Simulation and Experimental Performance Analysis of Portable Locally-Made Solar-Powered Cooler for Vaccine Storage

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Poor storage conditions, particularly exposure to extreme temperatures, can significantly compromise vaccine efficacy, making them ineffective or harmful. This highlights the urgent need for adequate storage infrastructure and monitoring systems, especially in remote areas with limited healthcare resources. This study evaluates the performance of a locally-made solar-powered cooler designed for vaccine storage in such environments. A digital AKO thermostat was integrated to control the compressor according to specified temperature limits, alongside a data logger for continuous temperature monitoring and a fluke device for DC and voltage measurements. The experimental results, validated against existing literature, were reliable and accurate. Key findings reveal that the cooler can reduce temperature to -14.9°C within 180 minutes, surpassing the performance of previous models that attained a temperature of -10°C after 144 minutes. The optimal insulation thickness for maintaining a cooling temperature of -15°C was determined to be 0.07 m using polyurethane insulation material, compared to 0.129 m with Feather Fiber, reflecting a 45.7% increase in efficiency at an ambient temperature of 42°C. Similar results were observed at an ambient temperature of 32°C. Modeling outcomes provided valuable guidance for the experimental design and comparative analysis.

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February 2025

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© 2025 Trans Tech Publications Ltd. All Rights Reserved

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[1] B. Su, T. Goh, B. W. Ang, and T. S. Ng, "Energy consumption and energy efficiency trends in Singapore: The case of a meticulously planned city," Energy Policy, vol. 161, p.112732, Feb. 2022.

DOI: 10.1016/J.ENPOL.2021.112732

Google Scholar

[2] B. Kumar, D. Garg, K. Swamy, and P. Kumar, "Clean Energy Production Using Solar Energy Resources," p.269–288, 2022.

DOI: 10.1007/978-981-16-9135-5_12

Google Scholar

[3] M. Seraj, M. Parvez, S. Ahmad, and O. Khan, "Sustainable energy transition and decision-making for enhancing the performance of building equipment in diverse climatic conditions," Green Technol. Sustain., vol. 1, no. 3, p.100043, Sep. 2023.

DOI: 10.1016/J.GRETS.2023.100043

Google Scholar

[4] M. W. Jabbar, M. H. Naeem, A. Muneer, U. Rehman, and T. Riaz, "Solar Powered DC Refrigerator for Small Scale Applications †," p.10–13, 2022.

DOI: 10.3390/engproc2021012098

Google Scholar

[5] A. H. Alami et al., "Management of potential challenges of PV technology proliferation," Sustain. Energy Technol. Assessments, vol. 51, p.101942, Jun. 2022.

DOI: 10.1016/J.SETA.2021.101942

Google Scholar

[6] A. Al-alili, Y. Hwang, and R. Radermacher, "ScienceDirect Review of solar thermal air conditioning technologies ` se des technologies de conditionnement d ' air solaire Synthe," Int. J. Refrig., vol. 39, p.4–22, 2013.

DOI: 10.1016/j.ijrefrig.2013.11.028

Google Scholar

[7] H. Nkoobe, "Real-time medical cold storage monitoring and control system," 2023, Accessed: Feb. 02, 2024. [Online]. Available: https://ir.busitema.ac.ug/handle/20.500.12283/3612

Google Scholar

[8] S. Devrani, R. Tiwari, N. Khan, K. Sankar, and S. Patil, "Enhancing the insulation capability of a vaccine carrier box : An engineering approach Citation for the original published paper ( version of record ): Enhancing the insulation capability of a vaccine carrier box : An engineering approach," 2021.

DOI: 10.1016/j.est.2020.102182

Google Scholar

[9] K. Mahachi et al., "Zero- or missed-dose children in Nigeria: Contributing factors and interventions to overcome immunization service delivery challenges," Vaccine, vol. 40, no. 37, p.5433–5444, Sep. 2022.

DOI: 10.1016/J.VACCINE.2022.07.058

Google Scholar

[10] M. Cattin, S. Jonnalagedda, S. Makohliso, and K. Schönenberger, "The status of refrigeration solutions for last mile vaccine delivery in low-income settings," Vaccine X, vol. 11, p.100184, 2022.

DOI: 10.1016/j.jvacx.2022.100184

Google Scholar

[11] U. Kartoglu and H. Ames, "Ensuring quality and integrity of vaccines throughout the cold chain: the role of temperature monitoring," Expert Rev. Vaccines, vol. 21, no. 6, p.799–810, 2022.

DOI: 10.1080/14760584.2022.2061462

Google Scholar

[12] G. M. Sobamowo et al., "Challenges of energy storage devices in off-grid solar photovoltaic cold-chain systems for COVID-19 vaccine preservation in developing countries," no. December, 2023.

DOI: 10.15406/ipcse.2023.06.00134

Google Scholar

[13] X. Xie et al., "New theoretical ISM-K2 Bayesian network model for evaluating vaccination effectiveness," J. Ambient Intell. Humaniz. Comput., vol. 14, no. 9, p.12789–12805, Sep. 2023.

DOI: 10.1007/s12652-022-04199-9

Google Scholar

[14] M. Cattin, S. Jonnalagedda, S. Makohliso, and K. Schönenberger, "The status of refrigeration techniques for vaccine storage and transportation in low-income settings," 2020.

DOI: 10.31224/OSF.IO/GX8FN

Google Scholar

[15] J. Du, B. Nie, Y. Zhangc, Z. Du, L. Wanga, and Y. Dinga, "Cooling performance of a thermal energy storage-based portable box for cold chain applications," J. Energy Storage, vol. 28, no. January, p.101238, 2020.

DOI: 10.1016/j.est.2020.101238

Google Scholar

[16] R. M. Uddin et al., "Energy analysis of a solar driven vaccine refrigerator using environment-friendly refrigerants for off-grid locations," Energy Convers. Manag. X, vol. 11, no. June, p.100095, 2021.

DOI: 10.1016/j.ecmx.2021.100095

Google Scholar

[17] F. S. Bayraktar and R. Kose, "Phase change materials: types, properties and applications in buildings," vol. 1, p.190–210, 2022.

DOI: 10.34186/klujes.1126167

Google Scholar

[18] A. K. Ray, S. Singh, and D. Rakshit, "Comparative study of cooling performance for portable cold storage box using phase change medium Solid-liquid Latent heat Energy stored ( J ) Temperature ( K )," Therm. Sci. Eng. Prog., vol. 27, no. November 2021, p.101146, 2022.

DOI: 10.1016/j.tsep.2021.101146

Google Scholar

[19] O. T. Oginni et al., "Thermodynamic Performance Analysis of Cascade Vapour Refrigeration System Using Different Refrigerant Pairs: A Review," vol. 6, no. 1, p.130–142, 2023, [Online]. Available: https://www.researchgate.net/publication/371859130

Google Scholar

[20] Y. Li, D. Yang, J. Xie, and J. Wang, "Review on research and application of phase change materials in cold storage refrigerator Review on research and application of phase change materials in cold storage refrigerator," 2021.

DOI: 10.1088/1755-1315/766/1/012094

Google Scholar

[21] M. S. Deshmukh, D. S. Deshmukh, and S. P. Chavhan, "A critical assessment of the implementation of phase change materials in the VCC of refrigerator," vol. 8, no. 4, p.562–572, 2022.

DOI: 10.18186/thermal.1149392

Google Scholar

[22] H. Tan, L. Xu, L. Yang, M. Bai, and Z. Liu, "Operation performance of an ultralow-temperature cascade refrigeration freezer with environmentally friendly refrigerants R290-R170," Environ. Sci. Pollut. Res., vol. 30, no. 11, p.29790–29806, 2023.

DOI: 10.1007/s11356-022-24310-z

Google Scholar

[23] F. Aqilah, M. Islam, F. Juretic, J. Guerrero, D. Wood, and F. Nasir Ani, "Study of Mesh Quality Improvement for," IIUM Eng. J., vol. 19, no. 2, p.203–212, 2018.

DOI: 10.31436/iiumej.v19i2.905

Google Scholar

[24] N. Toyoda, K. Uematsu, C. Li, Q. Guan, H. Vasudev, and L. Thakur, "Performance of hybrid nano-micro reinforced mg metal matrix composites brake calliper : simulation approach Performance of hybrid nano-micro reinforced mg metal matrix composites brake calliper : simulation approach," 2017.

DOI: 10.1088/1757-899X/257/1/012060

Google Scholar

[25] ANSYS, "Ansys R21.2 Fluent, Canonsburg: ANSYS, Inc..," no. January, 2021.

Google Scholar

[26] Y. Wang et al., "Numerical simulation study on the fluid excitation force on a nuclear fuel rod with a spacer grid," Ann. Nucl. Energy, vol. 180, p.109472, Jan. 2023.

DOI: 10.1016/J.ANUCENE.2022.109472

Google Scholar

[27] K. Suresh and S. P. Regalla, "Effect of mesh parameters in finite element simulation of single point incremental sheet forming process," Procedia Mater. Sci., vol. 6, no. Icmpc, p.376–382, 2014.

DOI: 10.1016/j.mspro.2014.07.048

Google Scholar

[28] H. Dragani and D. Varevac, "Analysis of Blast Wave Parameters Depending on Air Mesh Size," vol. 2018, 2018.

Google Scholar

[29] A. Kherkhar, Y. Chiba, A. Tlemçani, and H. Mamur, "Thermal Engineering Thermal investigation of a thermoelectric cooler based on Arduino and PID control approach," Case Stud. Therm. Eng., vol. 36, no. November 2021, p.102249, 2022.

DOI: 10.1016/j.csite.2022.102249

Google Scholar

[30] Z. Zhu, K. Liang, Z. Li, H. Jiang, and Z. Meng, "A numerical model of a linear compressor for household refrigerator," Appl. Therm. Eng., vol. 198, no. August, p.117467, 2021.

DOI: 10.1016/j.applthermaleng.2021.117467

Google Scholar

[31] N. V. Gama, A. Ferreira, and A. Barros-Timmons, "Polyurethane foams: Past, present, and future," Materials (Basel)., vol. 11, no. 10, 2018.

DOI: 10.3390/ma11101841

Google Scholar

[32] A. H. Sabry and P. J. Ker, "Improvement on energy consumption of a refrigerator within PV system including battery storage," Energy Reports, vol. 7, p.430–438, 2021.

DOI: 10.1016/j.egyr.2021.01.011

Google Scholar

[33] R. Abinav, G. K. Nambiar, and S. Debjyoti, "A Case Study of a Low Powervapour Compression Refrigeration System A CASE STUDY OF A LOW POWERVAPOR," 2016.

DOI: 10.1088/1757-899X/149/1/012226

Google Scholar

[34] E. Bjork and B. Palm, "Performance of a domestic refrigerator under influence of varied expansion device capacity , refrigerant charge and ambient temperature ´ rateur domestique muni d ' un de ´ tendeur a Performance d ' un re ´ variable , selon la charge en frigorige ` ne et," vol. 29, p.789–798, 2006.

DOI: 10.1016/j.ijrefrig.2005.11.008

Google Scholar

[35] S. Banjo et al., "Evaluation analysis of a developed solar refrigerator using conventional refrigerant for rural and medical applications Evaluation analysis of a developed solar refrigerator using conventional refrigerant for rural and medical applications," 2021.

DOI: 10.1088/1755-1315/665/1/012028

Google Scholar

[36] R. P. Praveen, S. M. Kantha, N. Ramadoss, and M. Arul, "Enhancing desalination efficiency using waste heat from household air conditioning: A heat pipe-assisted HDH system performance analysis," Sep. Purif. Technol., vol. 338, p.126563, Jun. 2024.

DOI: 10.1016/J.SEPPUR.2024.126563

Google Scholar