Document Type : Original Article

Authors

1 Department of Mechanical Engineering, School of Engineering and Applied Sciences, Kampala International University, Kampala, Uganda

2 Department of Agricultural Engineering and Bio Resources, Michael Okpara University of Agriculture, Umuahia, Nigeria

3 Department of Electrical/Telecommunication/Computer Engineering, SEAS, Kampala International University, Kampala, Uganda

Abstract

The design of a flat-plate solar collector (FPSC) is accomplished by multiple input multiple output (MIMO) design technique. The design variables (absorber, fluid and glass temperatures; length, width, height of the FPSC) were the unknown variables in the commensurate thermal balance equations based on; component, overall and yardstick thermal balance on the FPSC. Then, simulator matrices were setup comprising of coefficient and column matrices of design functions. The elements of the coefficient matrix were the partial derivatives of the design functions with respect to the design variables. Besides the convective and radiative heat transfer coefficients were function of the design variables. The initial values of the design variables (307K, 334.5K, 368K, 2 m, 1 m, and 0.045m, respectively) were set, at the seventh iteration, the output variables (306.9K, 339.15K, 368.1K, 2.01m, 1.005m, 0.04m, respectively) merged as the design functions ® 0 with insignificant change in the design variables. The output results were used to simulate FPSC, to track its responses to changes in the physical conditions, the stimulation revealed some constraints in the design of the FPSC, which is vital information for the overall optimization of the FPSC. The design yardsticks; the thermal efficiency (0.76) and the effectiveness (0.4) are quite pragmatic. This shows that MIMO technique to thermal system design is effective as convergence among the design variables was sought. Moreover, MIMO considered all thermal losses instead of basing the yardsticks on top loss overall transfer coefficient alone; thus, neglecting sidewalls and base losses. Moreover, the advent of connecting box prepares the preheating unit for high temperature drying (> 150 oC) on integration with a reheating unit.

Keywords

1. Tamimi, A., 1986. Analysis and design of a novel flat plate solar collector. International Communications in Heat and Mass Transfer, 13(6): 651-657.
2. Shemelin, V. and Matuska, T., 2017. Detailed modeling of flat plate solar collector with vacuum glazing. International Journal of Photoenergy, 2017: 1-9.
3. Shire, G.S.F., Moss, R.W., Henshall, P., Arya, F., Eames, P.C. and Hyde, T., 2016. Development of an efficient low-and mediumtemperature vacuum flat-plate solar thermal collector. In: Renewable Energy in the Service of Mankind Vol II. Springer, Cham. pp. 859-866.
4. Kessentini, H., Castro, J., Capdevila, R. and Oliva, A., 2014. Development of flat plate collector with plastic transparent insulation and low-cost overheating protection system. Applied Energy, 133: 206- 223.
5. Duan, R., 2012. The efficiency of new solar flat-plate collector. In: Advanced Materials Research (Vol. 347). Trans Tech Publications Ltd., pp. 1337-1341.
6. Khorasanizadeh, H., Aghaei, A., Ehteram, H., Dehghani Yazdeli, R. and Hataminasar, N., 2014. Attaining optimum tilts of flat solar surfaces utilizing measured solar data: case study for Ilam, Iran. Iranian (Iranica) Journal of Energy and Environment, 5(3): 224-232.
7. Siebers, D.L. and Viskanta, R., 1979. Thermal analysis of some flatplate solar collector designs for improving performance. Journal of Energy, 3(1): 8-15.
8. Patil, P.P. and Deshmukh, D.S., 2015. Design considerations for flat plate solar water heater system. International Journal of Science, Spirituality, Business and Technology, 3(2): 21-25.
9. Bakari, R., Minja, R.J. and Njau, K.N., 2014. Effect of glass thickness on performance of flat plate solar collectors for fruits drying. Journal of Energy, 2014: 1-8.
10. Stoecker, W.F., 1980. Design of thermal systems. McGraw Hill Book Company.
11. Nnamchi, S.N., Nnamchi, O.A., Sangotayo, E.O., Mundu, M.M. and Edosa, O.O., 2019. Design and fabrication of insulation testing rig. Indian Journal of Engineering, 16: 60-79.
12. Nnamchi, S.N., Nnamchi, O.A., Odebiyi, O.S., Edosa, O.O. and Wanazusi, T., 2019. Experimental verification of suitability of insulation testing rig in determining thermophysical properties of insulating materials. Cogent Engineering, 6(1): 1-32.
13. Nnamchi, S.N., Nnamchi, O.A., Martins Onyekwelu Onuorah, E.O. and Sangotayo, V.G., 2019. Modelling and Simulation of Heat Transfer through the Finned Hollow Cylindrical Surfaces of an Insulation Testing Rig. World Journal of Modelling and Simulation, 15(3): 243- 261.
14. Kalogirou, S.A., 2013. Solar energy engineering: processes and systems. Academic Press.
15. Rosli, M.A.M., Misha, S., Sopian, K., Mat, S., Sulaiman, M.Y. and Salleh, E., 2014. Parametric analysis on heat removal factor for a flat plate solar collector of serpentine tube. World Applied Sciences Journal, 29(2): 184-187.
16. Malvi, C.S., Gupta, A., Gaur, M.K., Crook, R. and Dixon-Hardy, D.W., 2017. Experimental investigation of heat removal factor in solar flat plate collector for various flow configurations. International Journal of Green Energy, 14(4): 442-448.
17. Montoya-Márquez, O. and Flores-Prieto, J.J., 2018. Heat removal factor in flat plate solar collectors: indoor test method. Energies, 11(10): 1-12.
18. Ullah, F., Khattak, M.K., Kang, M., Li, N., Yang, J. and Wang, X., 2017. Numerical simulation on thermal performance of flat plate solar collector with double glass covers. Journal of Applied Sciences, 17(10): 502-510.
19. Ekramian, E., Etemad, S.G. and Haghshenasfard, M., 2014. Numerical analysis of heat transfer performance of flat plate solar collectors. Journal of Fluid Flow, Heat and Mass Transfer, 1: 38-42.
20. Kazeminejad, H., 2002. Numerical analysis of two dimensional parallel flow flat-plate solar collector. Renewable Energy, 26(2): 309-323.
21. Bolaji, B.O. and Abiala, I.O., 2012. Theoretical and Experimental Analyses of Heat Transfer in a Flat-Plate Solar Collector. Walailak Journal of Science and Technology, 9(3): 239-248.
22. Kumar, S. and Mullick, S.C., 2010. Wind heat transfer coefficient in solar collectors in outdoor conditions. Solar Energy, 84(6): 956-963.
23. Ma, J., Wang, H., Wang, Y., Sun, W. and Ji, J., 2015. Performance Investigation and Structure Optimization of a Flat Dual-Function Solar Collector. International Journal of Photoenergy, 2015: 1-11.
24. Rajput, R.K., 2009. Engineering thermodynamics: A computer approach (si units version). Jones & Bartlett Publishers.
25. Nnamchi, S.N., Sanya, O.D., Zaina, K. and Gabriel, V., 2018. Development of dynamic thermal input models for simulation of photovoltaic generators. International Journal of Ambient Energy, 1- 13. https://doi.org/10.1080/01430750.2018.1517676