998 resultados para ground source


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This thesis studies energy efficiencies and technical properties of gas driven ground source heat pumps and pump systems. The research focuses on two technologies: gas engine driven compressor heat pump and thermally driven gas absorption heat pump. System consist of a gas driven compressor or absorption ground source heat pump and a gas condensing boiler, which covers peak load. The reference system is a standard electrically powered compressor heat pump with electric heating elements for peak load. The systems are compared through primary energy ratios. Coefficient of performances of different heat pump technologies are also compared. At heat pump level, gas driven heat pumps are having lower coefficient of performances as compared with corresponding electric driven heat pump. However, gas heat pumps are competitive when primary energy ratios, where electricity production losses are counted in, are compared. Technically, gas heat pumps can potentially achieve a slightly higher temperatures with greater total energy efficiency as compared to the electric driven heat pump. The primary energy ratios of gas heat pump systems in relation to EHP-system improves when the share of peak load increases. Electric heat pump system's overall energy efficiency is heavily dependent on the electricity production efficiency. Economy as well as CO2-emissions were not examined in this thesis, which however, would be good topics for further study.

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Results from both experimental measurements and 3D numerical simulations of Ground Source Heat Pump systems (GSHP) at a UK climate are presented. Experimental measurements of a horizontal-coupled slinky GSHP were undertaken in Talbot Cottage at Drayton St Leonard site, Oxfordshire, UK. The measured thermophysical properties of in situ soil were used in the CFD model. The thermal performance of slinky heat exchangers for the horizontal-coupled GSHP system for different coil diameters and slinky interval distances was investigated using a validated 3D model. Results from a two month period of monitoring the performance of the GSHP system showed that the COP decreased with the running time. The average COP of the horizontal-coupled GSHP was 2.5. The numerical prediction showed that there was no significant difference in the specific heat extraction of the slinky heat exchanger at different coil diameters. However, the larger the diameter of coil, the higher the heat extraction per meter length of soil. The specific heat extraction also increased, but the heat extraction per meter length of soil decreased with the increase of coil central interval distance.

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The thermal performance of a horizontal-coupled ground-source heat pump system has been assessed both experimentally and numerically in a UK climate. A numerical simulation of thermal behaviour of the horizontal-coupled heat exchanger for combinations of different ambient air temperatures, wind speeds, refrigerant temperature and soil thermal properties was studied using a validated 2D transient model. The specific heat extraction by the heat exchanger increased with ambient temperature and soil thermal conductivity, however it decreased with increasing refrigerant temperature. The effect of wind speed was negligible.

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Common approaches to the simulation of borehole heat exchangers (BHEs) assume heat transfer in circulating fluid and grout to be in a quasi-steady state and ignore fluctuations in fluid temperature due to transport of the fluid around the loop. However, in domestic ground source heat pump (GSHP) systems, the heat pump and circulating pumps switch on and off during a given hour; therefore, the effect of the thermal mass of the circulating fluid and the dynamics of fluid transport through the loop has important implications for system design. This may also be important in commercial systems that are used intermittently. This article presents transient simulation of a domestic GSHP system with a single BHE using a dynamic three-dimensional (3D) numerical BHE model. The results show that delayed response associated with the transit of fluid along the pipe loop is of some significance in moderating swings in temperature during heat pump operation. In addition, when 3D effects are considered, a lower heat transfer rate is predicted during steady operations. These effects could be important when considering heat exchanger design and system control. The results will be used to develop refined two-dimensional models.

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This review investigates the performance of photovoltaic and solar-assisted ground-source heat pumps in which solar heat is transferred to the ground to improve the coefficient of performance. A number of studies indicate that, for systems with adequately sized ground heat exchangers, the effect on system efficiency is small: about 1% improvement if the heat source is photovoltaic, a 1–2% decline if the source is solar thermal. With possible exceptions for systems in which the ground heat exchanger is undersized, or natural recharge from ground water is insufficient, solar thermal energy is better used for domestic hot water than to recharge ground heat. This appears particularly true outside the heating season, as although much of the heat extracted from the ground can be replaced, it seems to have little effect on the coefficient of performance. Any savings in electrical consumption that do result from an improved coefficient can easily be outweighed by an inefficient control system for the circulation pumps.

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This paper presents results obtained from a numerical simulation for the horizontal slinky-loop heat exchanger of a ground-source heat pump system. A three-dimensional numerical model was developed and the results of the thermal performance of various heat exchanger configurations are presented. The investigation was carried out on five types of loop pitch (loop spacing), three types of loop diameter, three values of soil thermal properties, and allowing continuous and intermittent operation. Comparison was made for the heat transfer rate, the amount of pipe material needed, as well as excavation work required for the horizontal slinky-loop heat exchanger. The results indicate that system parameters have a significant effect on the thermal performance of the system

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A ground source heat pump assisted by an array of photovoltaic (PV)-thermal modules was studied in this work. Extracting heat from an array of PV modules should improve the performance of both the PV cells and the heat pump. A series of computer simulations compare the performance of a ground source heat pump with a short ground circuit, used to provide space heating and domestic hot water at a house in southern England. The results indicate that extracting heat from an array of PV-thermal modules would improve the performance of a ground source heat pump with an undersized ground loop. Nevertheless, open air thermal collectors could be more effective, especially during winter. In one model more electricity was saved in ohmic heating than was generated by cooling the PV cells. Cooling the PV modules was found to increase their electrical output up to 4%, but much of the extra electricity was consumed by the cooling pumps.

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Recent urban air temperature increase is attributable to the climate change and heat island effects due to urbanization. This combined effects of urbanization and global warming can penetrate into the underground and elevate the subsurface temperature. In the present study, over-100 years measurements of subsurface temperature at a remote rural site were analysed, and an increasing rate of 0.17⁰C per decade at soil depth of 30cm due to climate change was identified in the UK, but the subsurface warming in an urban site showed a much higher rate of 0.85⁰C per decade at a 30cm depth and 1.18⁰C per decade at 100cm. The subsurface urban heat island (SUHI) intensity obtained at the paired urban-rural stations in London showed an unique 'U-shape', i.e. lowest in summer and highest during winter. The maximum SUHII is 3.5⁰C at 6:00 AM in December, and the minimum UHII is 0.2⁰C at 18:00PM in July. Finally, the effects of SUHI on the energy efficiency of the horizontal ground source heat pump (GSHP) were determined. Provided the same heat pump used, the installation at an urban site will maintain an overall higher COP compared with that at a rural site in all seasons, but the highest COP improvement can be achieved in winter.

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This master thesis presents a new technological combination of two environmentally friendly sources of energy in order to provide DHW, and space heating. Solar energy is used for space heating, and DHW production using PV modules which supply direct current directly to electrical heating elements inside a water storage tank. On the other hand a GSHP system as another source of renewable energy provides heat in the water storage tank of the system in order to provide DHW and space heating. These two sources of renewable energy have been combined in this case-study in order to obtain a more efficient system, which will reduce the amount of electricity consumed by the GSHP system.The key aim of this study is to make simulations, and calculations of the amount ofelectrical energy that can be expected to be produced by a certain amount of PV modules that are already assembled on a house in Vantaa, southern Finland. This energy is then intended to be used as a complement to produce hot water in the heating system of the house beside the original GSHP system. Thus the amount of electrical energy purchased from the grid should be reduced and the compressor in the GSHP would need fewer starts which would reduce the heating cost of the GSHP system for space heating and providing hot water.The produced energy by the PV arrays in three different circuits will be charged directly to three electrical heating elements in the water storage tank of the existing system to satisfy the demand of the heating elements. The excess energy can be used to heat the water in the water storage tank to some extent which leads to a reduction of electricity consumption by the different components of the GSHP system.To increase the efficiency of the existing hybrid system, optimization of different PV configurations have been accomplished, and the results are compared. Optimization of the arrays in southern and western walls shows a DC power increase of 298 kWh/year compared with the existing PV configurations. Comparing the results from the optimization of the arrays on the western roof if the intention is to feed AC power to the components of the GSHP system shows a yearly AC power production of 1,646 kWh.This is with the consideration of no overproduction by the PV modules during the summer months. This means the optimized PV systems will be able to cover a larger part of summer demand compared with the existing system.

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Ground-source heat pump (GSHP) systems represent one of the most promising techniques for heating and cooling in buildings. These systems use the ground as a heat source/sink, allowing a better efficiency thanks to the low variations of the ground temperature along the seasons. The ground-source heat exchanger (GSHE) then becomes a key component for optimizing the overall performance of the system. Moreover, the short-term response related to the dynamic behaviour of the GSHE is a crucial aspect, especially from a regulation criteria perspective in on/off controlled GSHP systems. In this context, a novel numerical GSHE model has been developed at the Instituto de Ingeniería Energética, Universitat Politècnica de València. Based on the decoupling of the short-term and the long-term response of the GSHE, the novel model allows the use of faster and more precise models on both sides. In particular, the short-term model considered is the B2G model, developed and validated in previous research works conducted at the Instituto de Ingeniería Energética. For the long-term, the g-function model was selected, since it is a previously validated and widely used model, and presents some interesting features that are useful for its combination with the B2G model. The aim of the present paper is to describe the procedure of combining these two models in order to obtain a unique complete GSHE model for both short- and long-term simulation. The resulting model is then validated against experimental data from a real GSHP installation.

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Driven by concerns about rising energy costs, security of supply and climate change a new wave of Sustainable Energy Technologies (SET’s) have been embraced by the Irish consumer. Such systems as solar collectors, heat pumps and biomass boilers have become common due to government backed financial incentives and revisions of the building regulations. However, there is a deficit of knowledge and understanding of how these technologies operate and perform under Ireland’s maritime climate. This AQ-WBL project was designed to address both these needs by developing a Data Acquisition (DAQ) system to monitor the performance of such technologies and a web-based learning environment to disseminate performance characteristics and supplementary information about these systems. A DAQ system consisting of 108 sensors was developed as part of Galway-Mayo Institute of Technology’s (GMIT’s) Centre for the Integration of Sustainable EnergyTechnologies (CiSET) in an effort to benchmark the performance of solar thermal collectors and Ground Source Heat Pumps (GSHP’s) under Irish maritime climate, research new methods of integrating these systems within the built environment and raise awareness of SET’s. It has operated reliably for over 2 years and has acquired over 25 million data points. Raising awareness of these SET’s is carried out through the dissemination of the performance data through an online learning environment. A learning environment was created to provide different user groups with a basic understanding of a SET’s with the support of performance data, through a novel 5 step learning process and two examples were developed for the solar thermal collectors and the weather station which can be viewed at http://www.kdp 1 .aquaculture.ie/index.aspx. This online learning environment has been demonstrated to and well received by different groups of GMIT’s undergraduate students and plans have been made to develop it further to support education, awareness, research and regional development.

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A simulação de edifícios e sistemas de aquecimento está na base deste trabalho. O edifício em estudo é a Residência Universitária Polo-II-1, com o objectivo de adaptar utilização de “Ground Source Heat Pumps” (GSHP) para satisfazer a necessidade de aquecimento do edifício. Para determinar a carga térmica, o edifício terá que ser modelado no software de simulação dinâmica multizona TRNSYS (TRaNsient SYstems Simulation). Da mesma forma que o edifício, o sistema também é modelado no TRNSYS a fim de obter o desempenho da GSHP a ser utilizado no edifício. Para melhor avaliar os benefícios do sistema, vai ser preciso uma análise comparativa da GSHP com outros sistemas normalmente utilizados para o aquecimento doméstico.

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Tässä työssä tarkastellaan pientalojen kiristyvien energiatehokkuusvaatimusten vaikutusta lämmitysratkaisuista aiheutuviin hiilidioksipäästöihin. Kiristyvät vaatimukset tähtäävät tarvittavan lämmitysenergian ja hiilidioksidipäästöjen pienenemiseen mutta ne vaikuttavat myös lämmitystapojen keskinäiseen kilpailukykyyn. Koska hiilidioksidipäästöt lämmitystapojen kesken ovat erilaisia, ei päästöt pienene samassa suhteessa lämmitysenergian pienentymisen kanssa mikäli järjestelmä vaihdetaan suurempipäästöiseen lämmitystapaan. Kannattavuuden perusteella arvioidaan mitkä lämmitystavat yleistyvät tulevaisuudessa ja kuinka muutos vaikuttaa hiilidioksipäästöihin. Tarkasteltavina lämmitysmuotoina on maalämpöpumppulämmitys, öljylämmitys ja kaukolämpölämmitys. Tarkasteltavia lämmitysmuotoja verrataan investointikustannuksiltaan edullisimpiin sähkölämmitysmuotoihin. Työssä todettiin energiatehokkuuden vaatimusten kiristämisen kasvattavan sähkölämmitystapojen osuutta. Koska lämmityssähkön hiilidioksidipäästöt ovat korkeat, joissain tapauksissa hiilidioksipäästöt jopa kasvavat energiatehokkuuden parantuessa.

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Tämä diplomityö on tehty East- West Trade & Consulting Oy:lle sekä Lappeenrannan Energia Oy:lle. Työssä tavoitteena oli selvittää energiatehokkuutta parantavien energiaratkaisujen vaikutuksia kerrostalon asumiskustannuksiin. Ratkaisuvaihtoehtoja vertailtiin myös hiilidioksidipäästöjen osalta. Laskelmat suoritettiin Lappeenrantaan suunnitellulle asuinkerrostalolle. Heinäkuun alussa 2012 voimaan tulevissa Suomen rakentamismääräyksissä on määritetty uudiskerrostalon kokonaisenergiankulutukselle raja-arvo, jota ei saa ylittää. Työssä selvitettiin, millaiset energiaratkaisut sekä täyttävät viranomaisvaatimukset että ovat kyseisessä kerrostalossa toteuttamiskelpoisia. Lisäksi määritettiin järjestelmäratkaisuilla, kuten aurinkosähköjärjestelmällä, mahdollisesti saavutettavat säästöt energiakustannuksissa verrattuna kaukolämpö- ja sähköjärjestelmään. Myös järjestelmäratkaisujen takaisinmaksuajat määritettiin. Työn tuloksista havaitaan, että valitsemalla aurinkoenergiaa ja maalämpöä uusiutuvaksi omavaraisenergiaksi kaukolämmön ja verkkosähkön rinnalle voidaan asumiskustannuksia ja CO2- päästöjä pienentää. Tulevaisuudessa energianhinnan nousu, teknologian kehitys ja teknologian investointikustannusten pieneneminen voivat lisätä aurinkoenergiajärjestelmien suosiota.

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Diplomityön tavoitteena oli tarkastella perinteistä poistoilmanvaihtoa käyttävän kerrostalon lämmöntalteenottoa menetelmällä, joka yhdistää poistoilmalämpöpumpun ja maalämpöpumpun toiminnat. Nostamalla maalämpöpumpulle tulevan veden lämpötilaa saadaan nostettua järjestelmän COP-arvoa, jolla on suuri merkitys laitteen energiateknisen toiminnan kannalta. Laskelmat tehtiin Suomen rakennusmääräyskokoelman ohjeiden mukaisesti käyttämällä MX6- energiaohjelmaa sekä simuloimalla kylmäprosessia. Tulokset yhdistettiin taulukkolaskentaohjelmassa, ja näin saatiin teoreettinen säästölaskelma, joka perustuu arvioituun kuukausittaiseen energian keskikulutukseen, ts. taseeseen. Työssä todettiin, että poistoilmalämpöpumppu saattaisi kuluttaa poistoilman lämmöntalteenotossa liikaa sähköä, työssä tarkoitetulla tavalla. Kulutus olisi enemmän kuin maalämpöpumpun COP-arvon parantamisella saatava rahallinen hyöty. Koneellisen poistoilman välittämän energian tehokas käyttö on kuitenkin yksi mahdollisuus säästää maalämpöreikien poraamisessa, jos kerrostalossa harkittaisiin kokonaan maalämpöön siirtymistä.