Application of an energy management system in combination with FMCS to high energy consuming IT industries of Taiwan

2011 ◽  
Vol 52 (8-9) ◽  
pp. 3060-3070 ◽  
Author(s):  
Shin-Ku Lee ◽  
Min-Cheng Teng ◽  
Kuo-Shun Fan ◽  
Kuan-Hsiung Yang ◽  
Richard S. Horng
Author(s):  
Т.А. Забазнова ◽  
Т.В. Секачева ◽  
С.Е. Карпушова

В нашей стране затраты на топливо и энергию составляют от 10 до 40% себестоимости продукции. Такой высокий уровень энергоемкости увеличивает затраты предприятия, связанные с производством продукции, и, как результат, снижает его конкурентоспособность. Поэтому реализация энергосберегающих программ на промышленных предприятиях становится первоочередной задачей. Стратегическое управление энергоэффективностью позволит поэтапно оптимизировать работу и значительно сократить расходы предприятия. В статье проведены анализ и оценка активности промышленного предприятия АО «Себряковцемент» с учетом оценки энергоемкости его деятельности. Для развития существующей системы управления энергозатратами промышленного предприятия предложена модель на основе стандарта ИСО. In our country, the cost of fuel and energy is from 10 to 40% of the cost of production. High energy consumption of products should be recognized as the main problem, due to the fact that it has an impact on increasing the cost of production and, as a result, on reducing the competitiveness of enterprises. Therefore, the implementation of energy-saving programs at industrial enterprises becomes a priority. Strategic management of energy efficiency will allow you to gradually optimize the work and significantly reduce the costs of the enterprise. The article analyzes and evaluates the activity of the industrial enterprise of company «Sebryakovcement», taking into account the assessment of the energy intensity of its activities. In the development of the existing energy management system of an industrial enterprise, a model based on the ISO standard is proposed.


2012 ◽  
Vol 524-527 ◽  
pp. 2899-2904
Author(s):  
Hui Qi ◽  
Fan Fei Zeng

The key technology in Energy Management System of Electric Vehicle is researched in this paper. The hybrid power system constituted by the battery and the ultra-capacitor can combine the advantage of the high energy density of battery and the high power density of ultra-capacitor. Firstly, through the analysis of different structures, a suitable one is selected for this system. And then the importance of Energy Management System in the Electric Vehicle system is dissertated in this paper. Secondly, some theoretical study for the regenerative brake of electric vehicle has been expressed. Finally, the theory was verified by some result of system simulation and experiments.


Energies ◽  
2020 ◽  
Vol 13 (23) ◽  
pp. 6354
Author(s):  
Yassine Chemingui ◽  
Adel Gastli ◽  
Omar Ellabban

Energy efficiency is a key to reduced carbon footprint, savings on energy bills, and sustainability for future generations. For instance, in hot climate countries such as Qatar, buildings are high energy consumers due to air conditioning that resulted from high temperatures and humidity. Optimizing the building energy management system will reduce unnecessary energy consumptions, improve indoor environmental conditions, maximize building occupant’s comfort, and limit building greenhouse gas emissions. However, lowering energy consumption cannot be done despite the occupants’ comfort. Solutions must take into account these tradeoffs. Conventional Building Energy Management methods suffer from a high dimensional and complex control environment. In recent years, the Deep Reinforcement Learning algorithm, applying neural networks for function approximation, shows promising results in handling such complex problems. In this work, a Deep Reinforcement Learning agent is proposed for controlling and optimizing a school building’s energy consumption. It is designed to search for optimal policies to minimize energy consumption, maintain thermal comfort, and reduce indoor contaminant levels in a challenging 21-zone environment. First, the agent is trained with the baseline in a supervised learning framework. After cloning the baseline strategy, the agent learns with proximal policy optimization in an actor-critic framework. The performance is evaluated on a school model simulated environment considering thermal comfort, CO2 levels, and energy consumption. The proposed methodology can achieve a 21% reduction in energy consumption, a 44% better thermal comfort, and healthier CO2 concentrations over a one-year simulation, with reduced training time thanks to the integration of the behavior cloning learning technique.


Energies ◽  
2021 ◽  
Vol 14 (18) ◽  
pp. 5976
Author(s):  
Muhammad Salman Sami ◽  
Muahmmad Abrar ◽  
Rizwan Akram ◽  
Muhmmad Majid Hussain ◽  
Mian Hammad Nazir ◽  
...  

Electric power reliability is one of the most important factors in the social and economic evolution of a smart city, whereas the key factors to make a city smart are smart energy sources and intelligent electricity networks. The development of cost-effective microgrids with the added functionality of energy storage and backup generation plans has resulted from the combined impact of high energy demands from consumers and environmental concerns, which push for minimizing the energy imbalance, reducing energy losses and CO2 emissions, and improving the overall security and reliability of a power system. It is now possible to tackle the problem of growing consumer load by utilizing the recent developments in modern types of renewable energy resources (RES) and current technology. These energy alternatives do not emit greenhouse gases (GHG) like fossil fuels do, and so help to mitigate climate change. They also have in socioeconomic advantages due to long-term sustainability. Variability and intermittency are the main drawbacks of renewable energy resources (RES), which affect the consistency of electric supply. Thus, utilizing multiple optimization approaches, the energy management system determines the optimum solution for renewable energy resources (RES) and transfers it to the microgrid. Microgrids maintain the continuity of power delivery, according to the energy management system settings. In a microgrid, an energy management system (EMS) is used to decrease the system’s expenses and adverse consequences. As a result, a variety of strategies and approaches are employed in the development of an efficient energy management system. This article is intended to provide a comprehensive overview of a range of technologies and techniques, and their solutions, for managing the drawbacks of renewable energy supplies, such as variability and load fluctuations, while still matching energy demands for their integration in the microgrids of smart cities.


2012 ◽  
Vol 132 (10) ◽  
pp. 695-697 ◽  
Author(s):  
Hideki HAYASHI ◽  
Yukitoki TSUKAMOTO ◽  
Shouji MOCHIZUKI

2012 ◽  
Vol 132 (10) ◽  
pp. 692-694 ◽  
Author(s):  
Yoshihiro OGITA ◽  
Yutaka IINO ◽  
Hideki HAYASHI

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