255
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Fault-tolerant supervisory control of building condenser cooling water systems for energy efficiency

&
Pages 126-146 | Received 30 Dec 2010, Accepted 22 Feb 2011, Published online: 29 Feb 2012
 

Abstract

This article presents a fault-tolerant supervisory control strategy for building condenser cooling water systems. The proposed strategy mainly consists of a model-based predictive control (MPC) scheme, a fault detection and diagnosis (FDD) scheme and a fault accommodation and tolerant (FAT) scheme. The MPC scheme using systematic optimization is employed to identify optimal control settings for the local process controllers. The FDD scheme is utilized to detect and diagnose major possible faults that may happen in the routine operation of condenser cooling water systems. The faults considered mainly include critical sensor faults, physical component performance degradations, and malfunctions of control logics. According to the types of faults that happen, the FAT scheme is then used to handle the faults in order to regain the control as far as possible. The performance of this strategy is tested and evaluated in a simulated virtual system representing the actual condenser cooling water system in a super high-rise building. The results show that the proposed strategy is capable of maintaining acceptable control performance and can help save about 0.18%–5.23% total energy of the chillers and cooling towers when the operation of condenser cooling water systems suffers from some faults, as compared to that using the same control strategy but without using the FAT scheme.

Acknowledgment

The research work presented in this article was financially supported by a grant of the National 11-5 program of PRC and a grant from The Hong Kong Polytechnic University as well as the support from Sun Hung Kai Real Properties Limited.

Zhenjun Ma, PhD, is Lecturer. Shengwei Wang, PhD, CEng, Member ASHRAE, is Chair Professor

Log in via your institution

Log in to Taylor & Francis Online

PDF download + Online access

  • 48 hours access to article PDF & online version
  • Article PDF can be downloaded
  • Article PDF can be printed
USD 61.00 Add to cart

Issue Purchase

  • 30 days online access to complete issue
  • Article PDFs can be downloaded
  • Article PDFs can be printed
USD 78.00 Add to cart

* Local tax will be added as applicable

Related Research

People also read lists articles that other readers of this article have read.

Recommended articles lists articles that we recommend and is powered by our AI driven recommendation engine.

Cited by lists all citing articles based on Crossref citations.
Articles with the Crossref icon will open in a new tab.