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  4. Optimized Day-Ahead Pricing with Renewable Energy Demand-Side Management for Smart Grids
 
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Optimized Day-Ahead Pricing with Renewable Energy Demand-Side Management for Smart Grids

Journal
IEEE Internet of Things Journal
Journal Volume
4
Journal Issue
2
Pages
374-383
Date Issued
2017
Author(s)
Chiu T.-C.
Shih Y.-Y.
Pang A.-C.  
Pai C.-W.
DOI
10.1109/JIOT.2016.2556006
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/413206
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85019030854&doi=10.1109%2fJIOT.2016.2556006&partnerID=40&md5=0b9050b4cf88a2b5afc5d8619591f73d
Abstract
Internet of Things (IoT) has recently emerged as an enabling technology for context-aware and interconnected 'smart things.' Those smart things along with advanced power engineering and wireless communication technologies have realized the possibility of next generation electrical grid, smart grid, which allows users to deploy smart meters, monitoring their electric condition in real time. At the same time, increased environmental consciousness is driving electric companies to replace traditional generators with renewable energy sources which are already productive in user's homes. One of the most incentive ways is for electric companies to institute electricity buying-back schemes to encourage end users to generate more renewable energy. Different from the previous works, we consider renewable energy buying-back schemes with dynamic pricing to achieve the goal of energy efficiency for smart grids. We formulate the dynamic pricing problem as a convex optimization dual problem and propose a day-ahead time-dependent pricing scheme in a distributed manner which provides increased user privacy. The proposed framework seeks to achieve maximum benefits for both users and electric companies. To our best knowledge, this is one of the first attempts to tackle the time-dependent problem for smart grids with consideration of environmental benefits of renewable energy. Numerical results show that our proposed framework can significantly reduce peak time loading and efficiently balance system energy distribution. ? 2014 IEEE.
Subjects
Carbon emission trading
convex optimization
day-ahead pricing
Internet of Things (IoT)
renewable energy
smart grid
SDGs

[SDGs]SDG7

Other Subjects
Carbon; Convex optimization; Costs; Demand side management; Electric power transmission networks; Electric utilities; Energy efficiency; Internet of things; Renewable energy resources; Wireless telecommunication systems; Carbon emission trading; Day-ahead; Internet of Things (IOT); Renewable energies; Smart grid; Smart power grids
Type
journal article

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