Biotechnol. 2026; 64(3).
Article history:
Received: 31 October 2025
Accepted: 24 July 2026
Keywords:
whey; powder; encapsulation; freeze-drying; spray-drying
The content of this publication has not been approved by the United Nations and does not reflect the views of the United Nations or its officials or Member States.
Summary:
Research background. Whey is commonly used in powder form in various dairy and food products, including whey-based beverages, yogurts, sports supplements, and bakery items such as cakes and waffles. As a by-product of cheese production, incorporating whey into foods supports both economic and environmental sustainability while enhancing their nutritional and functional qualities, primarily due to its high serum protein content. This study investigates the effects of different technologies, such as spray-drying, freeze-drying, and encapsulation combined with freeze-drying, on the functional and nutritional characteristics of whey. The primary objective was to identify the most effective processing method for preserving the physicochemical and functional integrity of whey.
Experimental approach. Comprehensive analyses were conducted on individually processed and reconstituted whey samples, including the assessment of pH, titratable acidity, dry matter, protein, ash, and fat contents, as well as water-holding capacity, rheological behavior, color attributes, antioxidant activity, and total phenolic content. By comparing the analysis results, the most suitable application was identified based on technological, sensory, and functional criteria.
Results and conclusions. Encapsulation combined with freeze-drying was the most effective method, significantly enhancing functional properties. This treatment resulted in the highest antioxidant capacity (1.62 mM Trolox) and water-holding capacity (4.65 %), while largely preserving phenolic compounds (1.09 mg GAE/mL) and protein content (0.82 %). It also produced the highest consistency index (0.448), indicating improved structural stability. Freeze-drying alone effectively maintained phenolic content (1.13 mg GAE/mL), color (L*=46.95), and nutritional quality, while improving water-holding capacity (3.91 %) compared to untreated whey. In contrast, spray-drying, despite its industrial advantages, resulted in notable reductions in phenolic content (0.82 mg GAE/mL) and antioxidant capacity (0.020 mM Trolox), along with a darker color (L*=39.5), likely due to thermal degradation. All drying methods improved dry matter content, particularly in encapsulated samples (16.33 %). Overall, encapsulation combined with freeze-drying provided the best balance of functional, nutritional, and physicochemical properties, making it a promising approach for enhancing whey stability and shelf life.
Novelty and scientific contribution. These findings highlight the potential of alternative drying and preservation technologies, particularly encapsulation combined with freeze drying, for the sustainable valorization of whey in functional food applications.
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