ASHRAE IJHVAC 6-2-2000 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第6卷第2号 2000年4月》.pdf
《ASHRAE IJHVAC 6-2-2000 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第6卷第2号 2000年4月》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE IJHVAC 6-2-2000 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第6卷第2号 2000年4月》.pdf(114页珍藏版)》请在麦多课文档分享上搜索。
1、I n t e r n at i o n a 1 J ou r n a 1 of H e at in g ,Ve n t il at in g, Air-conditioning and Refrigerating Research HVAC nor may any part of this book be reproduced, stored in a reheval system, or msmined in any form or by any mcans-electronic, photocopying, recording, or other-without permission i
2、n writing from ASHRAE. Abslrac Ei (Engineering Information, inc.) Ei Compendex and Engineering index; IS1 (Institute for Scientific Information) Web Science and Research Alert; and BSRIA (Building Services Research / , /,/,/,/, II I Capillary tube flow Y/If/II/I/1f1/1/11/,/,/,/qf I l Figure 2. Flow
3、inside a capillary tube Subcooled Liquid Region: The subcooled liquid region begins at the inlet of the capillary tube and ends at the point where the pressure has dropped to the saturated pressure. The conservation of mass relation for this region is (1) m Gc = - = constant AC The refrigerant behav
4、es as an incompressible fluid with constant specific volume and dynamic viscosity. The conservation of momentum relation applied to the control volume of length dz as indicated in Figure 2 gives where the momentum flows carried by the fluid into and out of the control volume are equal and cancel out
5、. The wall shear stress T, is given by (3) where the coefficient of friction fis a function of Reynolds number Re. In general, the-Reynolds number for fluid flowing in a capillary tube is greater than 10 O00 and the flow is fully turbulent. The coefficient of friction was assumed to be that for smoo
6、th tubes and given by the turbulent relations for Re 2 lo5: for lo5 I w 4 w I t? 4 A l- VI a which represents the pressure gradient in the subcooled liquid region. Metastable Liquid Region: HVACn P- O R lu -I a W I I U ni W v1 W e P- oo U 4 3 I W 4 e I VI e i- VI a a VOL. 6. No. 2 HVAC when the dome
7、stic cold water temperature rises to 30“C, the gas valve setting decreases 20%. One solution to this problem is to sense the domestic cold water temperature and include feedforward curves for a variety of domestic cold water temperatures; however, this requires the addition of a sensor, which increa
8、ses the cost of the product. It also does not eliminate the time and expense required to predetermine the feedforward relationships in a laboratory for each type of boiler or eliminate the uncertainties due to flow sensor miscalibration. A second solution is to develop a control algorithm that adapt
9、s to the changing conditions and automatically adjusts the feedforward relationship between the steady-state valve setting and DHW flow rate. The rest of this paper describes the adaptive fuzzy control algorithm that was developed to solve this problem, along with the laboratory test results that co
10、mpare the AFC algorithm with a conventional PI controller with feedforward compensation. O VI w I I V E 4 W v) w pc E oa V I W pc I v) a a a n f- v) 120 HVAC this means that the adaptation mechanism adjusts the controller parameters directly and a system identifier is not required. Numerous general
11、references on adaptive fuzzy control exist, includ- ing Cox (1993) and Wang (1994). Haissig et al. (1998) provide some specific background on the AFC. Input Membership Functions Feedback control of the DHW temperature is performed by measuring the DHW temperature, comparing it to the desired set poi
12、nt, and adjusting the gas valve accordingly (Figure 4). The gas valve setting is directly related to the burner pressure and controls the amount of heat supplied to the heat exchanger(s). The DHW flow rate sensor information is fed back to the controller for feedforward compensation. Each input to a
13、nd output from the controller has an associated set of membership functions. The AFC has two inputs (Figure 4). One input is the DHW temperature error input e, where which is the feedback input. The other input is the DHW flow rate input Vdhu, which is the feed- forward input. The first input e has
14、three membership functions with the linguistic labels-Negative, Zero, and Positive (Figure 5). When e is Negative, the DHW temperature is too warm; when e is Posi- tive, the DHW temperature is too cold. For an error inside the deadband, the gas valve position that is commanded is constant for a cons
15、tant DHW flow rate. The distance between points C and E (or D and C) defines the size of the deadband and is known as the biuserror. The equations for calculating the degrees of membership p, pzero, and pp, in the membership functions Nega- tive, Zero, and Positive for a given e are straightforward
16、and can be calculated from the geome- try shown in Figure 5. Combi-Boiler 9 o- r Q Q m =o 3 v) O O VI 9 u- u) P O O O O N J W w pc I VI 4 a ta t Lci Figure 4. Block Diagram of the Control System. The AFC acts as an adaptive PI controller with feedforward compensation to control the domestic hot wate
17、r temperature 122 HVAC C is at the center of the universe of discourse, which is zero. A and B are equidistant from C; D and E are equidistant from C.) a 3 r 1 8 E P Q-4 O Medium O0 E $A t2 Universe of Discourse DC E B Figure 6. Membership Functions for Domestic Hot Water Flow Rate Input (A and B de
18、fine the range of the universe of discourse; C is at the center of the universe of discourse, which is zero; A and B are equidistant from C; D and E are equidistant from C.) - : I L- .Lu- -L-L:- I _I :- -.:.I- .L- 1: :-*:- ll.,.l 1 -. ine seconu input vdhit.) iias LIIICC IIIGIIUGIIII IUIICLIUI WILII
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