Informacja

Drogi użytkowniku, aplikacja do prawidłowego działania wymaga obsługi JavaScript. Proszę włącz obsługę JavaScript w Twojej przeglądarce.

Wyszukujesz frazę "Rankine cycle" wg kryterium: Temat


Tytuł:
Performance analysis of a new combined organic Rankine cycle and vapor compression cycle for power and refrigeration cogeneration
Autorzy:
Toujani, N.
Bouaziz, N.
Chrigui, M.
Kairouani, L.
Powiązania:
https://bibliotekanauki.pl/articles/175539.pdf
Data publikacji:
2018
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
organic Rankine cycle
cogeneration
vapor compression cycle
new combined
Opis:
Organic Rankine cycle (ORC) is considered the most used technology in low temperature heat recovery units for cogeneration (electricity and cold). In this study, the effect of the operating parameters, in particular the condensation and the vaporization temperatures on the performance of the cycle are analyzed. In addition, we developed a new combination of organic Rankine cycle and vapor compresion cycle systems to make cogeneration with a negative cold (-10–0◦C), as well with a positive cold (0–10◦C). Three configurations are examined and studied in terms of energy efficiency, namely the performance of each configuration including net power, refrigeration capacity and overall efficiency, the thermal efficiency for ORC and the coefficient of performance for VCC. The used working fluids are n-hexane for the ORC and R600 for the VCC. We also try to apply this new system to have the cogeneration with congelation temperatures. The results show that, for cogeneration with negative cold, among the three configurations that we have developed, the cycle with recovery is preferable in which it has a better energy performance. For a hot spring of 1000 kW, this cycle can provide simultaneously, a maximum net work of 17 kW and a maximum net cooling capacity of 160 kW and an overall coefficient of the order of 0.3. For the production of positive cold, among the three configurations that we have developed, the basic cycle (without recovery) is the most suitable. With the same source of heat a maximum net work of 65 kW and a net cooling capacity in the order of 1000 kW with a global coefficient in the order of 1.05 is obtained. Our system is not only limited to be exploited for a temperature range between -10 ◦C and 10 ◦C, but can also be used with other fluids for lower temperatures (congelation temperatures).
Źródło:
Transactions of the Institute of Fluid-Flow Machinery; 2018, 140; 39-81
0079-3205
Pojawia się w:
Transactions of the Institute of Fluid-Flow Machinery
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Criteria for selection of working fluid in low-temperature ORC
Autorzy:
Mikielewicz, D.
Mikielewicz, J.
Powiązania:
https://bibliotekanauki.pl/articles/185262.pdf
Data publikacji:
2016
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
micro CHP
organic Rankine cycle
mikro CHP
organiczny cykl Rankine'a
Opis:
The economics of an ORC system is strictly linked to thermodynamic properties of the working fluid. A bad choice of working fluid could lead to a less efficient and expensive plant/generation unit. Some selection criteria have been put forward by various authors, incorporating thermodynamic properties, provided in literature but these do not have a general character. In the paper a simple analysis has been carried out which resulted in development of thermodynamic criteria for selection of an appropriate working fluid for subcritical and supercritical cycles. The postulated criteria are expressed in terms of non-dimensional numbers, which are characteristic for different fluids. The efficiency of the cycle is in a close relation to these numbers. The criteria are suitable for initial fluid selection. Such criteria should be used with other ones related to environmental impact, economy, system size, etc. Examples of such criteria have been also presented which may be helpful in rating of heat exchangers, which takes into account both heat transfer and flow resistance of the working fluid.
Źródło:
Chemical and Process Engineering; 2016, 37, 3; 429-440
0208-6425
2300-1925
Pojawia się w:
Chemical and Process Engineering
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Design analysis of turbines for co-generating micro-power plant working in accordance with organic Rankine’s cycle
Autorzy:
Mikielewicz, J.
Piwowarski, M.
Kosowski, K.
Powiązania:
https://bibliotekanauki.pl/articles/259369.pdf
Data publikacji:
2009
Wydawca:
Politechnika Gdańska. Wydział Inżynierii Mechanicznej i Okrętownictwa
Tematy:
micro power plant
microturbines
organic Rankine cycle
turbine design
Opis:
This paper presents results of a design analysis of turbines for co-generating micro-power plant working in accordance with organic Rankine’s cycle and using biofuel. The heat power range from 25 kW to 100 kW with corresponding available electric power from 2kW to 12kW, was considered. Designs of axial-flow turbines (single-stage and multi-stage ones, also those partially fed), radial-flow and axial-radial -flow ones, were analyzed. Particular variants of the solutions were compared to each other.
Źródło:
Polish Maritime Research; 2009, S 1; 34-38
1233-2585
Pojawia się w:
Polish Maritime Research
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Thermodynamic Performance Assessment of Different Fluids in a Typical Organic Rankine Cycle for Usage in Municipal Solid Waste Power Plant
Autorzy:
Özahi, E.
Tozlu, A.
Abuşoğlu, A.
Powiązania:
https://bibliotekanauki.pl/articles/1031184.pdf
Data publikacji:
2017-09
Wydawca:
Polska Akademia Nauk. Instytut Fizyki PAN
Tematy:
organic Rankine cycle
waste to energy
energy and exergy analyses
Opis:
This paper presents the energy and exergy analyses of some different organic fluids which can be used in an organic Rankine cycle adapted to a municipal solid waste power plant in the frame of energy recovery. The novelty of the study is to adapt a well-known organic Rankine cycle system theoretically to the existing municipal solid waste power plant where the exhaust gas with a temperature of almost 560°C is sent to atmosphere causing both energy loss and air pollution, and also violating the related legislation. The efficient organic fluid that can be used in such a plant is estimated by means of the thermodynamic analyses. It is known that, in a typical municipal solid waste power plant, a considerable amount of energy is sent up from a plant chimney to the atmosphere. This waste energy can be utilized by using an adapted organic Rankine cycle system with a proper organic fluid. In this frame, some different organic fluids were examined and compared thermodynamically in this study. The optimal operation conditions of some organic fluids, R141b, isobutane, R245fa, n-pentane and n-hexane have been evaluated by means of ASPEN and EES software programs. The effects of the outlet temperature of heat source on the energetic and exergetic efficiencies and the net power output at a given pinch point temperature difference were investigated. It can be deduced from the analyses that n-hexane has the highest energetic and exergetic efficiencies at all outlet temperatures of the heat source such as 8.92% and 34.47% at 82.08°C, respectively. It can also be stated that the maximum net power output is obtained by using the organic fluid n-hexane.
Źródło:
Acta Physica Polonica A; 2017, 132, 3; 807-812
0587-4246
1898-794X
Pojawia się w:
Acta Physica Polonica A
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Thermographic investigation of the cogenerative ORC system with low-boiling medium
Badania termowizyjne układu kogeneracyjnego ORC z czynnikiem niskowrzącym
Autorzy:
Kaczmarczyk, T. Z.
Żywica, G.
Ihnatowicz, E.
Powiązania:
https://bibliotekanauki.pl/articles/329692.pdf
Data publikacji:
2015
Wydawca:
Polska Akademia Nauk. Polskie Towarzystwo Diagnostyki Technicznej PAN
Tematy:
organic Rankine cycle
low-boiling medium
thermographic
obieg organiczny Rankine’a
czynnik niskowrzący
termografia
Opis:
The paper presents the results of experimental investigations of the ORC system equipped with the expansion valve simulating microturbine operation. The aim of the research was to verify the correct functioning of the installation components and to access the technical condition of the thermal insulation in the heating and cooling mode with regard to the design assumptions. The research was conducted for different values of medium flow rates. The images were acquired using the thermal imaging camera FLIR E50, which is equipped with a specialized software. On the basis of the experimental results, the heat losses have been estimated, together with the places which were the major source of loss (the so-called thermal bridges). It was shown experimentally that the application of a thermal imaging camera can constitute a simple and fast thermal diagnostics method for installations of this type.
W pracy przedstawiono wyniki badań eksperymentalnych układu ORC z zaworem rozprężnym symulującym pracę mikroturbiny. Badania miały na celu sprawdzenie poprawności działania podzespołów instalacji oraz ocenę stanu technicznego izolacji termicznej podczas procesów grzania, chłodzenia i regeneracji w stosunku do założeń projektowych. Badania przeprowadzono dla wybranych natężeń przepływów mediów roboczych. W badaniach wykorzystano kamerę termowizyjną FLIR E50 wraz ze specjalistycznym oprogramowaniem. Na podstawie wyników badań oszacowano straty ciepła instalacji oraz określono miejsca, w których występowały największe straty (tzw. mostki termiczne). Wykazano, że zastosowanie kamery termowizyjnej może być szybką i prostą metodą diagnostyki termicznej tego typu instalacji energetycznych.
Źródło:
Diagnostyka; 2015, 16, 3; 25-32
1641-6414
2449-5220
Pojawia się w:
Diagnostyka
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Experimental investigation of domestic micro-CHP based on the gas boiler fitted with ORC module
Autorzy:
Wajs, J.
Mikielewicz, D.
Bajor, M.
Kneba, Z.
Powiązania:
https://bibliotekanauki.pl/articles/240505.pdf
Data publikacji:
2016
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
micro-CHP
organic Rankine cycle
prototype domestic unit
mikro CHP
organiczny obieg Rankine'a
Opis:
The results of investigations conducted on the prototype of vapour driven micro-CHP unit integrated with a gas boiler are presented. The system enables cogeneration of heat and electric energy to cover the energy demand of a household. The idea of such system is to produce electricity for own demand or for selling it to the electric grid – in such situation the system user will became the prosumer. A typical commercial gas boiler, additionally equipped with an organic Rankine cycle (ORC) module based on environmentally acceptable working fluid can be regarded as future generation unit. In the paper the prototype of innovative domestic cogenerative ORC system, consisting of a conventional gas boiler and a small size axial vapour microturbines (in-house designed for ORC and the commercially available for Rankine cycle (RC)), evaporator and condenser were scrutinised. In the course of study the fluid working temperatures, rates of heat, electricity generation and efficiency of the whole system were obtained. The tested system could produce electricity in the amount of 1 kWe. Some preliminary tests were started with water as working fluid and the results for that case are also presented. The investigations showed that domestic gas boiler was able to provide the saturated/superheated ethanol vapour (in the ORC system) and steam (in the RC system) as working fluids.
Źródło:
Archives of Thermodynamics; 2016, 37, 3; 79-93
1231-0956
2083-6023
Pojawia się w:
Archives of Thermodynamics
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Comparative investigation of working fluids for an organic Rankine cycle with geothermal water
Autorzy:
Liu, Y.-N.
Xiao, S.
Powiązania:
https://bibliotekanauki.pl/articles/240415.pdf
Data publikacji:
2015
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
geothermal water
energy efficiency
organic Rankine cycle
wody geotermalne
efektywność energetyczna
organiczny obieg Rankine'a
Opis:
In this paper, the thermodynamic investigation on the use of geothermal water (130°C as maximum) for power generation through a basic Rankine has been presented together with obtained main results. Six typical organic working fluids (i.e., R245fa, R141b, R290, R600, R152a, and 134a) were studied with modifying the input pressure and temperature to the turbine. The results show that there are no significant changes taking place in the efficiency for these working fluids with overheating the inlet fluid to the turbine, i.e., efficiency is a weak function of temperature. However, with the increasing of pressure ratio in the turbine, the efficiency rises more sharply. The technical viability is shown of implementing this type of process for recovering low temperature heat resource.
Źródło:
Archives of Thermodynamics; 2015, 36, 2; 75-84
1231-0956
2083-6023
Pojawia się w:
Archives of Thermodynamics
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Modeling, exergy analysis and optimization of cement plant industry
Autorzy:
Abutorabi, Hossein
Kianpour, Ehsan
Powiązania:
https://bibliotekanauki.pl/articles/2106427.pdf
Data publikacji:
2022
Wydawca:
Politechnika Koszalińska. Wydawnictwo Uczelniane
Tematy:
exergy
organic Rankine cycle
thermodynamic analysis
cement plant
egzergia
organiczny cykl Rankine'a
analiza termodynamiczna
cementownia
Opis:
This study investigates the recovery of wasted heat in the cement plant industries (Neka Cement Factory) in order to reduce the use of fossil fuels and greenhouse gas emissions. Cement is the most widely used man-made material. The global cement industry produces about 3.3 billion tons of cement annually. A lot of energy is needed to produce cement. About 200 kg of coal is used to produce each ton of cement. The cement industry also produces about five percent of the world's greenhouse gases. The method studied in this research is based on heat recovery from boilers installed at the outlet of a clinker cooler and a preheater in a cement factory. Due to the low temperature of the gases available, three different fluids, i.e. water, R134a and R245fa were considered as the operating fluids. Also, energy and exergy analyses are performed in a Rankin cycle and the selection of optimal parameters is considered by using genetic algorithm. The results of this study showed that water with optimized parameters leads to an increase in the production capacity from 5 to 9 MW. However, fluid R134a with optimized parameters leads to a 4% increase in exergy losses and it also increases the production capacity from 5 to 9 MW.
Źródło:
Journal of Mechanical and Energy Engineering; 2022, 6, 1; 55--66
2544-0780
2544-1671
Pojawia się w:
Journal of Mechanical and Energy Engineering
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Comparison of an impulse and a reaction turbine stage for an ORC power plant
Autorzy:
Zaniewski, Dawid
Klimaszewski, Piotr
Witanowski, Łukasz
Jędzejewski, Łukasz
Klonowicz, Piotr
Lampart, Piotr
Powiązania:
https://bibliotekanauki.pl/articles/240056.pdf
Data publikacji:
2019
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
CFD
waste heat recovery
steam turbine
organic Rankine cycle
ciepło odpadowe
odzysk ciepła
ORC
organiczny cykl Rankine'a
Opis:
Turbine stages can be divided into two types: impulse stages and reaction stages. The advantages of one type over the second one are generally known based on the basic physics of turbine stage. In this paper these differences between mentioned two types of turbines were indicated on the example of single stage turbines dedicated to work in organic Rankine cycle (ORC) power systems. The turbines for two ORC cases were analysed: the plant generating up to 30 kW and up to 300 kW of net electric power, respectively. Mentioned ORC systems operate with different working fluids: DMC (dimethyl carbonate) for the 30 kW power plant and MM (hexamethyldisiloxane) for the 300 kW power plant. The turbines were compared according to three major issues: thermodynamic and aerodynamic performance, mechanical and manufacturing aspects. The analysis was performed by means of the 0D turbomachinery theory and 3D computational aerodynamic calculations. As a result of this analysis, the paper indicates conclusions which type of turbine is a recommended choice to use in ORC systems taking into account the features of these systems.
Źródło:
Archives of Thermodynamics; 2019, 40, 3; 137-157
1231-0956
2083-6023
Pojawia się w:
Archives of Thermodynamics
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Thermodynamic analysis of combined ORC-VCR system with recuperator and reheater
Autorzy:
Rawat, Kamal Singh
Bhandari, Prabhakar
Bisht, Vijay Singh
Powiązania:
https://bibliotekanauki.pl/articles/2142837.pdf
Data publikacji:
2022
Wydawca:
Centrum Badań i Innowacji Pro-Akademia
Tematy:
low grade energy
organic Rankine cycle
refrigeration
hydrocarbons
recuperator
reheaters
energia
ORC
organiczny obieg Rankine'a
chłodzenie
węglowodory
rekuperator
nagrzewnica
Opis:
The trend of utilization of low-grade thermal energy gain huge attention due to increase in energy demand and depletion of conventional resources of energy. Low grade energy can be used in ORC-VCR cycle for refrigeration purpose. In the present work, to improve the performance a modified ORC-VCR cycle, recuperator and reheater are integrated in the cycle. The thermodynamic analysis of the modified system has been conducted with R600a, R600, R290 and R1270 as working fluids under various operating conditions viz. evaporator temperature, condenser temperature, boiler exit temperature. Different parameters evaluated to assess the performance are overall COP, mass flow rate per kW cooling capacity, expansion ratio and compression ratio. From the analysis, butane is found as a best choice for the modified ORC–VCR cycle. It was found that for the modified ORC-VCR cycle at boiler exit temperature of 90°C and condenser temperature 40°C has system COP of 0.5542 with butane, which is 7.1% and 18% higher than that of ORC-VCR cycle with recuperator and simple ORC-VCR cycle, respectively.
Źródło:
Acta Innovations; 2022, 44; 34-44
2300-5599
Pojawia się w:
Acta Innovations
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Zastosowanie prądnic z magnesami trwałymi do budowy mikroturbogeneratorów ORC
Application of permanent magnet generators for the construction of ORC microturbogenerators
Autorzy:
Kaczmarczyk, T. Z.
Żywica, G.
Klonowicz, P.
Powiązania:
https://bibliotekanauki.pl/articles/2056381.pdf
Data publikacji:
2018
Wydawca:
Sieć Badawcza Łukasiewicz - Instytut Napędów i Maszyn Elektrycznych Komel
Tematy:
mikroturbogenerator
organiczny obieg Rankina
silnik z magnesami trwałymi
HFE7100
microturbogenerator
organic Rankine cycle
permanent magnet motor
Opis:
W pracy omówiono zagadnienia związane z projektowaniem nowego typu maszyn elektrycznych dedykowanych do pracy w układach kogeneracyjnych małej mocy. Do konwersji ciepła odpadowego ze spalania biomasy na energię elektryczną zastosowano mikroturbogenerator zasilany parą czynnika niskowrzącego HFE7100. Wysokoobrotowy turbogenerator o mocy nominalnej 2,5 kWe pracuje w obiegu ORC, który oprócz energii elektrycznej umożliwia produkcję energii cieplnej na poziomie 20 kW. Do budowy wirnikowej maszyny ekspansyjnej zastosowano trójfazowy, synchroniczny silnik z magnesami trwałymi o maksymalnej prędkości obrotowej 80000 obr/min. Zaprojektowany i zbudowany mikroturbogenerator jest hermetyczny i posiada bezolejowy system łożyskowania. Ponieważ elementy generatora elektrycznego pracują w podwyższonych temperaturach, w artykule poruszono zagadnienia związane z wymaganiami stosowania zewnętrznego układu chłodzenia. W pracy przedstawiono wybrane wyniki badań mikroturbogeneratora parowego pracującego w instalacji ORC z czynnikiem niskowrzącym. Zamieszczono charakterystyki cieplno–przepływowe instalacji oraz omówiono warunki termodynamiczne jakie winny być spełnione podczas pracy ekspanderów parowych. Przedstawiono potencjalne zastosowanie małych kogeneratorów ORC z mikroturbinami parowymi w budowie układów elektroenergetycznych bazujących na OZE i cieple odpadowym.
The article discusses issues related to the design of the new type of electric machines intended for operation in low power cogeneration systems. For the conversion of waste heat (coming from biomass combustion) to electricity, a microturbogenerator powered by a low-boiling medium’s vapour (HFE7100) was used. The high-speed turbogenerator with a nominal power of 2.5 kWe works in the ORC system which, in addition to generating electricity, enables heat production of 20 kW. A three-phase synchronous permanent magnet motor, with a maximum rotational speed of 80,000 rpm, is an integral part of the developed expansion machine. The designed and manufactured microturbogenerator has a hermetic structure and is equipped with an oil-free bearing system. Since some elements of the electric generator must be able to operate at elevated temperatures, this article raises issues related to the use of an external cooling system. This paper reports selected results from studies of the vapour microturbogenerator that operated in the ORC installation with HFE7100 as the working fluid. Thermal and flow characteristics of the installation are presented as well. Furthermore, thermodynamic conditions that should be met during operation of the vapour expanders are discussed. It was shown that small ORC cogeneration systems with vapour microturbines could be successfully applied in the construction of electricity systems that utilise renewable energy sources and waste heat.
Źródło:
Maszyny Elektryczne: zeszyty problemowe; 2018, 2, 118; 79--85
0239-3646
2084-5618
Pojawia się w:
Maszyny Elektryczne: zeszyty problemowe
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Selected technical problems of cogeneration of electric energy and heat
Autorzy:
Lampart, P.
Powiązania:
https://bibliotekanauki.pl/articles/175508.pdf
Data publikacji:
2015
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
cogeneration of electric energy and heat
extraction-condensing turbine
adaptive control
distributed cogeneration
organic Rankine cycle
recovery heat
Opis:
The paper is focused on selected technical problems of cogeneration of heat and electric power (combined heat and power – CHP) both in a large and small scale. First, largescale cogeneration systems applied in large power industry are discussed and results of adaptive control of extraction condensing turbines are presented. Then, advantages of distributed cogeneration are pointed out and small-scale cogeneration systems aimed for modernisation of a fossil-fuel district heating plant are investigated. At the end of the paper, organic Rankine cycle (ORC) heat and power units are described for biomassfuelled cogeneration and topping of main generation units to use the recovery heat.
Źródło:
Transactions of the Institute of Fluid-Flow Machinery; 2015, 127; 137-152
0079-3205
Pojawia się w:
Transactions of the Institute of Fluid-Flow Machinery
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
A case study of working fluid selection for a small-scale waste heat recovery ORC system
Autorzy:
Klimaszewski, Piotr
Zaniewski, Dawid
Witanowski, Łukasz
Suchocki, Tomasz
Klonowicz, Piotr
Lampart, Piotr
Powiązania:
https://bibliotekanauki.pl/articles/240748.pdf
Data publikacji:
2019
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
waste heat recovery
organic Rankine cycle
ORC fluids
heat exchangers
turboexpander
ciepło odpadowe
odzysk ciepła
ORC
organiczny cykl Rankine'a
wymienniki ciepła
turboekspander
Opis:
The paper illustrates a case study of fluid selection for an internal combustion engine heat recovery organic Rankine cycle (ORC) system having the net power of about 30 kW. Various criteria of fluid selection are discussed. Particular attention is paid to thermodynamic performance of the system and human safety. The selection of working fluid for the ORC system has a large impact on the next steps of the design process, i.e., the working substance affects the turbine design and the size and type of heat exchangers. The final choice is usually a compromise between thermodynamic performance, safety and impact on natural environment. The most important parameters in thermodynamic analysis include calculations of net generated power and ORC cycle efficiency. Some level of toxicity and flammability can be accepted only if the leakages are very low. The fluid thermal stability level has to be taken into account too. The economy is a key aspect from the commercial point of view and that includes not only the fluid cost but also other costs which are the consequence of particular fluid selection. The paper discusses various configurations of the ORC system – with and without a regenerator and with direct or indirect evaporation. The selected working fluids for the considered particular power plant include toluene, DMC (dimethyl carbonate) and MM (hexamethyldisiloxane). Their advantages and disadvantages are outlined.
Źródło:
Archives of Thermodynamics; 2019, 40, 3; 159-180
1231-0956
2083-6023
Pojawia się w:
Archives of Thermodynamics
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Dual ORC-Brayton power system for waste heat recovery in heavy-duty vehicles
Autorzy:
Cholewiński, M.
Pospolita, W.
Błoński, D.
Powiązania:
https://bibliotekanauki.pl/articles/224018.pdf
Data publikacji:
2016
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
organic Rankine cycle
Brayton cycle
energy efficiency
road transport
waste heat utilization
cykl Rankina
cykl Braytona
efektywność energetyczna
transport drogowy
wykorzystanie ciepła odpadowego
Opis:
Reducing the amount of energy required in industrial activities is one of the proven ways to achieve major cost savings, especially in the face of soaring energy prices. In the transport sector, besides the financial benefits, low energy consumption leads to the significant reduction of emissions of many pollutants. In this paper the new concept of dual power technology, dedicated to heavy road transport, was modelled and analysed by computer simulations. The combination of organic Rankine cycle and Brayton cycle was proposed, where the waste heat of fumes was recognized as a upper heat source, whereas the surrounding was adopted to be the lower one. Improvement of total energy conversion efficiency of the truck was the key success factor. Environmental friendly fluids (air and R123) were utilised. The operating parameters, power characteristics and energy streams (i.e. dispersion) of the system were evaluated, calculated and commented from the perspective of its theoretical profitability. The calculated net power capacity of analysed dual system was around 50 hp for 100% load. However, when the engine load is below 50% of nominal capacity, the power generation of combined system might be lower than in the case of single ORC system.
Źródło:
Archives of Transport; 2016, 39, 3; 7-19
0866-9546
2300-8830
Pojawia się w:
Archives of Transport
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Możliwości wykorzystania układów ORC w przemyśle cementowym
Possibilities of using ORC systems in cement industry
Autorzy:
Głodek-Bucyk, E.
Sładeczek, F.
Kalinowski, W.
Powiązania:
https://bibliotekanauki.pl/articles/392213.pdf
Data publikacji:
2016
Wydawca:
Sieć Badawcza Łukasiewicz - Instytut Ceramiki i Materiałów Budowlanych
Tematy:
przemysł cementowy
ciepło odpadowe
wykorzystanie
ORC
cykl organiczny Rankina
wypał klinkieru
gaz odlotowy
entalpia gazu
cement industry
waste heat
utilization
organic Rankine cycle
clinker burning
flue gas
gas enthalpy
Opis:
W artykule przedstawiono analizę możliwości wykorzystania ciepła odpadowego do produkcji energii elektrycznej z układów wypalania klinkieru zlokalizowanych w Polsce. Ilość dostępnego ciepła odpadowego uzależniona jest od zapotrzebowania ciepła w procesach suszenia surowców i paliw. Poziom wykorzystania entalpii gazów odlotowych w cementowniach waha się w graniach od 63 do 100%, natomiast dla powietrza nadmiarowego wynosi od 0 do 100%. Dla analizowanych instalacji wypalania klinkieru łączna moc turbozespołów wyniesie ok. 27,5 MWel, natomiast roczna produkcja energii elektrycznej wynosi potencjalnie 177 GWh.
The paper presents an analysis of using waste heat for electricity production in clinker burning systems. The quantity of available waste heat depends on the heat demand in the raw materials and fuels drying process. The level of use of the enthalpy of exhaust gases varies from 63 to 100%, whereas the excess air is from 0 to 100%. Total turbine power will be approx. 27,5 MWel for the analyzed system clinker burning. While the annual electricity production is potentially 177 GWh.
Źródło:
Prace Instytutu Ceramiki i Materiałów Budowlanych; 2016, R. 9, nr 27, 27; 26-34
1899-3230
Pojawia się w:
Prace Instytutu Ceramiki i Materiałów Budowlanych
Dostawca treści:
Biblioteka Nauki
Artykuł

Ta witryna wykorzystuje pliki cookies do przechowywania informacji na Twoim komputerze. Pliki cookies stosujemy w celu świadczenia usług na najwyższym poziomie, w tym w sposób dostosowany do indywidualnych potrzeb. Korzystanie z witryny bez zmiany ustawień dotyczących cookies oznacza, że będą one zamieszczane w Twoim komputerze. W każdym momencie możesz dokonać zmiany ustawień dotyczących cookies