Academic literature on the topic 'Heating engineering calculation'
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Journal articles on the topic "Heating engineering calculation"
Melekhin, Andrei. "Development of engineering calculator for heating systems." E3S Web of Conferences 263 (2021): 04001. http://dx.doi.org/10.1051/e3sconf/202126304001.
Full textMeng, Da Wei, Bo Qun Zhang, and Xiao Xuan Shi. "Calculation of Temperature Rise for High-Voltage Induction Motor with Compact Type in Starting Process." Applied Mechanics and Materials 705 (December 2014): 232–36. http://dx.doi.org/10.4028/www.scientific.net/amm.705.232.
Full textHuo, Lin, and Tao Yang. "The Rapid Engineering Aero-Heating Calculation Method for Hypersonic Vehicles." Applied Mechanics and Materials 775 (July 2015): 59–67. http://dx.doi.org/10.4028/www.scientific.net/amm.775.59.
Full textCHULKOV, Alexander A., Yury S. VYTCHIKOV, and Igor V. KUDINOV. "RESEARCH OF HEATING APPLIANCE DYNAMIC PROPERTIES." Urban construction and architecture 6, no. 4 (December 15, 2016): 44–48. http://dx.doi.org/10.17673/vestnik.2016.04.8.
Full textDeliiski, Nencho, Anton Geffert, Jarmila Geffertova, Veselin Brezin, and Izabela Radkova. "Engineering Approach for Computation of the Energy Consumption Needed for Defrosting and Subsequent Heating of Frozen Wood Chips." Key Engineering Materials 688 (April 2016): 50–56. http://dx.doi.org/10.4028/www.scientific.net/kem.688.50.
Full textTokarev, Vyacheslav V., and Zoya I. Shalaginova. "Development of operating conditions of district heating systems with quality regulation." E3S Web of Conferences 102 (2019): 03011. http://dx.doi.org/10.1051/e3sconf/201910203011.
Full textVYTCHIKOV, Yury S., Mikhail Ye SAPAREV, and Vladislav A. GOLIKOV. "USE OF MONOLITHIC FOAM CONCRETE IN ENCLOSING STRUCTURES OF BUILDINGS AND STRUCTURES WITH VARIABLE THERMAL CONDITIONS." Urban construction and architecture 8, no. 4 (December 15, 2018): 10–14. http://dx.doi.org/10.17673/vestnik.2018.04.2.
Full textPakere, Ieva, Dace Lauka, and Dagnija Blumberga. "Estimation of Carbon Emission Reduction from Upgrading the DH Network to the 4th Generation. Multivariate Linear Regression Model." Environmental and Climate Technologies 23, no. 2 (November 1, 2019): 64–73. http://dx.doi.org/10.2478/rtuect-2019-0055.
Full textTuomas, Edvardas, and Saulius Neverbickas. "METHODOLOGY OF THE PRIMARY DATA RECONSTRUCTION OF SINGLE PIPE HEATING SYSTEMS/VIENVAMZDŽIŲ ŠILDYMO SISTEMŲ PIRMINIŲ DUOMENŲ NUSTATYMO METODIKA." JOURNAL OF CIVIL ENGINEERING AND MANAGEMENT 5, no. 5 (October 31, 1999): 318–22. http://dx.doi.org/10.3846/13921525.1999.10531482.
Full textDrojetzki, Lawrence, and Janusz Wojtkowiak. "Ceiling mounted radiant panels – calculations of heat output in heating and cooling application." E3S Web of Conferences 44 (2018): 00035. http://dx.doi.org/10.1051/e3sconf/20184400035.
Full textDissertations / Theses on the topic "Heating engineering calculation"
Tillman, Johan. "En energistudie över Fengerfors bruk : Kartläggning och förslag till effektiviseringsåtgärder hos byggnader av industrikaraktär." Thesis, Karlstads universitet, Fakulteten för teknik- och naturvetenskap, 2011. http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-7898.
Full textIn the late 1900s society began to realize the consequences of relying on non-renewable energy sources for heating. Prices were increasing heavily and because of that people often chose to replace their oil boiler with electricity which at the time was a viable option. With the rise in prices that has occurred over the past decade the importance of energy efficient measures seemed increasingly clear. With that said many older buildings often have poor thermal properties since both energy prices and construction standards were considerably lower back then. The client Not Quite is a nonprofit association based in Fengerfors mill, Åmål. They have expressed dissatisfaction over increasing heating costs combined with problems getting the desired thermal comfort related to their premises. The objects described are of industrial nature and has previously been used to a paper mill which closed in 1979. The buildings are now classified as part of a cultural monument. The intention of this dissertation has been to map the energy use and to evaluate appropriate efficiency measures related to the specific objects. This includes getting the demanded thermal comfort in combination with possibly reducing the energy consumption. The cost-effectiveness of proposed efficiency measures will also be evaluated. The objective of this dissertation has been to through the use of simulation identify the energy consumption, required thermal input and potential energy efficiency measures. The efficiency measures consisted mainly of adding insulation, air sealing, intermittent heating, heat recovery and window replacements. Cost-effectiveness was evaluated through a life cycle cost analysis with the different heat sources of wood, pellets and air source heat pumps. The conclusion has been that the proposed efficiency options related to each object reduces energy consumption to a considerable extent, while an adequate heating is achieved. The objects have through these measures obtained just as good energy consumption rates as standard considered buildings in Sweden. The life cycle cost analysis shows us that the present value of the proposed efficiency measures in all economic case scenarios results in great cost savings. It has also been shown that a satisfactory discretization of building elements is very important in this type of simulation.
Gustafsson, Sebastian, and Gösta Jansson. "Avvikelser mellan projekterad och verifierad energiprestanda för nyproducerade lågenergibyggnader : En studie av AB Bostäders svårigheter att leva upp till uppsatta energikrav i deras nybyggda flerbostadshus." Thesis, Högskolan i Borås, Akademin för textil, teknik och ekonomi, 2017. http://urn.kb.se/resolve?urn=urn:nbn:se:hb:diva-12805.
Full textThe energy performance of buildings directive means that all new buildings must be nearly zero energy buildings by 31 December 2020. The current requirements mean that constructor companies must tighten their energy requirements when procuring multi-family houses. Lowenergy buildings as concepts play an important role in achieving sustainable development, and it is of the utmost importance that future construction projects become effective both in the construction process and on further operation. New construction of low-energy buildings has proved to be quite problematic in many aspects, where the measured energy performance in many cases proved to be significantly higher than projected. With the new building practice with better insulation, air tightness and ventilation with recycling – hot water supply and household appliances become the largest energy posts in a building's energy balance. The purpose of this master thesis is to concretize the problems that exist for newly produced multi-family houses with energy requirements for low-energy buildings. Based on this, focus has been on two building that AB Bostäder Borås recently has built – both built to achieve low energy requirements. As expected, this master thesis shows the difficulty to deduce the problem to specific aspects. The construction process itself may be the source of error, where time shortages, inadequate communication and lack of knowledge concerning low energy buildings are present in an industry with difficulties catching up with the demanded volume of new construction. Regarding specific sources of vulnerability to energy performance, our report supports previously published reports where the lack of input data for energy calculations, the impact of the construction process, negligence of losses due to recirculation of hot water and the importance of user behaviour have been highlighted.
Andersson, J. Christer. "Rock Mass Response to Coupled Mechanical Thermal Loading : Äspö Pillar Stability Experiment, Sweden." Doctoral thesis, KTH, Jord- och bergmekanik, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4287.
Full textQC 20100622
Hammarström, Anton. "Utvärdering av potential för värmeåtervinning från laborationsutrustning : Möjligheten att använda en kylvattenbassäng som termiskt säsongslager." Thesis, Mittuniversitetet, Avdelningen för kemiteknik, 2018. http://urn.kb.se/resolve?urn=urn:nbn:se:miun:diva-34309.
Full textHETA Education in Härnösand has a steam power plant for educational purposes which is cooled with water from a 329 m³ underground basin. The purpose of this thesis has been to examine how the basin with the waste heat can be used as seasonal thermal energy storage with an existing 7.8 kW heat pump in order to heat the machine room of their lab building. A spreadsheet was created in Microsoft Excel in order to carry out the calculations. As no measurement data was available, a simulated scenario was created based on temperature statistics and the operating schedule for the power plant from the year 2017. Transmission losses were calculated for the basin and the machine room. For the basin, mostly observational data and knowledge among the staff were used, while the insulation for the machine room mainly had to be estimated based on the construction year. The result was that the heat pump, with the current operating schedule, could cover around 45% of the yearly heating demand of the machine room. Of the 276 GJ that were added through cooling of the power plant during a year, according to calculations, only 2,7% could be used for heating the machine hall, due to lacking insulation in the basin. The greatest limitations for achieving a higher heating coverage and a greater usage of the waste heat were assessed to be the placement in time of the power plant runs, and the effect of the heat pump. If the runs would be placed mainly in November–April, and the heat pump replaced with a 10 kW one, around 74% of the heating demand could be covered and 18 % of the waste heat used. Other things, such as increased insulation in the basin and larger water volume were also assessed to be able to increase the capacity of the basin as heat storage.
Соломко, Павло Анатолійович. "Аналіз шляхів підвищення енергоефективності корпусу № 2 Запорізької станції переливання крові." Магістерська робота, 2022. https://dspace.znu.edu.ua/jspui/handle/12345/6554.
Full textUA : Робота викладена на 93 сторінках друкованого тексту, містить23 таблиці,18 рисунків.Перелік посилань включає 45 джерела з них на іноземній мові 0. У кваліфікаційній роботі магістра розглядалися характеристики опису об’єкта, опис технічного стану огороджувальних конструкцій, система опалення, система освітлення, система охолодження, кондиціювання, вентиляції, утеплення будівлі, вибір утеплювача. Зроблений теплотехнічний розрахунок огороджуючих конструкцій, розрахунок тепловтрат будівлі. Аналіз споживання паливо-енергетичних ресурсів. Витрати на теплову енергію, гарячу воду, холодну воду. Розрахунок економії від впровадження системи автоматичного регулювання опалення будівлі. Розрахунок річних витрат на теплову енергію. Розрахунок капітальних вкладень.
EN : The work is presented on 93 pages of printed text, contains23 tables,18 figures. The list of references includes 45 sources, 0 of them in foreign language. The master's qualification work considered the characteristics of the description of the object, the description of the technical condition of fencing structures, heating system, lighting system, cooling system, air conditioning, ventilation, building insulation, the choice of insulation. The thermotechnical calculation of enclosing constructions, calculation of heat losses of the building is made. Analysis of fuel and energy resources consumption. Costs for thermal energy, hot water, cold water. Calculation of savings from the introduction of automatic heating control of the building. Calculation of annual costs for thermal energy. Calculation of capital investments.
Костенко, Сергій Олександрович. "Аналіз енергоспоживання Запорізької станції переливання крові." Магістерська робота, 2020. https://dspace.znu.edu.ua/jspui/handle/12345/3516.
Full textUA : Робота викладена на 107 сторінок друкованого тексту, містить 17 таблиць,17 рисунків. Перелік посилань включає 45 джерел з них на іноземній мові 0. У кваліфікаційній роботі проведений аналіз енергоспоживання Запороізької станції переливання крові. Виконано розрахунок втрат теплоти через окремі зовнішні захищаючі конструкції. Знайдено засоби для термомодернізації будівлі. Доведено, що термомодернізація буде ефективною, актуальною та з підтверженням в техніко-економічному обґрунтуванні проектних рішень.
EN : The work is presented on 107 pages of printed text, contains17 tables,17 figures. The list of references includes 45 sources, 0 of them in foreign language. In the qualification work the analysis of energy consumption of the Zaporozhye blood transfusion station is carried out. The calculation of heat losses through separate external protective structures is performed. Means for thermal modernization of the building were found. It is proved that thermal modernization will be effective, relevant and confirmed in the feasibility study of design decisions.
Books on the topic "Heating engineering calculation"
Escudier, Marcel. Introduction to Engineering Fluid Mechanics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198719878.001.0001.
Full textPedersen, Curtis O. Cooling and Heating Load Calculations for Buildings (Dekker Mechanical Engineering). CRC, 2007.
Find full textBook chapters on the topic "Heating engineering calculation"
Shao, Qing, Fu-ting Bao, and Chao-feng Liu. "Aerodynamic heating calculation by lattice Boltzmann equation." In Advances in Energy Science and Equipment Engineering II, 1915–22. Taylor & Francis Group, 6000 Broken Sound Parkway NW, Suite 300, Boca Raton, FL 33487-2742: CRC Press, 2017. http://dx.doi.org/10.1201/9781315116174-203.
Full textLin, Z., L. Fu, and Z. Zhao. "Calculation method of off-design power program for extraction and heating of turbine." In Frontiers of Energy and Environmental Engineering, 121–25. CRC Press, 2012. http://dx.doi.org/10.1201/b13718-29.
Full textShendryk, Vira, Olha Shulyma, and Yuliia Parfenenko. "The Topicality and the Peculiarities of the Renewable Energy Sources Integration into the Ukrainian Power Grids and the Heating System." In Advances in Environmental Engineering and Green Technologies, 162–92. IGI Global, 2015. http://dx.doi.org/10.4018/978-1-4666-8222-1.ch007.
Full textTsybulskyi, Vitalii. "IMPROVEMENT OF CALCULATION METHOD OF ROAD PAVEMENT EMBANKMENT ON THE APPROACHES TO ROAD BRIDGES." In Integration of traditional and innovation processes of development of modern science. Publishing House “Baltija Publishing”, 2020. http://dx.doi.org/10.30525/978-9934-26-021-6-41.
Full text"Technology of Heat and Moisture Regeneration for Ventilation Systems." In Technology Development for Adsorptive Heat Energy Converters, 174–222. IGI Global, 2021. http://dx.doi.org/10.4018/978-1-7998-4432-7.ch006.
Full textVinogradov, Alexander, Anatoly Sopov, Vadim Bolshev, and Alina Vinogradova. "Gainful Utilization of Excess Heat From Power Transformers." In Handbook of Research on Smart Computing for Renewable Energy and Agro-Engineering, 132–62. IGI Global, 2020. http://dx.doi.org/10.4018/978-1-7998-1216-6.ch006.
Full textPierzchalski, Michał. "Single-Family Residential Building Energy Retrofit." In Advances in Civil and Industrial Engineering, 248–74. IGI Global, 2018. http://dx.doi.org/10.4018/978-1-5225-4105-9.ch011.
Full textArtyukhov, Artem, Nadiia Artyukhova, and Jan Krmela. "Computer Simulation of the Aerodisperse Systems Hydrodynamics in Granulation and Drying Apparatus." In Process Analysis, Design, and Intensification in Microfluidics and Chemical Engineering, 277–321. IGI Global, 2019. http://dx.doi.org/10.4018/978-1-5225-7138-4.ch010.
Full textConference papers on the topic "Heating engineering calculation"
Tarasov, Fedor E., Ekaterina O. Marinkova, Sergey A. Bychkov, and Vasilyi E. Frizen. "Calculation of inductor for stamp tools heating systems." In 2017 IEEE Conference of Russian Young Researchers in Electrical and Electronic Engineering (EIConRus). IEEE, 2017. http://dx.doi.org/10.1109/eiconrus.2017.7910878.
Full textNajafiyazdi, Alireza. "An Engineering Inviscid-Reacting Boundary Layer Method for Calculation of Hypersonic Aerodynamic Heating." In 43rd AIAA Aerospace Sciences Meeting and Exhibit. Reston, Virigina: American Institute of Aeronautics and Astronautics, 2005. http://dx.doi.org/10.2514/6.2005-510.
Full textKuvaldin, A. B., M. A. Fedin, N. S. Nekrasova, A. O. Kuleschov, O. A. Polyakov, and S. S. Kondrashov. "Development of Software for the Automated Calculation Performance Induction Heating Gradient Blanks." In 2020 V International Conference on Information Technologies in Engineering Education ( Inforino ). IEEE, 2020. http://dx.doi.org/10.1109/inforino48376.2020.9111838.
Full textBiryulin, V. I., A. N. Gorlov, and D. V. Kudelina. "Calculation of Cable Lines Insulation Heating with the Account of High Harmonics Currents." In 2018 International Conference on Industrial Engineering, Applications and Manufacturing (ICIEAM). IEEE, 2018. http://dx.doi.org/10.1109/icieam.2018.8728688.
Full textSun, Dexing, Haibo Chen, and Jili Zhang. "Analysis and Calculation of Heat Transfer from Low-Temperature Hot Water Floor Radiant-Heating System." In Architectural Engineering Conference (AEI) 2003. Reston, VA: American Society of Civil Engineers, 2003. http://dx.doi.org/10.1061/40699(2003)25.
Full textMalikov, German, Vladimir Lisienko, Yuri Malikov, Yaroslav Chudnovsky, and Raymond Viskanta. "A Coupled Solution Procedure for Zonal Radiative and Convective Heat Transfer in 3-D Enclosures With Blockages and Screens." In ASME 2007 International Mechanical Engineering Congress and Exposition. ASMEDC, 2007. http://dx.doi.org/10.1115/imece2007-43154.
Full textZheng, Jiajia, Zhaochun Li, and Jiong Wang. "Heating of Long-Stroke Magnetorheological Fluid Damper." In ASME 2013 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/imece2013-62604.
Full textDong, Wei, and H. T. Fan. "Finite Volume TVD Algorithm for Computation of Aerodynamic Heating." In ASME 1998 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1998. http://dx.doi.org/10.1115/imece1998-0722.
Full textHou, Xiaofan, Zhongning Sun, Guangming Fan, Jiguo Tang, and Jiqiang Su. "Flow Characteristics in an Open Two-Phase Natural Circulation Loop." In 2014 22nd International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/icone22-30549.
Full textBing, Wei, and Li Li. "Optimization for Heating System Schemes Based on GRA Method." In ASME 2008 2nd International Conference on Energy Sustainability collocated with the Heat Transfer, Fluids Engineering, and 3rd Energy Nanotechnology Conferences. ASMEDC, 2008. http://dx.doi.org/10.1115/es2008-54080.
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