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EnergyPlus¿Í MATLAB ¿¬µ¿À» ÅëÇÑ Á÷ÆØ½Ä AHU-¼ö·©½Ä VRF ½Ã½ºÅÛ ¸ðµ¨¸µ ±â¹ý¿¡ °üÇÑ ¿¬±¸ / Modeling Technique of DX AHU-Water Source VRF System through Co-simulation between EnergyPlus and Matlab |
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¿¬»óÈÆ(Yeon, Sang-Hun) ; ÀÌÁ¦Çå(Lee, Jehyeon) ; À̱¤È£(Lee, Kwang Ho) |
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Ãß°èÇмú¹ßÇ¥´ëȸ, 2016 (2016-11) |
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½ÃÀÛÆäÀÌÁö(147) ÃÑÆäÀÌÁö(3) |
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¿¡³ÊÁöÇ÷¯½º ; ¸ÅÆ®·¦ ; BCVTB ; ¼ö·©½Ä ; ³Ã¸ÅÀ¯·®°¡º¯ ; Á÷ÆØ½Ä °øÁ¶±â ; EnergyPlus ; Matlab ; BCVTB ; Water-cooled ; VRF ; Direct-Expansion AHU |
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The term variable refrigerant flow (VRF) refers to the ability of the system to control the amount of refrigerant flowing to the multiple evaporators (indoor units), enabling the use of many evaporators of differing capacities and configurations connected to a single condensing unit. The arrangement provides an individualized comfort control, and simultaneous heating and cooling in different zones. The purpose of this paper is to introduce modeling technique of direct expansion (DX) air handling unit (AHU)-water source VRF system through co-simulation between EnergyPlus and Matlab. Advanced control logic using EMS function was used in EnergyPlus for outdoor unit modeling and prediction models for cooling tower, boiler, pump were constructed in Matlab. BCVTB is used as middleware software platform to provide data exchange between EnergyPlus and Matlab. |