ASHRAE ST-16-009-2016 Quantifying Efficiency Gains of Refrigeration Systems Using Advanced Expansion Valve Technology.pdf
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1、 2016 ASHRAE 89ABSTRACTCommercialandindustrialrefrigerationsystemsconsumeasignificant portion of U.S. electrical energy. In this research,advanced expansion valve and control algorithms are evaluatedto quantify the potential energy savings due to improved systemregulation and efficient start-up of v
2、apor-compression refriger-ation systems. The performance of the new micro-electro-mechanical system (MEMS) actuators with different controlstrategies is compared with that of the standard mechanicalvalvesandacommerciallyavailablesuperheatcontroller.Addi-tionally,thisresearchincludesacomprehensiveset
3、ofexperimen-talteststhatidentifythemosteffectiveelementsofadvancedvalvecontrol strategies, including the impact of refrigerant migrationcontrol strategies. The experimental results confirm that 30% to50% improvements in cyclic coefficient of performance (COP)are possible using improved expansion val
4、ve controls, while thebenefits of preventing refrigerant migration do not outweigh theadditional cooling achieved if refrigerant continues to flowthrough the expansion valve during the compressor OFF period.INTRODUCTIONNearly40%oftotalU.S.energyconsumptionin2011wasconsumedinresidentialandcommercialb
5、uildings,asfoundinthe U.S. Building Energy Data Book (EIA 2012). Supermar-kets are one of the most energy-intensive types of commercialbuildings, as significant electrical energy is used to maintainchilled and frozen food in both product display cases andwalk-in storage coolers. A typical supermarke
6、t consumesroughly 2 million kWh (6824 MMBtu) annually, and roughlyhalf is for refrigeration (Zhang 2006). Therefore, improvingthe energy efficiency of the supermarket refrigeration systemdirectly affects the stores operating expense.Forresidential,commercial,andindustrialair-conditioningand refriger
7、ation systems, vapor compression is the mostcommon technology. The vapor-compression cycle uses acirculating refrigerant as the medium that absorbs andremoves energy from the cooled space and subsequentlyrejects that energy elsewhere. An ideal vapor-compressioncycle and its pressure-enthalpy relatio
8、n are shown in Figure 1.Evaporator superheat, which is defined as the differential ofevaporator outlet temperature and the saturation temperatureofevaporatorpressure,isaquantitythathasanimportantrela-tion to system efficiency. Optimal efficiency is generallyobtained with a few degrees of evaporator
9、superheat.However, maintaining a nonzero value of superheat is criticalto prevent damaging the compressor with two-phase flowrefrigerant. The primary method of effectively regulating thesuperheat is modulating the expansion valve opening withmechanical or electrical feedback control mechanisms.Inthe
10、HVACChenetal.2002).EEVstypicallyregulatesuperheatbasedonstandard proportional-integral-derivative (PID) controllers.The improved control afforded by EEVs has the potential toavoid valve hunting, but poorly tuned EEV controllers maystill result in undesirable system behavior. Micro-electro-Quantifyin
11、g Efficiency Gains ofRefrigeration Systems UsingAdvanced Expansion Valve TechnologyKaimi Gao Bryan P. Rasmussen, PhD, PEStudent Member ASHRAE Member ASHRAEKaimi Gao is a doctoral candidate and Bryan P. Rasmussen is an associate professor of Mechanical Engineering in the Department ofMechanical Engin
12、eering at Texas A Aprea and Mastrullo 2002;Lazzarin and Noro 2008), selecting the parameters of EEVcontrollers can prove challenging. System and valve nonlin-earities can be significant, and several researchers havereported the need to schedule the controller gains based onthe operating conditions t
13、o avoid poor performance(Outtagarts et al. 1997; Doyle 2000). Multievaporatorsystems present additional difficulties due to the couplingbetween evaporators.This paper proposes using a cascaded control method-ology, capable of inherently addressing each of these chal-lengeswhileretainingthesimplicity
14、ofPID-typecontrollers.Previous studies have documented the benefits of this archi-tecture in providing nonlinear compensation (Elliott andRasmussen 2010) and in helping to decouple the dynamicsbetween multiple evaporators (Elliott et al. 2011).The cascaded controller has two feedback control loops.T
15、he first control loop regulates evaporator pressure with aproportional controller. Using high gains for this innercontrol loop provides effective nonlinear compensation butrequires an expansion valve with fast actuation. The secondcontrol loop uses a conventional proportional-integral (PI)controller
16、 to regulate evaporator superheat. The schematicstructureofthecascadedcontrollerisshowninFigure3.Theinner and outer control loops exploit the inherent time scaleseparation between evaporator pressure and superheatresponses. The system can compensate for sudden changesin compressor speed, as these dy
17、namics have a dominanteffect on evaporator pressure. In contrast, changes in ambi-ent air conditions result in slower drifts in evaporator refrig-erant outlet temperature and can easily be regulated by theouter control loop.Figure4showstheperformanceofthedesignedcascadedcontroller with MSEVs on a mu
18、lti-evaporator refrigerantsystem. The system was given superheat step changes. TheMSEVs reached the superheat setpoint in 220 seconds afterstart-up. When the superheat setpoint changed, the MSEVsrespondedquicklytotrackthesuperheatsetpoint,withlimitedcoupling evident between the evaporators. This dem
19、onstratesthe cascaded controllers quick response time and ability toreach operating conditions.Figure 3 Schematic structure of cascaded controller.Figure 4 Superheat setpoint change demonstrating control loopperformance.Published in ASHRAE Transactions, Volume 122, Part 2 92 ASHRAE TransactionsEXPER
20、IMENTAL TEST SYSTEMThe experimental system used in this efficiency study isa multievaporator commercial supermarket refrigerationsystem. A photograph and the schematic of the system areshown in Figure 5. These systems typically operate 24 hoursa day with periodic compressor ON-OFF cycles and with tw
21、o ormore defrost cycles each day. The compressor ON-OFF cycle isautomatically triggered by the discharge air temperature ther-mostat installed in the display case. In this experimentalsystem, the unit is designed to shut off when the discharge airtemperature falls below 1.1C (30F). The system has th
22、reeevaporators retrofitted with variable-speed fan control and asingle water-cooled condenser.To compare system performance using different controlstrategies, MSEVs are installed in parallel with the factory-installed TXVs. Additionally, two control algorithms areapplied with the MSEVs: 1) the propo
23、sed cascaded controllerand 2) the default first-generation adaptive PID control(APID) released in early 2014 and provided by the valvemanufacturer. The gains of the cascaded controller are tunedexperimentally to achieve acceptable superheat regulation,andthegainsoftheAPIDaretunedaspermanufacturergui
24、de-lines.Finally, two additional strategies are tested to determinethe impact of refrigeration migration management on thecyclicefficiencyofthesystem.Thisrequirestheinstallationofbypassvalvestoensurethatrefrigerantchargecanbevirtuallyisolatedduringperiodswherethecompressorisnotoperating.EXPERIMENTAL
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