Search results for "Load Control"

showing 10 items of 14 documents

Modeling Energy Demand Aggregators for Residential Consumers

2013

International audience; Energy demand aggregators are new actors in the energy scenario: they gather a group of energy consumers and implement a demand- response paradigm. When the energy provider needs to reduce the current energy demand on the grid, it can pay the energy demand aggregator to reduce the load by turning off some of its consumers loads or postponing their activation. Currently this operation involves only greedy energy consumers like industrial plants. In this paper we want to study the potential of aggregating a large number of small energy consumers like home users as it may happen in smart grids. In particular we want to address the feasibility of such approach by conside…

0209 industrial biotechnologydemand-response paradigm020209 energyEnergy current02 engineering and technologycomputer.software_genre7. Clean energyNews aggregatorload regulation[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]020901 industrial engineering & automationdemand side management; load regulation; queueing theory; smart power grids; demand-response paradigm; energy consumers; energy demand aggregator modeling; greedy energy consumers; home users; industrial plants; power load control; queuing theory; residential consumers; smart grids; Delays; Home appliances; Load modeling; Power demand; Sociology; Statistics; Switchesresidential consumerSociologySettore ING-INF/04 - Automatica0202 electrical engineering electronic engineering information engineeringindustrial plantenergy demand aggregator modelingDemand loadSimulationStatisticQueueing theoryDelayLoad modelingdemand side managementSettore ING-INF/03 - Telecomunicazionigreedy energy consumerpower load controlLoad balancing (electrical power)Poisson processEnvironmental economicsGridenergy consumerHome applianceSettore ING-IND/33 - Sistemi Elettrici Per L'EnergiaSmart gridQueueing theorymart gridLoad regulationqueuing theoryPower demandEnergy demand aggregatorsmart power gridcomputerSwitcheshome user
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Teletraffic Engineering for Direct Load Control in Smart Grids

2018

International audience; The traditional paradigm for power grid operation is to continuously adapt energy production to demand. This paradigm is challenged by the increasing penetration of renewable sources, that are more variable and less predictable. An alternative approach is the direct load control of some inherently flexible electric loads to shape the demand. Direct control of deferrable loads presents analogies with flow admission control in telecommunication networks: a request for network resources (bandwidth or energy) can be delayed on the basis of the current network status in order to guarantee some performance metrics. In this paper we go beyond such an analogy, showing that u…

Computer science020209 energyDistributed computingDirect controlEnergy Engineering and Power Technology02 engineering and technologySmart gridAdmission control; Direct load control; Privacy; Smart grid;7. Clean energyTeletraffic engineering[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]0202 electrical engineering electronic engineering information engineeringPower gridElectrical and Electronic EngineeringDirect load controlLeakage (electronics)Direct Load Controlbusiness.industryRenewable Energy Sustainability and the EnvironmentSettore ING-INF/03 - TelecomunicazioniBandwidth (signal processing)Admission Control[SPI.NRJ]Engineering Sciences [physics]/Electric powerAdmission controlRenewable energySmart gridControl and Systems EngineeringPrivacybusinessAdmission control
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Effect of Demand Side Management on the Operation of PV-Integrated Distribution Systems

2020

In this new era of high electrical energy dependency, electrical energy must be abundant and reliable, thus smart grids are conducted to deliver load demands. Hence, smart grids are implemented alongside distributed generation of renewable energies to increase the reliability and controllability of the grid, but, with the very volatile nature of the Distributed Generation (DG), Demand Side Management (DSM) helps monitor and control the load shape of the consumed power. The interaction of DSM with the grid provides a wide range of mutual benefits to the user, the utility and the market. DSM methodologies such as Conservation Voltage Reduction (CVR) and Direct Load Control (DLC) collaborate i…

Computer science020209 energyReliability (computer networking)conservation voltage reductiondistribution systems02 engineering and technologylcsh:TechnologyReduction (complexity)lcsh:Chemistry0202 electrical engineering electronic engineering information engineeringGeneral Materials ScienceInstrumentationlcsh:QH301-705.5distribution systemFluid Flow and Transfer Processesdistributed generationdemand side managementVoltage reductionbusiness.industrylcsh:TProcess Chemistry and Technology020208 electrical & electronic engineeringPhotovoltaic systemGeneral Engineeringdirect load controlGridlcsh:QC1-999Computer Science ApplicationsReliability engineeringRenewable energySettore ING-IND/33 - Sistemi Elettrici Per L'EnergiaSmart gridlcsh:Biology (General)lcsh:QD1-999lcsh:TA1-2040Distributed generationbusinesslcsh:Engineering (General). Civil engineering (General)lcsh:PhysicsApplied Sciences
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Measurement, Prediction, and Control of Individual Heart Rate Responses to Exercise-Basics and Options for Wearable Devices.

2018

The use of wearable devices or "wearables" in the physical activity domain has been increasing in the last years. These devices are used as training tools providing the user with detailed information about individual physiological responses and feedback to the physical training process. Advantages in sensor technology, miniaturization, energy consumption and processing power increased the usability of these wearables. Furthermore, available sensor technologies must be reliable, valid, and usable. Considering the variety of the existing sensors not all of them are suitable to be integrated in wearables. The application and development of wearables has to consider the characteristics of the p…

Computer scienceProcess (engineering)Physiologyheart rate control0206 medical engineeringControl (management)Wearable computerphenomenological approaches02 engineering and technologyReviewUSablelcsh:Physiology03 medical and health sciences0302 clinical medicineheart rate predictionHuman–computer interactionPhysiology (medical)training monitoringWearable technologyheart rate modelinglcsh:QP1-981business.industrywearable sensorsUsability030229 sport sciencesEnergy consumption020601 biomedical engineeringVariety (cybernetics)load controlddc:004businessFrontiers in physiology
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Building Automation and Control Systems and Electrical Distribution Grids: A Study on the Effects of Loads Control Logics on Power Losses and Peaks

2018

Growing home comfort is causing increasing energy consumption in residential buildings and a consequent stress in urban medium and low voltage distribution networks. Therefore, distribution system operators are obliged to manage problems related to the reliability of the electricity system and, above all, they must consider investments for enhancing the electrical infrastructure. The purpose of this paper is to assess how the reduction of building electricity consumption and the modification of the building load profile, due to load automation, combined with suitable load control programs, can improve network reliability and distribution efficiency. This paper proposes an extensive study on…

Control and OptimizationComputer science020209 energyEnergy Engineering and Power Technologydemand-side management (DSM)Power losse02 engineering and technologyLoad profilelcsh:TechnologyDemand responseBuilding AutomationBuilding Automation and Control (BAC)Thermal0202 electrical engineering electronic engineering information engineeringpower lossesdemand-side managementElectrical and Electronic EngineeringEngineering (miscellaneous)Building automationRenewable Energy Sustainability and the Environmentbusiness.industrylcsh:TControl (BAC)Energy consumptionAutomationReliability engineeringSettore ING-IND/33 - Sistemi Elettrici Per L'Energiademand responseControl systemload controlElectricitybusinessLow voltageBuilding Automation and Control (BAC); demand-side management; demand-side management (DSM); demand response; load control; power lossesEnergy (miscellaneous)Energies
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On the effects of BAC systems and load control programs on the utility grid

2017

The electricity demand increasing for the comfort improvement in residential buildings is nowadays stressing the MV and LV networks in urban areas. In this framework, the Distribution System Operators (DSO) are exposed to the risk of reliability decrease and there is, earlier than expected, the issue of new and substantial investments for enhancing the network infrastructure. Nevertheless, DSOs have a very strong inclination to defer investment in new facilities in favour of more "flexible measures" for improving the life of the existing components. Solutions of this type are primarily based on demand management, i.e. activities aimed at encouraging the end-users to a different/smart electr…

Demand managementEngineeringDemand managementEnvironmental Engineeringbusiness.industry020209 energyControl (management)Energy Engineering and Power TechnologyContext (language use)Load control02 engineering and technologyEnvironmental economicsInvestment (macroeconomics)GridIndustrial and Manufacturing EngineeringTransport engineeringSettore ING-IND/33 - Sistemi Elettrici Per L'EnergiaElectric power system0202 electrical engineering electronic engineering information engineeringElectricityElectrical and Electronic EngineeringbusinessBuilding automationBAC
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Scalable and Privacy-Preserving Admission Control for Smart Grids

2015

International audience; Energy demand and production need to be constantly matched in the power grid. The traditional paradigm to continuously adapt the production to the demand is challenged by the increasing penetration of more variable and less predictable energy sources, like solar photovoltaics and wind power. An alternative approach is the so called direct control of some inherently flexible electric loads to shape the demand. Direct control of deferrable loads presents analogies with flow admission control in telecommunication networks: a request for network resources (bandwidth or energy) can be delayed on the basis of the current network status in order to guarantee some performanc…

EngineeringControl and Optimizationlarge deviationRandom variableDistributed computingReal-time computingprivacyModeling and simulation[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]PhotovoltaicsAdmission control; Home appliances; Logic gates; Power demand; Privacy; Random variables; Shape; Control and Systems Engineering; Modeling and Simulation; Control and OptimizationWind poweradmission controlSettore ING-INF/03 - Telecomunicazionibusiness.industryBandwidth (signal processing)[SPI.NRJ]Engineering Sciences [physics]/Electric powerdirect load controlShapeLogic gateSmart gridsAdmission controlHome applianceSmart gridControl and Systems EngineeringModeling and SimulationScalabilityPower demand[MATH.MATH-OC]Mathematics [math]/Optimization and Control [math.OC]businessEnergy source
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Smart plugs: A low cost solution for programmable control of domestic loads

2014

International audience; Balancing energy demand and production is becoming a more and more challenging task for energy utilities. This is due to a number of different reasons among which the larger penetration of renewable energies which are more difficult to predict and the meagre availability of financial resources to upgrade the existing power grid. While the traditional solution is to dynamically adapt energy production to follow the time-varying demand, a new trend is to drive the demand itself by means of Direct Load Control (DLC). In this paper we consider a scenario where DLC functionalities are deployed at a large set of small deferrable energy loads, like appliances of residential…

EngineeringEnergy demandbusiness.industry[SPI.NRJ]Engineering Sciences [physics]/Electric powerComputer Science (all)direct load controlEnergy Engineering and Power TechnologySettore ING-INF/01 - ElettronicaRenewable energy[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]UpgradeEngineering (all)smart plugsLogic gateEmbedded systemServerThe InternetPower gridM2MbusinessActuatorInstrumentation
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Unidirectional Direct Load Control through Smart Plugs

2014

International audience; Balancing energy demand and production is be-coming a more and more challenging task for energy utilities also because of the larger penetration of renewable energies which are more difficult to predict and control. While the traditional solution is to dynamically adapt energy production to follow time-varying demand, a new trend is to drive demand itself. Most of the ongoing actions in this direction involve greedy energy consumers, like industrial plants, supermarkets or large buildings. Pervasive communication technologies may allow in the near future to push further the granularity of such approach, by having the energy utility interacting with residen-tial appli…

Engineeringbusiness.industryLoad control switchSettore ING-INF/03 - TelecomunicazioniDistributed computing[SPI.NRJ]Engineering Sciences [physics]/Electric powerReal-time computingProbabilistic logic[SCCO.COMP]Cognitive science/Computer scienceLoad balancing (electrical power)Renewable energySmart Grid; Demand Response; Direct Load Control; Energy SystemsDemand response[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]Smart gridSettore ING-INF/04 - Automatica[MATH.MATH-OC]Mathematics [math]/Optimization and Control [math.OC]GranularityInterruptbusinessSmart Grid Demand Response Direct Load Control Energy Systems
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Unidirectional probabilistic direct control for deferrable loads

2014

International audience; The idea of harnessing the inherent flexibility in demand of many types of electric loads has been largely discussed in the last years for coping with the need to maintain the energy demand-supply balance. In particular, the fine tuning of the operation conditions of different thermostatic loads (such as air-conditioning, refrigerators, etc.) has appeared as the most natural solution for load control with minimal user discomfort. In this paper we focus on an alternative approach: deploying simple open-loop control strategies for deferrable loads with minimal communication overhead. The idea is to send a multicast control message to a group of users, on the basis of t…

Flexibility (engineering)MulticastComputer scienceSettore ING-INF/03 - TelecomunicazioniControl (management)Real-time computing[SPI.NRJ]Engineering Sciences [physics]/Electric powerProbabilistic logicSmart Grid Energy System Direct Load Control Demand Response.Demand ResponseEnergy SystemSmart Grid; Energy System; Direct Load Control; Demand Response.[SPI.AUTO]Engineering Sciences [physics]/Automatic[INFO.INFO-NI]Computer Science [cs]/Networking and Internet Architecture [cs.NI]Null (SQL)Settore ING-INF/04 - AutomaticaControl theoryOverhead (computing)Smart GridEnergy (signal processing)Direct Load Control
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