ISSIQLIK AKKUMULYATORINING RAZRYADLANISH JARAYONIDA SUYUQLIK QATLAMLARIDA HARORAT TAQSIMLANISHINING BIR OʻLCHOVLI MODELI
DOI:
https://doi.org/10.5281/zenodo.17793226Keywords:
energiya, issiqlik akkumulyatori, konveksiya, matematik modellashtirish, yarim siklli samaradorlik ko‘rsatkichi, harorat taqsimlanishi.Abstract
Issiqlik akkumulyatorlari (issiq suv saqlash baklari) qayta tiklanuvchi yoki aralash energiya manbalaridan
olingan issiqlik energiyasini saqlashda samarali hisoblanadi. Bunday tizimlarning samaradorligi energiya saqlash sig‘imi,
razryadlanish jarayonidagi issiqlik almashinuvi va harorat zonalarining barqarorligiga bog‘liq bo‘lib, optimal ishlash rejimini
aniqlash muhim ahamiyat kasb etadi. Tadqiqotda issiq suv saqlash bakining razryadlanish jarayonini baholash uchun bir
o‘lchovli matematik model qo‘llanildi. Modellashtirish natijalariga ko‘ra, 330 kg/soat massa oqimi sharoitida kiruvchi suv
harorati 16,5°C ga teng bo‘lgan holatda razryadlanish vaqti 1 980 soniya (33 daqiqa)ni tashkil etdi. Jarayon davomida
pastki qatlamlarda harorat tez pasaygani, yuqori qatlamlarda esa issiqlik saqlanishi uzoqroq davom etgani kuzatildi.
Tadqiqot issiq suv saqlash baklarining issiqlik samaradorligini baholash va energiya tizimlari uchun optimal boshqaruv
strategiyalarini ishlab chiqishda muhim amaliy ahamiyatga ega.
References
Xuyang Cui, Liyang Zhao, Junlan Yang, Ming Yin. A novel solar-coupled CO₂ transcritical heat pump system for building
heating and hot water supply: Comparative study and multi-objective optimization. Journal of Building Engineering,
(2025) 112339. https://doi.org/10.1016/j.jobe.2025.112339
Chenghao Li, Wei He, Yunfei Bai, Jihong Wang. A semi-analytic method for buoyancy-induced thermal stratification in
hot water tanks during standby periods. Applied Thermal Engineering, 249 (2024) 123440. https://doi.org/10.1016/j.
applthermaleng.2024.123440
Y. Siva Kumar Redda, A. M. Guruchethan, Simarpreet Singh, Sarun Kumar K., M. P. Maiya, Armin Hafner. CO₂ heat
pump integrated thermal storage for domestic hot water in hotels. Journal of Building Engineering, 89 (2024) 109270.
https://doi.org/10.1016/j.jobe.2024.109270
Dong Li and et al. Combined solar and ground source heat pump heating system with a latent heat storage tank as
a sustainable system to replace an oilfield hot water station. Energy, 307 (2024) 132726. https://doi.org/10.1016/j.
energy.2024.132726
World Energy Outlook 2025. 1–519.
Jun Bai and et al. Combined space cooling/heating and domestic hot water supply driven by data center waste heat:
Complementary energy conservation, economic capacity optimization and generic analysis framework. Building and
Environment, 283 (2025) 113402. https://doi.org/10.1016/j.buildenv.2025.113402
Zhihao Zhang and et al. Design and experimental analysis of energy-saving and heat storage of a hot water tank
based on the source-sink matching principle. Case Studies in Thermal Engineering, 41 (2023) 102672. https://doi.
org/10.1016/j.csite.2022.102672
Baihong Liu and et al. Effect of initial temperature of water in a solar hot water storage tank on the thermal stratification
under the discharging mode. Renewable Energy, 212 (2023) 994–1004. https://doi.org/10.1016/j.renene.2023.05.102
Angui Li, Feifei Cao, Wanqing Zhang, Bingjin Shi, Huang Li. Effects of different thermal storage tank structures on
temperature stratification and thermal efficiency during charging. Solar Energy, 173 (2018) 882–892. https://doi.
org/10.1016/j.solener.2018.08.025
Can Xu, Ming Liu, Shuai Jiao, Haiyu Tang, Junjie Yan. Experimental study and analytical modeling on the thermocline
hot water storage tank with radial plate-type diffuser. International Journal of Heat and Mass Transfer, 186 (2022)
https://doi.org/10.1016/j.ijheatmasstransfer.2021.122478
Yajun Deng, Dongliang Sun, Mingyu Niu, Bo Yu, Ruihao Bian. Performance assessment of a novel diffuser for stratified
thermal energy storage tanks – The nonequal-diameter radial diffuser. Journal of Energy Storage, 35 (2021) 102276.
https://doi.org/10.1016/j.est.2021.102276
Jiarong Li, Lixing Ding, Yong Wang, Tianming Zhong. Thermal performance of a solar water tank with variable inlet/
outlet under various charging strategies. Applied Thermal Engineering, 246 (2024) 122900. https://doi.org/10.1016/j.
applthermaleng.2024.122900
Hitesh Khurana, Rudrodip Majumdar, Sandip K. Saha. Improved realistic stratification model for estimating thermocline
thickness in vertical thermal energy storage undergoing simultaneous charging and discharging. Journal of Energy
Storage, 82 (2024) 110490. https://doi.org/10.1016/j.est.2024.110490
Hitesh Khurana, Rudrodip Majumdar, Sandip K. Saha. Thermal stratification characteristics during simultaneous
charging and discharging for different storage tank geometries with immersed discharging coil. Applied Thermal
Engineering, 225 (2023) 120235. https://doi.org/10.1016/j.applthermaleng.2023.120235
Qiong Li and et al. Thermocline dynamics in a thermally stratified water tank under different operation modes. Applied
Thermal Engineering, 212 (2022) 118560. https://doi.org/10.1016/j.applthermaleng.2022.118560
Y. Karlina, Y. Yerdesh, A. Toleukhanov, Y. Belyayev, H. S. Wang, O. Botella. Numerical Simulation Study of Thermal
Performance in Hot Water Storage Tanks with External and Internal Heat Exchangers. Energies (Basel), 17 (22), Nov.
https://doi:10.3390/en17225623
A. L. Nash, A. Badithela, N. Jain. Dynamic modeling of a sensible thermal energy storage tank with an immersed
coil heat exchanger under three operation modes. Applied Energy, 195 (2017) 877–889. https://doi:10.1016/j.
apenergy.2017.03.092
K. M. Powell, T. F. Edgar. An adaptive-grid model for dynamic simulation of thermocline thermal energy storage
systems. Energy Conversion and Management, 76 (2013) 865–873. https://doi:10.1016/j.enconman.2013.08.043
Downloads
Published
Issue
Section
License
Copyright (c) 2025 MUHANDISLIK VA IQTISODIYOT

This work is licensed under a Creative Commons Attribution 4.0 International License.