Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction

Cilt: 4 Sayı: 2 1 Haziran 2014
  • Filipe André Barata
  • José M. Igreja
  • Rui Neves-silva
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Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction

Abstract

This paper presents a distributed predictive control methodology for indoor thermal comfort that optimizes the consumption of a limited shared energy resource using an integrated demand-side management approach that involves a power price auction plus an appliance loads allocation scheme. The control objective for each subsystem (house or building) aims to minimize the energy cost while maintaining the indoor temperature inside comfort limits. In a distributed coordinated multi-agent ecosystem, each house or building control agent achieves its objectives while sharing, among them, the available energy through the introduction of particular coupling constraints in their underlying optimization problem. Coordination is maintained by a daily green energy auction bring in a demand-side management approach. The implemented distributed MPC algorithm is described and validated with simulation studies.

Keywords

Kaynakça

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  5. T. Luo, G. Ault, S. Galloway, “Demand Side Management in a highly decentralized energy future”, Proceedings of 45th International Universities Power Engineering Conference (UPEC), 2010.
  6. D. Callaway, “Tapping the energy storage potential in electric loads to deliver load following and regulation, with application to wind energy”, Energy Conversion and Management. Pp 1389–1400. 2009.
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Ayrıntılar

Birincil Dil

İngilizce

Konular

-

Bölüm

-

Yazarlar

Filipe André Barata Bu kişi benim

José M. Igreja Bu kişi benim

Rui Neves-silva Bu kişi benim

Yayımlanma Tarihi

1 Haziran 2014

Gönderilme Tarihi

3 Şubat 2016

Kabul Tarihi

-

Yayımlandığı Sayı

Yıl 2014 Cilt: 4 Sayı: 2

Kaynak Göster

APA
Barata, F. A., Igreja, J. M., & Neves-silva, R. (2014). Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction. International Journal Of Renewable Energy Research, 4(2), 371-383. https://izlik.org/JA86KJ62JE
AMA
1.Barata FA, Igreja JM, Neves-silva R. Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction. International Journal Of Renewable Energy Research. 2014;4(2):371-383. https://izlik.org/JA86KJ62JE
Chicago
Barata, Filipe André, José M. Igreja, ve Rui Neves-silva. 2014. “Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction”. International Journal Of Renewable Energy Research 4 (2): 371-83. https://izlik.org/JA86KJ62JE.
EndNote
Barata FA, Igreja JM, Neves-silva R (01 Haziran 2014) Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction. International Journal Of Renewable Energy Research 4 2 371–383.
IEEE
[1]F. A. Barata, J. M. Igreja, ve R. Neves-silva, “Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction”, International Journal Of Renewable Energy Research, c. 4, sy 2, ss. 371–383, Haz. 2014, [çevrimiçi]. Erişim adresi: https://izlik.org/JA86KJ62JE
ISNAD
Barata, Filipe André - Igreja, José M. - Neves-silva, Rui. “Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction”. International Journal Of Renewable Energy Research 4/2 (01 Haziran 2014): 371-383. https://izlik.org/JA86KJ62JE.
JAMA
1.Barata FA, Igreja JM, Neves-silva R. Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction. International Journal Of Renewable Energy Research. 2014;4:371–383.
MLA
Barata, Filipe André, vd. “Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction”. International Journal Of Renewable Energy Research, c. 4, sy 2, Haziran 2014, ss. 371-83, https://izlik.org/JA86KJ62JE.
Vancouver
1.Filipe André Barata, José M. Igreja, Rui Neves-silva. Distributed MPC for Thermal Comfort and Load Allocation with Energy Auction. International Journal Of Renewable Energy Research [Internet]. 01 Haziran 2014;4(2):371-83. Erişim adresi: https://izlik.org/JA86KJ62JE