ASHRAE OR-05-3-3-2005 Direct Digital Temperature Humidity and Condensate Control for a Dedicated Outdoor Air-Ceiling Radiant Cooling Panel System《专用室外空气天花板辐射冷却小组制度的直接数字式的温度 湿度和冷凝水.pdf
《ASHRAE OR-05-3-3-2005 Direct Digital Temperature Humidity and Condensate Control for a Dedicated Outdoor Air-Ceiling Radiant Cooling Panel System《专用室外空气天花板辐射冷却小组制度的直接数字式的温度 湿度和冷凝水.pdf》由会员分享,可在线阅读,更多相关《ASHRAE OR-05-3-3-2005 Direct Digital Temperature Humidity and Condensate Control for a Dedicated Outdoor Air-Ceiling Radiant Cooling Panel System《专用室外空气天花板辐射冷却小组制度的直接数字式的温度 湿度和冷凝水.pdf(12页珍藏版)》请在麦多课文档分享上搜索。
1、OR-05-3-3 D i rect D i g it a I Tem pera t u re, H u m i d i ty, and Condensate Control for a Dedicated Outdoor Ai r-Ceiling Radiant Cooling Panel System Stanley A. Mumma, PhD, PE Fellow ASHRAE ABSTRACT The central thrust of this paper is to provide automation and control design guidance for enginee
2、rs considering dedi- cated outdoor air systems (DOAS) operating in parallel with ceiling radiant cooling panel systems (CRCP) in nonresiden- tial commercial and institutional applications. Thepaper iden- tijes the issues that must be addressed in the design of the control system and illustrates that
3、 the controls need not be complicated. The simplici of the controls is demonstrated via a case study of an existing DOAS-CRCP facility. Finally, the control challengespresented by low-occupancy spaces such as ofJices will be contrasted with those of high-density spaces such as schools andplaces of a
4、ssembly. INTRODUCTION DOAS-CRCP systems are applicable in low-density spaces typical of offices and for high-density spaces typical of schools and places of assembly. However, in the case of high- density spaces, reheat from recovered energy at the DOAS is necessary to avoid wasteful terminal reheat
5、 at off-design conditions. To minimize first cost and terminal reheat, high- density spaces call for a control approach uniquely different from that for low-density spaces where overcooling with the DOAS is extremely rare and terminal reheat is used sparingly. The DOAS-CRCP system design philosophy
6、is simple and straightfornard. The DOAS is used to deliver the required ventilation air to the breathing zone of each occupant without first mixing with recirculated air in a central AHU, thereby decoupling the ventilation function from the main thermal conditioning function. By adequately dehumidi%
7、ing the ventilation air, it can also serve to remove all of the space latent loads and, of course, the entire OA latent load. Depending Jae-Weon Jeong, PhD Associate Member ASHRAE upon the DOAS design supply air temperature (can be equal to the required DPT for low-density spaces or as high as room
8、neutral temperature for high-density spaces), the balance of the space sensible load is borne by the CRCP. The supply air temperature has a profound impact on both the first cost of the CRCP and the operating cost by virtue of the extent to which terminal reheat must be used. The DOAS-CRCP system ha
9、rdware and control design must consider and address the following issues: Comfort cooling Comfort heating Dehumidification during periods of elevated OA dew- point temperatures Humidification during periods of low OA dew-point temperatures Indoor air quality (IAQ) Air dimision performance index (ADP
10、I) (Mumma 2004) Condensate control, both active and passive (Mumma Spaces with movable sash, which offer additional con- densate control challenges (Mumma 2003) Internal generation and use patterns Selection of the variables to measure and the accuracy of instrumentation Transient response of instru
11、ments and system to pattern of use and weather changes Keep it simple to make the systems design, installation, maintenance, and operation easy The control hardware and software The need and/or desire for Web-based accessibility The need and desire for BACnet compatibility 2002) Stanley A. Mumma is
12、a professor and Jae-Weon Jeong is an instructor in the Department of Architectural Engineering, The Pennsylvania State University, University Park, Pa. 02005 ASHRAE. 547 Design documentation, schematics, points list, sequence of operation, and compliance with ASHRAE guideline 13-2000 (ASHRAE 2000) C
13、ommissioning Continuous monitoring and assessment (Mumma 2003) The above issues will be selectively addressed in this paper. BACNET-COMPATIBLE WEB-BASED CONTROLS FOR A SINGLE-ZONE DOAS-CRCP SYSTEM Such an operating system is illustrated in the Figure I schematic. Briefly, the OA is preconditioned as
14、 necessary with an enthalpy wheel, using the room return air, then cooled and dehumidified further with the cooling coil. The supply air temperature leaving the cooling coil is controlled with the three-way control valve V1. Finally the cold and dry 100% outdoor ventilation supply air is delivered t
15、o the space via high induction overhead diffusers. This system does not have any auxiliary preheat, terminal, or space heating. All heat comes from internal generation, and the OA is tempered with exhaust air heat recovered by the enthalpy wheel. During cold OA conditions when the OA must be tempere
16、d, the enthalpy wheels capacity to recover heat is achieved by modulating the enthalpy wheel on and off as necessary (limited to no more than four on-off cycles per hour) based upon the space conditions. The supply air temperature during cooling is modulated to satis9 the space conditions down to a
17、DPT of 52F (ll.l“C), but no lower. With thc supply air DPT at 52F (1 1.1 OC), the space DPT is maintained low enough that the CRCP will never form condensation when radiant cooling is used to meet the balance of the space sensible load. Two 5-ton (17.6 kW) air-cooled chillers working in parallel pro
18、vide chilled water. The chilled water first satisfies the needs of the cooling coil, then the CRCP. The three-way control valve V2 is modulated as necessary to meet the space DBT setpoint, limited by the space DPT. The room return air temperature and relative humidity are used to compute the space D
19、PT. The CRCP inlet water temperature is never permitted to drop below the space DPT. A passive fail-safe condensate sensor is used as a condensation prevention backup. The fail-safe condensate sensor uses a normally open switch, which opens when the first drop of condensate from the supply piping fa
20、lls on it. The sensors switch is hard wired into the three-way NC spring return control valve V2s power supply. The DOAS is constant volume, with no provision for space pressurization control. However, the space pressure is constantly monitored, and the relief fan performance period- ically adjusted
21、, to ensure long-term pressurization. It is desired to keep the space slightly pressurized (approximately 0.001 in. w.g. 0.25 Pa) to avoid the introduction of latent loads by way of infiltration. This is easily achieved, even in the very leaky early 1900s construction building where all six enclosur
22、e planes are subjected to exterior vapor and atmo- Radiant Panel I coranioneu space FM5 Figure I A single-zone DOAS-CRCP system. 548 D2 I A JOBRelaY Fresh Air Verlator I ASHRAE Transactions: Symposia spheric pressure. Introduction of infiltration at the envelope not only permits the undesirable tran
23、sport of moisture but also makes controlling the thermal climate near the exterior walls difficult during both summer and winter. As far as energy consumption is concerned, air leakage into the space is much more costly (almost seven times) than bringing that air into the building by way of a qualit
24、y total energy recovery (recovery effectiveness of 85%) DOAS. It is also very desirable to return as much of the supplied air to the enthalpy wheel for total energy recovery, so overpressurization must be avoided. ASHRAE Standard 90.1-200 1 addresses the issue of building envelope tightness, and it
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