scholarly journals Characterizing the Effect of an Off-Peak Ground Pre-1 Cool Control Strategy 2 on Hybrid Ground Source Heat Pump Systems

Author(s):  
Adam Alexandar Alaica ◽  
Seth B. Dworkin

Geo-exchange systems are a sustainable alternative to conventional space conditioning systems due to their high operating efficiency, resulting in reduced energy consumption and greenhouse gas emissions. However, geo-exchange’s ability to penetrate the market has been throttled by large capital investments, resulting in undesirable payback periods. Optimized hybrid ground source heat pump systems (HGSHP) systems have been introduced as a remedy to overcome the current economic hurtles associated to the installation of geo-exchange systems. In both the literature, as well as in practice, there still remains potential for increased economic feasibility of this technology through integration of intelligent operational strategies. This paper presents a novel control methodology referred to as an off-peak ground pre-cool strategy, employing a time-of-use conscious operating logic which artificially pre-condition the system’s bore-field. Reducing peak power consumption is achieved by creating improved thermal characteristics during mid-peak/peak time-of-use operating brackets. A comprehensive numerical model was developed to characterize the operation of HGSHP systems for three real case studies. The mode implemented a base case set-point control scheme, used as a reference to assess the operational benefit of the proposed off-peak ground pre-cool control strategy. The preliminary analyses indicated operational cost savings of up to 16.4%, under specific pre-cool scheduling. The strategy indicated reductions in both carbon emission and peak power consumption of up t 19 15.0% and 58.5%, respectively. In all cases increasing cooling supplied by the hybrid geo 20 exchange system was indicated, with a maximum observed capacity increase of 43.7%.

2021 ◽  
Author(s):  
Adam Alexandar Alaica ◽  
Seth B. Dworkin

Geo-exchange systems are a sustainable alternative to conventional space conditioning systems due to their high operating efficiency, resulting in reduced energy consumption and greenhouse gas emissions. However, geo-exchange’s ability to penetrate the market has been throttled by large capital investments, resulting in undesirable payback periods. Optimized hybrid ground source heat pump systems (HGSHP) systems have been introduced as a remedy to overcome the current economic hurtles associated to the installation of geo-exchange systems. In both the literature, as well as in practice, there still remains potential for increased economic feasibility of this technology through integration of intelligent operational strategies. This paper presents a novel control methodology referred to as an off-peak ground pre-cool strategy, employing a time-of-use conscious operating logic which artificially pre-condition the system’s bore-field. Reducing peak power consumption is achieved by creating improved thermal characteristics during mid-peak/peak time-of-use operating brackets. A comprehensive numerical model was developed to characterize the operation of HGSHP systems for three real case studies. The mode implemented a base case set-point control scheme, used as a reference to assess the operational benefit of the proposed off-peak ground pre-cool control strategy. The preliminary analyses indicated operational cost savings of up to 16.4%, under specific pre-cool scheduling. The strategy indicated reductions in both carbon emission and peak power consumption of up t 19 15.0% and 58.5%, respectively. In all cases increasing cooling supplied by the hybrid geo 20 exchange system was indicated, with a maximum observed capacity increase of 43.7%.


2021 ◽  
Author(s):  
Adam Alexander Alaica

Hybrid Ground-Source Heat Pump (HGSHP) systems have been introduced as a remedy to overcome the current financial hurtles associated to the installation of geo-exchange technology. However, there still remains potential for increased economic feasibility of geo-exchange through proactive operation prefaced with higher level control. This study introduces a control strategy referred to as an off-peak ground pre-cool, employing time-of-use conscious operating logic capable of facilitating artificial bore-field pre-conditioning to improve a geo-exchange system’s cooling mode performance. Artificial pre-conditioning of a system’s bore-field introduces the potential to improve the bore-field’s thermal characteristics in a controlled manner. With improved thermal characteristics a bore-field can be exploited more efficiently during the following peak periods; introducing additional economic incentives by reducing peak power consumption attributed to space cooling. This study presents a multifaceted approach which intends to concurrently address improving system economics and aid in the balancing of the electrical grid.


2020 ◽  
Vol 24 (2 Part A) ◽  
pp. 977-989
Author(s):  
Salih Coskun

In order to contribute to widespread use of RES in Turkey, a solar-assisted ground source heat pump system was modeled using TRNSYS software and simulated for heating and supplying daily hot water to meet the needs of a restaurant in five sample provinces having different climatic conditions. During the simulation, the dining room temperature of the restaurant was kept constant at 22?C during the winter season and a total of 300 Lph of water (55?C) was used for 15 minutes four times a day. According to the simulation results, power consumption rates in the solar-assisted ground source heat pump system were determined as about 60% for the heat pump, 16% for heaters, 14% for the ground pump and 8% for fans and other pumps. The highest power consumption, as expected, was obtained for Hakkari Province (6723 kW) in the Eastern Anatolia region, which has a cold climate, while the lowest power consumption was obtained for Izmir Province (2822 kW) in the Aegean region, which has mild climatic conditions. The lowest seasonal performance factor and solar factor values were calculated as 2.27 and 32% for Hakkari and the highest as 2.71 and 56% for Izmir, respectively.


2020 ◽  
Vol 24 (5 Part B) ◽  
pp. 3157-3166
Author(s):  
Shengtao Xiong ◽  
Zhenxing Liu ◽  
Qunqiao Li ◽  
Yuan Chen ◽  
Xiaoyan Cai ◽  
...  

To explore the performance of the ground source thermal energy management system under the cold and heat sources, based on the cold and heat auxiliary technology, a ground source thermal energy composite management system is constructed and simulated. The constructed ground source heat pump-refrigeration unit-hybrid heating management system of urban heating networks, as well as the simple system, are analyzed and investigated in terms of power consumption and underground temperature control. The research results show that the constructed ground source heat pump-refrigeration unit-hybrid heating management system of the urban heating network has lower power and energy consumption than a simple system during the same period, which meets the economic requirements and guarantees the system with relatively low energy consumption. For underground temperature control, the constructed system is more stable than a simple system without excessive temperature fluctuations. The operation control strategy of the constructed system is mainly for chiller units, heat pump units, cooling towers, source side, and side circulation water pump modules. In summary, the constructed ground source heat pump-refrigeration unit-hybrid heating management system of an urban heating network based on the ground source heat pump meets the requirements for energy consumption and temperature control and can operate the control strategy normally. The results are significant for subsequent researches on the ground source thermal energy management system based on cold and heat auxiliary technology.


2017 ◽  
Vol 205 ◽  
pp. 1507-1514 ◽  
Author(s):  
Di Zhao ◽  
Ping Cui ◽  
Yuan Gao ◽  
Wenke Zhang ◽  
Haipeng An

2021 ◽  
Author(s):  
Adam Alexander Alaica

Hybrid Ground-Source Heat Pump (HGSHP) systems have been introduced as a remedy to overcome the current financial hurtles associated to the installation of geo-exchange technology. However, there still remains potential for increased economic feasibility of geo-exchange through proactive operation prefaced with higher level control. This study introduces a control strategy referred to as an off-peak ground pre-cool, employing time-of-use conscious operating logic capable of facilitating artificial bore-field pre-conditioning to improve a geo-exchange system’s cooling mode performance. Artificial pre-conditioning of a system’s bore-field introduces the potential to improve the bore-field’s thermal characteristics in a controlled manner. With improved thermal characteristics a bore-field can be exploited more efficiently during the following peak periods; introducing additional economic incentives by reducing peak power consumption attributed to space cooling. This study presents a multifaceted approach which intends to concurrently address improving system economics and aid in the balancing of the electrical grid.


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