Model of Smart Greenhouse for Future Grid

被引:0
|
作者
Kovac, Zoltan [1 ]
Sadlon, Matej [1 ]
Ponican, Jan [1 ]
Janicek, Frantisek [1 ]
机构
[1] Slovak Univ Technol Bratislava, Fac Elect Engn & Informat Technol, Bratislava, Slovakia
来源
PROCEEDINGS OF THE 10TH INTERNATIONAL SCIENTIFIC SYMPOSIUM ON ELECTRICAL POWER ENGINEERING (ELEKTROENERGETIKA 2019) | 2019年
关键词
optimization of waste heat from LEDs; light and heat production; multifunctional energy system; continious greenhouse operation; cooling; active thermal barrier; demand and response; intermittent RES; grid stability support; smart grid; efficient appliance; DEMAND RESPONSE;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Article describes how to use a novelty in the state of art with the highest possible added value. The respective novel multifunctional technical solution is suitable to be applied in greenhouses and to replace several currently used individual technical systems. It is capable of using the waste heat generated by LED light sources and thus to work with both thermal energy and artificial light. The most important feature of the device is an ability to create an active thermal barrier reducing winter thermal loss of the greenhouse. This leads to an all year greenhouse operability allowing for a close energy and horticulture sector cooperation. Active fluid cooling of main appliances (LEDs) increases sustainability and reliability of the whole system. The described model represents an energy efficient and sustainable electrical appliance. In addition to that, this article reveals its potential of becoming a smart electricity consumer, because of its ability to adjust its consumption according to the balancing needs. To sum up, the article is trying to find a way of achieving food production increase and a grid stability.
引用
收藏
页码:415 / 420
页数:6
相关论文
共 50 条
  • [1] Proposing a Smart Electricity Pricing Model for Future Smart Grid
    Zahedi, A.
    2014 Australasian Universities Power Engineering Conference (AUPEC), 2014,
  • [2] Future Directions for Smart Grid: A Conceptual Model
    Li, Ke-Zhou
    Lao, Lai-Leng
    Guo, Yu-Qiang
    PROCEEDINGS OF THE 2015 INTERNATIONAL CONFERENCE ON MANAGEMENT ENGINEERING AND MANAGEMENT INNOVATION, 2015, 3 : 300 - 305
  • [3] Integration of Fog and IoT model for the future Smart grid
    Pant, Vishal
    Jain, Subhi
    Chauhan, Rahul
    2017 INTERNATIONAL CONFERENCE ON EMERGING TRENDS IN COMPUTING AND COMMUNICATION TECHNOLOGIES (ICETCCT), 2017, : 247 - 252
  • [4] Smart greenhouse covers: a look into the future
    Baeza, E. J.
    van Breugel, A. J. B.
    Hemming, S.
    Stanghellini, C.
    XI INTERNATIONAL SYMPOSIUM ON PROTECTED CULTIVATION IN MILD WINTER CLIMATES AND I INTERNATIONAL SYMPOSIUM ON NETTINGS AND SCREENS IN HORTICULTURE, 2020, 1268 : 213 - 224
  • [5] FUTURE ENERGY AND SMART GRID
    Kateeb, Ibraheem A.
    Burton, Larry
    El-Bathy, Naser
    Almansour, Faris Abdullah
    2012 ASEE ANNUAL CONFERENCE, 2012,
  • [6] Smart Grid: The future of energy
    Simon, M.
    ECN Electronic Component News, 2013, 57 (07): : 34 - 35
  • [7] A SMARTER GRID FOR A SMART FUTURE
    Anderson, Michael
    ELECTRONICS WORLD, 2010, 116 (1896): : 10 - 10
  • [8] The Future-Oriented Grid-Smart Grid
    Li, Qilin
    Zhou, Mingtian
    JOURNAL OF COMPUTERS, 2011, 6 (01) : 98 - 105
  • [9] Guest Editorial: Smart Meters in the Smart Grid of the Future
    Martins, Joao
    Strasser, Thomas I.
    Sanduleac, Mihai
    IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2022, 18 (01) : 653 - 655
  • [10] Future Smart Grid Prosumer Services
    Karnouskos, Stamatis
    2011 2ND IEEE PES INTERNATIONAL CONFERENCE AND EXHIBITION ON INNOVATIVE SMART GRID TECHNOLOGIES (ISGT EUROPE), 2011,