YUQORI SAMARALI MIKROTO‘LQIN–VAKUUM QURITGICHLARDA ENERGIYA TEJAMKOR QURITISH JARAYONINI TASHKIL ETISH

YUQORI SAMARALI MIKROTO‘LQIN–VAKUUM QURITGICHLARDA ENERGIYA TEJAMKOR QURITISH JARAYONINI TASHKIL ETISH

Authors

  • Baxshullayeva Mubashira Bahodir qizi Buxoro davlat universiteti 05.05.06 – Qayta tiklanadigan energiya turlari asosidagi energiya qurilmalari ixtisosligi bo‘yicha stajyor-doktorant

Keywords:

mikroto‘lqin, vakuum, quritish, energiya samaradorligi, maxsus energiya sarfi, issiqlik-massa almashinuvi, quritish kinetikasi, impulsli rejim.

Abstract

Tezisda mikroto‘lqin–vakuum quritish texnologiyasining yuqori samaradorligini ta’minlovchi fizik va energetik omillar tahlil qilingan. Mikroto‘lqin energiyasining hajmiy yutilishi, vakuum sharoitida suvning qaynash haroratining pasayishi, namlikning ichki qatlamlardan sirtga ko‘chishi hamda quritish davomiyligining qisqarishi yoritilgan. Zamonaviy tadqiqotlar asosida mikroto‘lqin quvvati, vakuum darajasi, mahsulot yuklamasi va impulsli boshqaruv rejimlarining energiya sarfi hamda yakuniy mahsulot sifatiga ta’siri ko‘rib chiqilgan. Quritgich samaradorligini oshirish uchun real vaqt monitoringi, quvvatni bosqichma-bosqich boshqarish va issiqlik yo‘qotishlarini kamaytirishga asoslangan yondashuv taklif etiladi.

References

1. Advances in vacuum microwave drying (VMD) systems for food products. Trends in Food Science & Technology. 2021. Vol. 116. P. 626–638. DOI: 10.1016/j.tifs.2021.08.005.

2. Belonio L.S.H., Varith J., Jaturonglumlert S., Narkprasom K., Narkprasom N., Arkanit K., Sujinda N. Performance of microwave-vacuum drying on flavonoids and saponins availability in Carica papaya leaves. Results in Engineering. 2025. Vol. 26. 104909. DOI: 10.1016/j.rineng.2025.104909.

3. Shukla V., Padilla-Zakour O.I., Chen C. Microwave vacuum drying of Concord grape (Vitis labrusca) pomace: drying kinetics and quality attributes for enhanced valorization. Sustainable Food Technology. 2025. Vol. 3. P. 1793–1804. DOI: 10.1039/D5FB00189G.

4. Wang P., Yang X., Huang X., et al. Modeling and Optimization of Microwave Vacuum Drying for Pinelliae Rhizoma: Integrating Drying Kinetics, Artificial Neural Networks, and Quality Preservation. Food Science & Nutrition. 2025. Vol. 13, No. 8. e70672. DOI: 10.1002/fsn3.70672.

5. Keçeli N., Parıldı E., İpek S.L., Kola O. Vacuum Microwave Drying as an Efficient Alternative to Hot Air Drying: Optimization, Drying Kinetics, and Quality Retention of Washington Navel Orange Slices. Applied Sciences. 2026. Vol. 16, No. 7. 3530. DOI: 10.3390/app16073530.

6. Makovic D., Shukla V., Leitao S.B., Yu J., Padilla-Zakour O.I., Chen C. Microwave vacuum drying for crispy beet snacks: Process development, drying kinetics, and product qualities. Innovative Food Science & Emerging Technologies. 2026. Vol. 108. 104402. DOI: 10.1016/j.ifset.2025.104402.

7. Wang X., Shi K., Cao X., Guo J., Yi H., Chen Y., Pan S. Effects of different drying methods on the drying kinetics and quality characteristics of Orah (Citrus reticulata) slices. Food Science and Biotechnology. 2025. Vol. 34, No. 9. P. 1897–1906. DOI: 10.1007/s10068-024-01811-w.

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Published

2026-09-30
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