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1

Serdyukova, Natalya, and Alexander Shevtsov. "Biodiesel production technology using low-potential energy." BIO Web of Conferences 145 (2024): 04011. http://dx.doi.org/10.1051/bioconf/202414504011.

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Fatty acid esters obtained as a result of transesterification of vegetable oils or chemical reactions with alcohols are currently the main alternative fuels used in power plants. Since they do not contain aromatic hydrocarbons and sulfur compounds, emissions of CO2, hydrocarbons, carcinogens and carcinogenic substances into the atmosphere are significantly reduced compared to fuels derived from oil. An analysis of the efficiency reserves of the most promising biodiesel production technologies shows the advantages of using supercritical fluids to isolate CO2 from a biodiesel mixture and then se
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2

Iliev, R., and Ts Tsalov. "Harnessing of the low energy wind potential." IOP Conference Series: Earth and Environmental Science 1234, no. 1 (2023): 012001. http://dx.doi.org/10.1088/1755-1315/1234/1/012001.

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Abstract This paper analyzes the wind energy parameters for different areas with low wind energy potential using the data from the global online wind map. The performance characteristics of different types of wind turbines are reviewed. The generated theoretical electric energy within one year for 9 types of wind turbines is presented. Suitable wind turbines for harnessing low wind potential, that can cover the electrical needs of one household are proposed.
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3

Whisnant, C. Steven. "Energy dependence of the low energy pion-nucleus optical potential." Physical Review C 34, no. 1 (1986): 262–66. http://dx.doi.org/10.1103/physrevc.34.262.

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Liu, Di, Fu-Yun Zhao, and Guang-Fa Tang. "Active low-grade energy recovery potential for building energy conservation." Renewable and Sustainable Energy Reviews 14, no. 9 (2010): 2736–47. http://dx.doi.org/10.1016/j.rser.2010.06.005.

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5

Shuyushbayeva, N., N. Tanasheva, and A. Zhassynbay. "THE IMPORTANCE OF USING THE HEAT ENERGY OF THE EARTH." Sciences of Europe, no. 112 (March 8, 2023): 50–52. https://doi.org/10.5281/zenodo.7708517.

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The article discusses the importance of using low-potential heat of the earth throughout the world. The dependence of the Earth's temperature on the geothermal gradient is given, and several options for heating and cooling systems for buildings using low-potential earth heat are considered.
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6

Bondarev, V., and K. Chebanov. "USE OF LOW POTENTIAL ENERGY FOR ELECTRIC AND THERMAL ENERGY PRODUCTION." ASJ 1, no. 55 (2021): 15–18. http://dx.doi.org/10.31618/asj.2707-9864.2021.1.55.131.

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This article presents new directions for the search for alternative energy sources that can be extracted from the environment, have unlimited reserves, low cost of conversion into other types of energy, do not use fossil fuels, are autonomous, environmentally friendly, do not depend on meteorological conditions and the time of year, do not require long lines for power transmission. Objectives: Rational use of fuel and energy resources is today one of the global world problems, the successful solution of which, apparently, will be of decisive importance not only for the further development of t
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7

Nagel, David J., and Kamron C. Fazel. "Low Energy Nuclear Reactions: Exciting New Science and Potential Clean Energy." Fusion Science and Technology 61, no. 1T (2012): 463–68. http://dx.doi.org/10.13182/fst12-a13464.

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8

Sumetskii, M. "Potential barrier renormalization by low-energy surface plasmons." Solid State Communications 74, no. 9 (1990): 877–83. http://dx.doi.org/10.1016/0038-1098(90)90448-k.

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9

Wang, Y., and J. Rapaport. "The optical model potential for low-energy nucleons." Nuclear Physics A 454, no. 2 (1986): 359–64. http://dx.doi.org/10.1016/0375-9474(86)90273-3.

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10

Khudoykulov, Rustam Kuchkarovich. "USE OF LOW POTENTIAL SECONDARY HEAT ENERGY RESOURCES." Academic Research Journal 1, no. 6 (2022): 271–75. https://doi.org/10.5281/zenodo.7494652.

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11

Islam, Rumana, Charushi Panditharatne, John Schellenberg, Richard Sparling, Nazim Cicek, and David B. Levin. "Potential of thin stillage as a low-cost nutrient source for direct cellulose fermentation by Clostridium thermocellum." AIMS Energy 3, no. 4 (2015): 711–27. http://dx.doi.org/10.3934/energy.2015.4.711.

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12

Nuzzo, S., and M. Zarcone. "Low-energy potential scattering in a strong magnetic field." Journal of Physics B: Atomic, Molecular and Optical Physics 22, no. 22 (1989): L627—L631. http://dx.doi.org/10.1088/0953-4075/22/22/002.

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13

Pignone, M., M. Lacombe, B. Loiseau, and R. Vinh Mau. "ParisNN¯potential and recent proton-antiproton low energy data." Physical Review C 50, no. 6 (1994): 2710–30. http://dx.doi.org/10.1103/physrevc.50.2710.

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14

Vasholz, David P. "Low Froude number potential energy resonances in uniform stratification." Physics of Fluids 14, no. 2 (2002): 458–61. http://dx.doi.org/10.1063/1.1425838.

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15

Khuri, N. N., André Martin, J. M. Richard, and Tai Tsun Wu. "Low-energy potential scattering in two and three dimensions." Journal of Mathematical Physics 50, no. 7 (2009): 072105. http://dx.doi.org/10.1063/1.3167803.

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16

Echenique, P. M., F. Flores, and R. H. Ritchie. "Image potential effects for low and high energy electrons." Surface Science Letters 251-252 (July 1991): A313. http://dx.doi.org/10.1016/0167-2584(91)90838-i.

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17

Chini, T. K., and D. Ghose. "On the interaction potential in low energy ion scattering." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 42, no. 2 (1989): 293–94. http://dx.doi.org/10.1016/0168-583x(89)90723-4.

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18

Echenique, P. M., F. Flores, and R. H. Ritchie. "Image potential effects for low and high energy electrons." Surface Science 251-252 (July 1991): 119–26. http://dx.doi.org/10.1016/0039-6028(91)90965-u.

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19

Zvereva, E. R., G. E. Marin, and A. V. Ishalin. "Utilization of low-potential thermal power plant energy sources." Power engineering: research, equipment, technology 26, no. 6 (2025): 147–56. https://doi.org/10.30724/1998-9903-2024-26-6-147-156.

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THE PURPOSE. Development of technical solutions for the utilization of secondary boiling steam to reduce losses of thermal energy, steam and condensate of CHP plants. METHODS. Comparative studies of disposal options were conducted, and several schemes for condensation of low-potential energy sources were proposed. The economic effect of the proposed technical solutions for the utilization of steam emissions from CHP plants is calculated. RESULTS. To determine the technical characteristics of the auxiliary equipment, calculations were carried out on the amount of coolant. During the winter peri
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20

Kull, Tuule Mall, Karl-Rihard Penu, Martin Thalfeldt, and Jarek Kurnitski. "Energy saving potential with smart thermostats in low-energy homes in cold climate." E3S Web of Conferences 172 (2020): 09009. http://dx.doi.org/10.1051/e3sconf/202017209009.

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Smart home systems with smart thermostats have been used for years. Although initially mostly installed for improving comfort, their energy saving potential has become a renowned topic. The main potential lies in temperature reduction during the times people are not home, which can be detected by positioning their phones. Even if the locating is precise, the maximum time people are away from home is short in comparison to the buildings’ time constants. The gaps are shortened by the smart thermostats, which start to heat up hours before occupancy to ensure comfort temperatures at arrival, and l
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21

Wilhelmsson, Ulla, and Gunnar Nyman. "A low energy quasiclassical trajectory study of N++H2. Potential energy surface effects." Journal of Chemical Physics 96, no. 3 (1992): 1886–95. http://dx.doi.org/10.1063/1.462089.

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22

Campañá, Carlos, and Ronald E. Miller. "Transiting the molecular potential energy surface along low energy pathways: The TRREAT algorithm." Journal of Computational Chemistry 34, no. 29 (2013): 2502–13. http://dx.doi.org/10.1002/jcc.23408.

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23

Easter, David C. "Low-Energy Structures of (C6H6)13as Determined by Low-Temperature Monte Carlo Simulations Using Several Potential Energy Surfaces." Journal of Physical Chemistry A 107, no. 13 (2003): 2148–59. http://dx.doi.org/10.1021/jp027475s.

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24

Fedulova, S. O. "Hydrogen economy potential and low-carbon development." Science, technologies, innovation, no. 1(29) (2024): 3–8. http://dx.doi.org/10.35668/2520-6524-2024-1-01.

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The issue of hydrogen production and the formation of its cost price as a solution to global energy problems has been examined in the article. The main idea of the article is focused on exploring the potential of the hydrogen economy to achieve the goals of the Paris Climate Agreement and decarbonize many emission sectors. The study reveals and describes the main ways of producing gray, blue and green hydrogen and related problems of reducing the cost of one kilogram of hydrogen. Hydrogen is a universal energy carrier, both in the way it is produced and in the final products it can produce. Th
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25

Zimin, L. B. "Rotating Regenerators of Low-Potential Heat Energy of Gas Emissions." Heat Transfer Research 28, no. 7-8 (1997): 503–9. http://dx.doi.org/10.1615/heattransres.v28.i7-8.130.

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26

Pignone, M., M. Lacombe, B. Loiseau, and R. Vinh Mau. "Recent proton-antiproton low-energy data and the ParisNN¯potential." Physical Review Letters 67, no. 18 (1991): 2423–26. http://dx.doi.org/10.1103/physrevlett.67.2423.

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27

Wang, Zhi, Ioannis S. K. Kerkines, Keiji Morokuma, and Peng Zhang. "Analytical potential energy surfaces for N3 low-lying doublet states." Journal of Chemical Physics 130, no. 4 (2009): 044313. http://dx.doi.org/10.1063/1.3068742.

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28

Kylstra, N. J., and C. J. Joachain. "Laser-assisted, low-energy electron-potential scattering in aCO2laser field." Physical Review A 58, no. 1 (1998): R26—R29. http://dx.doi.org/10.1103/physreva.58.r26.

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29

Kitazawa, H., K. Go, and M. Igashira. "Low-energy neutron direct capture by12Cin a dispersive optical potential." Physical Review C 57, no. 1 (1998): 202–9. http://dx.doi.org/10.1103/physrevc.57.202.

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30

Grozdanov, Tasko P., and Ronald McCarroll. "Mean-potential statistical model for low-energy H++ H2reactive collisions." Journal of Physics: Conference Series 388, no. 10 (2012): 102016. http://dx.doi.org/10.1088/1742-6596/388/10/102016.

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31

Chiu, S. W., and D. M. Schrader. "Semiempirical diabatic potential for low-energy positron-atom elastic scattering." Physical Review A 33, no. 4 (1986): 2339–51. http://dx.doi.org/10.1103/physreva.33.2339.

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32

Samkhan, Igor I. "New possibilities for energy production from renewable low-potential sources." Applied Energy 74, no. 1-2 (2003): 203–9. http://dx.doi.org/10.1016/s0306-2619(02)00147-2.

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33

Mann, K., V. Celli, and J. Peter Toennies. "A simple theoretical potential for low-energy ion-surface interaction." Surface Science 185, no. 1-2 (1987): 269–82. http://dx.doi.org/10.1016/s0039-6028(87)80626-x.

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34

Mann, K., V. Celli, and J. Peter Toennies. "A simple theoretical potential for low-energy ion-surface interaction." Surface Science Letters 185, no. 1-2 (1987): A247. http://dx.doi.org/10.1016/0167-2584(87)90312-4.

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35

Mort, Steve P., Neville A. Jennings, and Gabriel G. Balint-Kurti. "A new low-lying potential energy surface for SiH+2." Chemical Physics Letters 222, no. 6 (1994): 603–7. http://dx.doi.org/10.1016/0009-2614(94)00393-9.

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36

Wang, Hung-Jen, Jai-Hong Cheng, and Yao-Chi Chuang. "Potential applications of low-energy shock waves in functional urology." International Journal of Urology 24, no. 8 (2017): 573–81. http://dx.doi.org/10.1111/iju.13403.

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37

Leal Ferreira, G. F., and M. T. Figueiredo. "Potential buildup in samples charged by successive low-energy pulses." IEEE Transactions on Dielectrics and Electrical Insulation 1, no. 4 (1994): 563–68. http://dx.doi.org/10.1109/94.311698.

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38

Marathe, V. R., and D. Mathur. "Potential energy curves of low-lying electronics states of CO2+." Chemical Physics Letters 163, no. 2-3 (1989): 189–92. http://dx.doi.org/10.1016/0009-2614(89)80032-6.

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39

Li, Anyang, Bing Suo, Zhenyi Wen, and Yubin Wang. "Potential energy surfaces for low-lying electronic states of SO2." Science in China Series B: Chemistry 49, no. 4 (2006): 289–95. http://dx.doi.org/10.1007/s11426-006-0289-5.

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40

Hui, Jun, Jiapeng Chen, Min Liu, Shuo Wang, and Biao Wang. "Low-energy potential-induced helium trapping in nano-austenitic steels." Journal of Nuclear Materials 606 (February 2025): 155636. https://doi.org/10.1016/j.jnucmat.2025.155636.

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41

Frontera, Patrizia, Lucio Bonaccorsi, Antonio Fotia, and Angela Malara. "Fibrous Materials for Potential Efficient Energy Recovery at Low-Temperature Heat." Sustainability 15, no. 8 (2023): 6567. http://dx.doi.org/10.3390/su15086567.

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Technology must improve energy generation and utilization to support human societies. All highly industrialized nations support the attempt to switch from fossil fuels to renewable energy sources—a process which is irreversible—but the support is not yet strong enough to make the switch. Energy-efficient and renewable heating and cooling systems offer considerable energy saving potential, since buildings use a large percentage of EU energy for heating and cooling, which still uses fossil fuels (75%). For this transition, innovation regarding the traditional material for thermal energy storage
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42

Tamura, E., R. Feder, J. Krewer, et al. "Energy-dependence of inner potential in Fe from low-energy electron absorption (target current)." Solid State Communications 55, no. 6 (1985): 543–47. http://dx.doi.org/10.1016/0038-1098(85)90331-x.

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43

Walter, S., V. Blum, L. Hammer, S. Müller, K. Heinz, and M. Giesen. "The role of an energy-dependent inner potential in quantitative low-energy electron diffraction." Surface Science 458, no. 1-3 (2000): 155–61. http://dx.doi.org/10.1016/s0039-6028(00)00433-7.

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44

Sun, QiXiang, and Bing Yan. "Potential energy curves crossing and low-energy charge transfer dynamics in (BeH2O)2+ complex." Science China Physics, Mechanics and Astronomy 55, no. 7 (2012): 1258–62. http://dx.doi.org/10.1007/s11433-012-4714-9.

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45

Bernecker, Thomas, Barry Bradshaw, Jeremy Iwanec, et al. "Australia’s Future Energy Resources project: the untapped potential of onshore low carbon energy resources." Australian Energy Producers Journal 64, no. 2 (2024): S325—S331. http://dx.doi.org/10.1071/ep23059.

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The ‘Australia’s Future Energy Resources’ (AFER) project, funded under the Government’s ‘Exploring for the Future’ (EFTF) program has been completed. The project’s four modules have evaluated a mixture of energy resource commodities, including natural gas, hydrogen, subsurface storage opportunities for carbon dioxide and hydrogen. They are complemented by several targeted basin inventories which outline the current geological knowledge of energy resources in underexplored, data-poor regions. Several publicly available data sets have been generated and published under the AFER project, includin
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46

Dyomina, O. V., and R. V. Gulidov. "Energy Future of the Russian Far East: Low-Carbon Development Potential." Energy Systems Research 6, no. 1(21) (2023): 26–33. http://dx.doi.org/10.25729/esr.2023.01.0004.

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The paper discusses the current and future- oriented models of development of the energy sector of the Russian Far East. We demonstrate that the current model is aimed at maximizing the external rent and resource rent, and it is characterized by a low priority of the environmental policy and actually ignores the global trend of the energy transition. We assess the risks of sticking to the current model and "no action taken" development of the energy sector. We review institutional conditions and identify barriers to the development of low- and zero-carbon technologies in the current model. The
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47

YUASA, Kazuhiro, Junghyun YOO, Hiroshi YOSHINO, and Kenichi HASEGAWA. "ENERGY SAVING POTENTIAL OF LOW-IMPACT LIFE STYLE IN RESIDENTIAL BUILDINGS." Journal of Environmental Engineering (Transactions of AIJ) 74, no. 642 (2009): 1019–24. http://dx.doi.org/10.3130/aije.74.1019.

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48

Li, Cheng, Dong F. Wang, Xu Yang, and Yuji Suzuki. "An ultra-low frequency ball-impacted potential-variable nonlinear energy harvester." Mechanical Systems and Signal Processing 182 (January 2023): 109588. http://dx.doi.org/10.1016/j.ymssp.2022.109588.

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Behairy, Kassem O., and Zakaria M. M. Mahmoud. "Systematic Low-Energy Optical Model Potential for $$\alpha$$-Nucleus Elastic Scattering." Physics of Atomic Nuclei 84, no. 5 (2021): 694–710. http://dx.doi.org/10.1134/s1063778821050045.

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Gendelman, B., O. Gendelman, R. Pogreb, and E. Bormashenko. "The potential comb improves the efficiency of low-frequency energy harvesting." Journal of Applied Physics 109, no. 11 (2011): 114512. http://dx.doi.org/10.1063/1.3592189.

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