Small Cogeneration Unit with Heat and Electricity Storage
Abstract
:1. Introduction
2. Energy Supply System
3. Model Configuration
4. Determination of Engine Service Life
5. Discussion
6. Conclusions
- The reconstruction of the ICE from ordinary vehicles available from scrap yards to stationary CHP units with the calculated model, which offers huge energy potential in residential applications, is outlined.
- Economical savings in terms of initial investments into the standalone system, with a 30–40% cost compared to OEM (CHP and battery storage), together with the discussion about the price of electric and thermal energy from the grid compared to the price per kW generated by the CHP, are shown.
- The utilization of oversized units without any additional investments can withstand unexpected events of breakdowns or natural disasters for several days.
- The reduction in greenhouse gas emissions while enabling the second life of the aged, withdrawn components with great energy potential to offer.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Gorria, C.; Jimeno, J.; Laresgoiti, I.; Lezaun, M.; Ruiz, N. Forecasting flexibility in electricity demand with price/consumption volume signals. Electr. Power Syst. Res. 2013, 95, 200–205. [Google Scholar] [CrossRef]
- Aslam, M.; Masjuki, H.; Kalam, M.; Abdesselam, H.; Mahlia, T.; Amalina, M. An experimental investigation of CNG as an alternative fuel for a retrofitted gasoline vehicle. Fuel 2006, 85, 717–724. [Google Scholar] [CrossRef]
- Khan, M.I.; Yasmin, T.; Shakoor, A. Technical overview of compressed natural gas (CNG) as a transportation fuel. Renew Sustain. Energy Rev. 2015, 51, 785–797. [Google Scholar] [CrossRef]
- Li, H.; Yu, C.; Chen, R.; Li, J.; Li, J. Novel ionic liquid-type Gemini surfactants: Synthesis, surface property and antimicrobial activity. Colloids Surfaces A Physicochem. Eng. Asp. 2012, 395, 116–124. [Google Scholar] [CrossRef]
- Bielaczyc, P.; Szczotka, A.; Woodburn, J. A comparison of exhaust emissions from vehicles fuelled with petrol, LPG and CNG. IOP Conf. Series Mater. Sci. Eng. 2016, 148, 012060. [Google Scholar] [CrossRef] [Green Version]
- Eurostat. Available online: https://ec.europa.eu/eurostat (accessed on 25 December 2018).
- Shams, S.; Ahmadian, J.; Ghorbanian, M.J.; Nalbandian, H. Applying the CHP method on small-scale on-site power generation. In Proceedings of the 2013 IEEE Conference on Clean Energy and Technology (CEAT), Langkawi, Malaysia, 18–20 November 2013; pp. 303–306. [Google Scholar]
- Boukhanouf, R. Small combined heat and power (CHP) systems for commercial buildings and institutions. Small Micro Comb. Heat Power (CHP) Syst. 2011, 365–394. [Google Scholar] [CrossRef]
- Isa, N.M.; Tan, C.W.; Yatim, A. A comprehensive review of cogeneration system in a microgrid: A perspective from architecture and operating system. Renew. Sustain. Energy Rev. 2018, 81, 2236–2263. [Google Scholar] [CrossRef]
- Skolnik, P.; Hubka, L.; Modrlak, O.; Nahlovsky, T. Cogeneration units simulation models library. In Proceedings of the 2013 International Conference on Process Control (PC), Štrbské Pleso, Slovakia, 18–21 June 2013; pp. 252–256. [Google Scholar]
- Kılkış, Ş.; Krajačić, G.; Duić, N.; Rosen, M.A.; Al-Nimr, M.A. Advancements in sustainable development of energy, water and environment systems. Energy Convers. Manag. 2018, 176, 164–183. [Google Scholar] [CrossRef]
- Charged: Electrical Vehicles Magazine. Available online: https://chargedevs.com/newswire/new-report-analyzes-global-market-for-recycled-lithium-and-cobalt/ (accessed on 23 June 2020).
- Battery University. Available online: https://batteryuniversity.com/learn/article/bu_1003a_battery_aging_in_an_electric_vehicle_ev (accessed on 25 July 2020).
- Heywood, J.B. Internal Combustion Engine Fundamentals; McGraw-Hill: New York, NY, USA, 1988; ISBN 0-07-100499-8. [Google Scholar]
- He, H.; Xiong, R.; Fan, J. Evaluation of Lithium-Ion Battery Equivalent Circuit Models for State of Charge Estimation by an Experimental Approach. Energies 2011, 4, 582–598. [Google Scholar] [CrossRef]
- Battery University. Available online: https://batteryuniversity.com/learn/article/charging_lithium_ion_batteries (accessed on 5 July 2020).
- Pavlovic, J.; Marotta, A.; Ciuffo, B. CO2 emissions and energy demands of vehicles tested under the NEDC and the new WLTP type approval test procedures. Appl. Energy 2016, 177, 661–670. [Google Scholar] [CrossRef]
- Tsiakmakis, S.; Fontaras, G.; Cubito, C.; Pavlovic, J.; Anagnostopoulos, K.; Ciuffo, B. From NEDC to WLTP: Effect on the Type-Approval CO2 Emissions of Light-Duty Vehicles; Publications Office of the European Union: Luxembourg, 2017. [Google Scholar] [CrossRef]
- Potrykus, S.; Kutt, F.; Nieznański, J.; Morales, F.J.F. Advanced Lithium-Ion Battery Model for Power System Performance Analysis. Energies 2020, 13, 2411. [Google Scholar] [CrossRef]
- Dragomir-Stanciu, D.; Saghebian, S.M.; Ianus, G. Optimizing the Efficiency and Electricity Production of an Internal Engine CHP. CISET 2020, 2, 544–548. [Google Scholar]
- Uitz, M.; Sternad, M.; Breuer, S.; Täubert, C.; Traußnig, T.; Hennige, V.; Hanzu, I.; Wilkening, M. Aging of Tesla’s 18650 Lithium-Ion Cells: Correlating Solid-Electrolyte-Interphase Evolution with Fading in Capacity and Power. J. Electrochem. Soc. 2017, 164, A3503–A3510. [Google Scholar] [CrossRef] [Green Version]
- Bloomberg New Energy Finance. Available online: https://about.bnef.com/blog/battery-pack-prices-cited-below-100-kwh-for-the-first-time-in-2020-while-market-average-sits-at-137-kwh/ (accessed on 16 December 2020).
Engine Displacement (cm3) | Bore (mm) | Stroke (mm) | Compression Ratio (–) |
999 | 74.5 | 76.4 | 11.5 |
Maximum Power (kW) | Maximum Torque (Nm) | Fuel (–) | Air/Fuel Ratio (–) |
38 at 5000 rpm | 83 at 3000 rpm | CNG | 1.1 |
Energy in Fuel | Usable Energy | Electric Energy | Friction Losses | Exhaust Energy | Heat Transfer | |
---|---|---|---|---|---|---|
Energy (kW) | 80.9 | 73.8 | 26.1 | 3.5 | 30.8 | 13.4 |
Fuel Energy (%) | 109.6 | 100 | 35.4 | 4.7 | 41.7 | 18.2 |
Regime | Low | Medium | High | Extra High | Total |
---|---|---|---|---|---|
Duration (s) | 589 | 433 | 455 | 323 | 1800 |
Stop duration (s) | 150 | 49 | 31 | 8 | 235 |
Distance (m) | 3095 | 4756 | 7162 | 8254 | 23,266 |
Number of stops (%) | 26.5 | 11.1 | 6.8 | 2.2 | 13.4 |
Maximum speed (km/h) | 56.5 | 76.6 | 97.4 | 131.3 | |
Average speed without stops (km/h) | 25.3 | 44.5 | 60.7 | 94.0 | 53.5 |
Average speed with stops (km/h) | 18.9 | 39.4 | 56.5 | 91.7 | 46.5 |
Gear | Gear Ratio (-) | Transfer Efficiency (-) |
---|---|---|
1 | 3.64 | 0.98 |
2 | 1.96 | 0.98 |
3 | 1.21 | 0.98 |
4 | 0.76 | 0.97 |
Final gear | 4.167 |
Regime | Distance (km) |
---|---|
Low | 13,302 |
Medium | 20,441 |
High | 30,782 |
Extra High | 35,475 |
Regime | Circumferential Velocity (km/h) | Time (h) |
---|---|---|
Low | 21.48 | 619.18 |
Medium | 39.90 | 512.34 |
High | 64.63 | 476.30 |
Extra High | 85.00 | 417.63 |
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Stetina, J.; Bohm, M.; Brezina, M. Small Cogeneration Unit with Heat and Electricity Storage. Energies 2021, 14, 2102. https://doi.org/10.3390/en14082102
Stetina J, Bohm M, Brezina M. Small Cogeneration Unit with Heat and Electricity Storage. Energies. 2021; 14(8):2102. https://doi.org/10.3390/en14082102
Chicago/Turabian StyleStetina, Josef, Michael Bohm, and Michal Brezina. 2021. "Small Cogeneration Unit with Heat and Electricity Storage" Energies 14, no. 8: 2102. https://doi.org/10.3390/en14082102
APA StyleStetina, J., Bohm, M., & Brezina, M. (2021). Small Cogeneration Unit with Heat and Electricity Storage. Energies, 14(8), 2102. https://doi.org/10.3390/en14082102