A New Model to Perform Preliminary Evaluations of Complex Systems for the Production of Energy for Buildings: Case Study
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A New Model to Perform Preliminary Evaluations of Complex Systems for the Production of Energy for Buildings: Case Study

Authors: Roberto de Lieto Vollaro, Emanuele de Lieto Vollaro, Gianluca Coltrinari

Abstract:

The building sector is responsible, in many industrialized countries, for about 40% of the total energy requirements, so it seems necessary to devote some efforts in this area in order to achieve a significant reduction of energy consumption and of greenhouse gases emissions. The paper presents a study aiming at providing a design methodology able to identify the best configuration of the system building/plant, from a technical, economic and environmentally point of view. Normally, the classical approach involves a building's energy loads analysis under steady state conditions, and subsequent selection of measures aimed at improving the energy performance, based on previous experience made by architects and engineers in the design team. Instead, the proposed approach uses a sequence of two wellknown scientifically validated calculation methods (TRNSYS and RETScreen), that allow quite a detailed feasibility analysis. To assess the validity of the calculation model, an existing, historical building in Central Italy, that will be the object of restoration and preservative redevelopment, was selected as a casestudy. The building is made of a basement and three floors, with a total floor area of about 3,000 square meters. The first step has been the determination of the heating and cooling energy loads of the building in a dynamic regime by means, which allows simulating the real energy needs of the building in function of its use. Traditional methodologies, based as they are on steady-state conditions, cannot faithfully reproduce the effects of varying climatic conditions and of inertial properties of the structure. With this model is possible to obtain quite accurate and reliable results that allow identifying effective combinations building-HVAC system. The second step has consisted of using output data obtained as input to the calculation model, which enables to compare different system configurations from the energy, environmental and financial point of view, with an analysis of investment, and operation and maintenance costs, so allowing determining the economic benefit of possible interventions. The classical methodology often leads to the choice of conventional plant systems, while our calculation model provides a financial-economic assessment for innovative energy systems and low environmental impact. Computational analysis can help in the design phase, particularly in the case of complex structures with centralized plant systems, by comparing the data returned by the calculation model for different design options.

Keywords: Energy, Buildings, Systems, Evaluation.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1100182

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References:


[1] Salata F., de Lieto Vollaro A., de Lieto Vollaro R., Mancieri L. Method for energy optimization with reliability analysis of a trigeneration and teleheating system on urban scale: a case study. Energy and Buildings 86 (2015) pp. 118–136.
[2] Coppi, M., Quintino, A., Salata, F.- Fluid dynamic feasibility study of solar chimney in residential buildings (2011) International Journal of Heat and Technology, 29 (1), pp. 1-5.
[3] Peruzzi, L., Salata, F., De Lieto Vollaro, A., De Lieto Vollaro, R. - The reliability of technological systems with high energy efficiency in residential buildings (2014) Energy and Buildings, 68 (PART.A), pp. 19-24.
[4] De Lieto Vollaro R., Guattari C., Evangelisti L., Battista G., Carnielo E., Gori P., “Building energy performance analysis: A case study ", 2015, Energy and Buildings, 87, pp. 87-94
[5] Salata F., De Lieto Vollaro A., De Lieto Vollaro R., A case study of technical and economic comparison among energy production systems in a complex of historic buildings in Rome. (2014) Energy Procedia, 45, pp. 482-491.
[6] Salata, F., De Lieto Vollaro, A., De Lieto Vollaro, R., Davoli, M.- Plant reliability in hospital facilities (2014) Energy Procedia, 45, pp. 1195-1204.
[7] G. O. Young, “Synthetic structure of industrial plastics (Book style with paper title and editor),” in Plastics, 2nd ed. vol. 3, J. Peters, Ed. New York: McGraw-Hill, 1964, pp. 15–64.
[8] M. Young, The Technical Writers Handbook. Mill Valley, CA: University Science, 1989.
[9] Y. Yorozu, M. Hirano, K. Oka, and Y. Tagawa, “Electron spectroscopy studies on magneto-optical media and plastic substrate interfaces (Translation Journals style),” IEEE Transl. J. Magn.Jpn., vol. 2, Aug. 1987, pp. 740–741 (Dig. 9th Annu. Conf. Magnetics Japan, 1982, p. 301).
[10] Salata F., De Lieto Vollaro A., Ferraro A., An economic perspective on the reliability of lighting systems in building with highly efficient energy: A case study (2014) Energy Conversion and Management, 84, pp. 623-632.
[11] W.-K. Chen, Linear Networks and Systems (Book style). Belmont, CA: Wadsworth, 1993, pp. 123–135.
[12] H. Poor, An Introduction to Signal Detection and Estimation. New York: Springer-Verlag, 1985, ch. 4.
[13] E. H. Miller, “A note on reflector arrays (Periodical style—Accepted for publication),” IEEE Trans. Antennas Propagat., to be published.
[14] J. Wang, “Fundamentals of erbium-doped fiber amplifiers arrays (Periodical style—Submitted for publication),” IEEE J. Quantum Electron., submitted for publication.
[15] C. J. Kaufman, Rocky Mountain Research Lab., Boulder, CO, private communication, May 1995.
[16] R. W. Lucky, “Automatic equalization for digital communication,” Bell Syst. Tech. J., vol. 44, no. 4, pp. 547–588, Apr. 1965.
[17] G. R. Faulhaber, “Design of service systems with priority reservation,” in Conf. Rec. 1995 IEEE Int. Conf. Communications, pp. 3–8.
[18] Evangelisti L., Battista G., Guattari C., Basilicata C., De Lieto Vollaro R., “Analysis of Two Models for Evaluating Energy Performance of Different Buildings”, 2014, Sustainability, 6, pp. 5311-5321
[19] J. U. Duncombe, “Infrared navigation—Part I: An assessment of feasibility (Periodical style),” IEEE Trans. Electron Devices, vol. ED-11, pp. 34–39, Jan. 1959.
[20] De Lieto Vollaro R., Evangelisti L., Carnielo E., Battista G., Gori P., Guattari C., Fanchiotti A., “An integrated approach for an historical buildings energy analysis in a smart cities perspective”, 2014, Energy Procedia, 45, pp. 372-378
[21] Battista G., Evangelisti L., Guattari C., Basilicata C., De Lieto Vollaro R. Buildings Energy Efficiency: Interventions Analysis under a Smart Cities Approach. Sustainability 2014; 6: 4694-4705.
[22] Evangelisti L., Battista G., Guattari C., Basilicata C., De Lieto Vollaro R. Influence of the Thermal Inertia in the European Simplified Procedures for the Assessment of Buildings’ Energy Performance. Sustainability 2014; 6: 4514-4524.
[23] De Lieto Vollaro R., Evangelisti L., Battista G., Gori P., Guattari C., Fanchiotti A. Bus for Urban Public Transport: Energy Performance Optimization. Energy Procedia 2014; 45: 731-738.
[24] B. Smith, “An approach to graphs of linear forms (Unpublished work style),” unpublished.
[25] W. D. Doyle, “Magnetization reversal in films with biaxial anisotropy,” in 1987 Proc. INTERMAG Conf., pp. 2.2-1–2.2-6.