| Literature DB >> 29495346 |
Bhagya Nathali Silva1, Murad Khan2, Kijun Han3.
Abstract
The emergence of smart devices and smart appliances has highly favored the realization of the smart home concept. Modern smart home systems handle a wide range of user requirements. Energy management and energy conservation are in the spotlight when deploying sophisticated smart homes. However, the performance of energy management systems is highly influenced by user behaviors and adopted energy management approaches. Appliance scheduling is widely accepted as an effective mechanism to manage domestic energy consumption. Hence, we propose a smart home energy management system that reduces unnecessary energy consumption by integrating an automated switching off system with load balancing and appliance scheduling algorithm. The load balancing scheme acts according to defined constraints such that the cumulative energy consumption of the household is managed below the defined maximum threshold. The scheduling of appliances adheres to the least slack time (LST) algorithm while considering user comfort during scheduling. The performance of the proposed scheme has been evaluated against an existing energy management scheme through computer simulation. The simulation results have revealed a significant improvement gained through the proposed LST-based energy management scheme in terms of cost of energy, along with reduced domestic energy consumption facilitated by an automated switching off mechanism.Entities:
Keywords: appliance scheduling; energy management; least slack time; load balancing; smart home
Year: 2018 PMID: 29495346 PMCID: PMC5877198 DOI: 10.3390/s18030685
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Shifting behavior of the generic load shift model.
Figure 2Shifting behavior of the flexible load shift model.
Figure 3Shifting behavior of the periodic load shift model.
Figure 4Overview of the proposed load balancing scheme and least slack time (LST)-based scheduling scheme for energy management.
Figure 5State chart diagram for domestic appliance scheduling.
Appliance states and descriptions.
| State | Description |
|---|---|
| OFF | The appliance is turned off |
| ON | The appliance is ready to be operational |
| FINISH | The appliance has completed the assigned task |
| OPERATIONAL | The appliance is currently performing a task |
| SLEEP | The appliance is in SLEEP mode due to an interruption or urgent task |
| INACTIVE | The appliance is disabled for operations |
Figure 6Energy consumption comparison with the scheme proposed in [2]. (a) Air conditioner results; (b) television results; (c) fan results; (d) iron results.
Figure 7Energy consumption comparison with the scheme in [2]. (a) Load balancing energy consumption; (b) scheduling energy consumption.
Figure 8Consumption load profile and cost profile (a) consumption load profile of general appliance operation and scheduled appliance operation; (b) consumption cost profile of general appliance operation and scheduled appliance operation.