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    Energetic, economic, and environmental perspectives on systematic design and energy management of a power-to-methane system integrated with power cycle
    (2025-12-01)
    Saebea, Dang
    ;
    Arpornwichanop, Amornchai
    ;
    Patcharavorachot, Yaneeporn
    The methanation process transforms CO<inf>2</inf> into green methane by combining it with hydrogen from solid oxide electrolysis cells (SOECs). Efficient energy management of the integrated system, along with effective heat utilization from methanation for power generation, enhances system efficiency. This study compares four configurations of a system incorporating SOECs, methanation, and the Rankine cycle, focusing on energetic, economic, and environmental performance. The impact of gas recycling in the adiabatic methanator on system performance was also investigated. Key findings reveal that incorporating a water separation unit and increasing the gas recycle ratio significantly improve methane yield and CO<inf>2</inf> utilization. Systems with water removal through heat integration achieve overall efficiencies of 50.17 to 52.27%. The levelized product cost of the system with water removal is lower, ranging from 195.27 to 223.05 $/MWh, and it produces the lowest CO<inf>2</inf> emission intensity at 119.91 kgCO<inf>2</inf> per MWhCH<inf>4</inf>.
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    Synergistic effect of recycled E-waste fiber and polyvinyl alcohol on the properties of green concrete incorporating recycled concrete aggregate
    (2025-10-01)
    Chatveera, Burachat
    ;
    Ejaz, Ali
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    Hanif, Muhammad Adnan
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    Saingam, Panumas
    ;
    Hussain, Qudeer
    The growing demand for sustainable construction highlights the need for innovative concrete solutions using waste materials. Although recycled concrete aggregate (RCA), polyvinyl alcohol (PVA), and recycled electronic waste fibers (E-waste fibers) have been studied individually, their combined effects remain underexplored. This study addresses this gap by investigating the synergistic effects of coarse RCA (CRCA) and E-waste fibers on the fresh, mechanical, durability, thermal, and economic properties of green concrete. Fly ash replaced 20 % of cement, and PVA was added at 1 % by cement weight. Results showed that increasing CRCA content reduced workability and strength due to porosity. However, incorporating 4.5 % E-waste fibers significantly improved mechanical performance by bridging microcracks. Higher fiber contents negatively affected durability and workability. Thermal conductivity decreased with more CRCA and fibers, enhancing insulation. Economic analysis confirmed that 4.5 % E-waste fiber offers cost-effective performance. This study supports the sustainable use of electronic and construction waste in concrete.
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    Item type:Publication,
    Economic and environmental analyses for achieving net-zero CO2 emissions of a green diesel production process
    (2024-12-01)
    Pongboriboon, Nattapat
    ;
    Mariyappan, Vinitha
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    Wu, Wei
    ;
    Chandra-Ambhorn, Walairat
    Background: In this study, palm oil hydrotreating for producing green diesel has been thoroughly explored, emphasizing high yields, reduced environmental impact, and lower energy consumption, particularly with solar collectors. Methods: This study addresses these gaps by evaluating impacts on multiple fronts, including carbon revenue, GHG emissions, and overall environmental effects. The Life Cycle Assessment (LCA) technique, utilizing the CML method developed by Centrum voor Milieukunde Leiden (the Center for Environmental Science at Leiden University, The Netherlands) in SimaPro®, is employed to assess the environmental impact of green diesel production processes. The CML method evaluates environmental impacts through three phases: characterization, which quantifies environmental loads; midpoint, which assesses intermediate impact stages such as global warming potential; and damage, which evaluates potential harm to human health, ecosystems, and resource availability. The scope of work includes simulating the production process and incorporating a CO<inf>2</inf> capture unit with Aspen Plus®. Additionally, kinetic parameters for the palm oil hydrotreating reaction were validated, and energy consumption was optimized using the Aspen Energy Analyzer. Significant findings: The net-zero emissions of the green diesel (GD) production from crude palm oil (CPO) is achieved by using an integration of an evacuated tube solar collector (ETSC), heat exchanger network, and a post-separation CO<inf>2</inf> capture process. Through the life cycle assessment (LCA), the terrestrial ecotoxicity potential (TEIP) is identified as a significant environmental factor due to chemical pesticides used in the oil palm cultivation. The carbon neutrality is validated by producing 1 kg of GD from CPO down to 0.0617 kg total CO<inf>2</inf> emissions since the net CO<inf>2</inf> sequestration for palm oil from oil palm plantation is taken into account. Referring to the Guthrie method, the economic indicators including the net present value (NPV) and the payback period are estimated at around 0.9 M$ in the 15th year and 9 years, respectively, if the CPO purchase price and the GD selling price are assumed to be $0.47/kg CPO and $1.98/kg GD, respectively, and the increased annual carbon credit is taken into account.
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    Process design and economic evaluation of biomass-based negative emission technologies
    (2023-01-01)
    Wu, Wei
    ;
    Supankanok, Rasa
    ;
    Chandra-Ambhorn, Walairat
    ;
    Pongboriboon, Nattapat
    A palm oil-based polygeneration system (POPS) is simulated to produce the main product of high-purity green diesel as well as the liquefied petroleum gas (LPG) as a by-product. The CO<inf>2</inf>-negative design includes approaches of (i) a series of cryogenic separators for the recovery of approximately 65.5% of hydrogen feedstock, (ii) the evacuated tube solar collector (ETSC) for reducing 35% flue gas from the furnace, (iii) the amine-based CO<inf>2</inf> capture process for pursuing the high-purity CO<inf>2</inf> product. The economic analysis of POPS shows that the process becomes economically attractive if the diesel price and crude palm oil should be around 1.98 and 0.47 $kg<sup>-1</sup>, respectively.
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    Hydrogen and power generation via integrated bio-oil sorption-enhanced steam reforming and solid oxide fuel cell systems: Economic feasibility analysis
    (2021-03-19)
    Wiranarongkorn, Kunlanan
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    Patcharavorachot, Yaneeporn
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    Panpranot, Joongjai
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    Assabumrungrat, Suttichai
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    Arpornwichanop, Amornchai
    A solid oxide fuel cell (SOFC) is a promising technology for generating electricity and heat with high efficiency and environmental friendliness. The use of a bio-oil as a renewable and low-cost feedstock for an external reforming SOFC system can reduce fossil fuel consumption and greenhouse gas emissions. From a technical perspective, high-purity hydrogen (H<inf>2</inf>) for SOFCs can be produced from the sorption-enhanced steam reforming (SESR). In this study, an economic analysis of a bio-oil SESR and SOFC integrated system (160 kW alternating current electricity production) is performed to evaluate the feasibility of the designed process. An economic comparison of the systems with different configurations, i.e., SESR-SOFC integrated systems with and without anode gas recirculation and a conventional reforming-based SOFC system (CON-SOFC), is presented in terms of their net present cost (NPC) and levelized cost of energy (LCOE). According to the results, the SESR-SOFC system with anode gas recirculation is more favorable than the CON-SOFC system and SESR-SOFC system without recirculation. Nevertheless, it remains economically infeasible because its NPC in the 20<sup>th</sup> year is approximately 6.13% higher than that of the combined heat and power (CHP) system (a base case). However, it can attain economic equivalence with the CHP system when a carbon tax of at least $15 t<inf>CO<inf>2</inf></inf><sup>−1</sup> is considered or when the SOFC capital cost, interest rate, and bio-oil cost are separately reduced by 14%, 21%, and 37%, respectively. In addition, an increase in feed-in tariff has the highest impact on the NPC reduction of the renewable bio-oil SESR-SOFC integrated system with recirculation.
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    Item type:Publication,
    Retrofitted existing residential building design in energy and economic aspect according to Thailand building energy code
    (2021-02-02)
    Ananwattanaporn, Santipont
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    Patcharoen, Theerasak
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    Bunjongjit, Sulee
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    Ngaopitakkul, Atthapol
    Electrical energy usage in buildings is a challenging issue because many old buildings were not originally built to achieve energy efficiency. Thus, retrofitting old buildings to net-zero buildings can benefit both the owner and electric utilities. In this study, the BEC (building energy code) software was used to evaluate energy aspects of retrofitted buildings in compliance with Thailand’s building energy code to achieve a net-zero energy building. In addition, economic aspects were also studied to verify the feasibility for a project’s owner to invest in a retrofitted existing building. An existing residential building in Thailand was used as a case study. The results in terms of energy after retrofitting existing buildings into net-zero energy buildings show that the total energy consumption can be reduced by 49.36%. From an economic perspective, the investment cost for a retrofitted building can be compensated by energy saving in terms of discounted payback period (DPP) for approximately 4.36 years and has an IRR (internal rate of return) value of 19.23%. This result evidences the potential in both energy and economy for a project’s owner to invest in a retrofitted existing building in compliance with the building code, with potential for implementation with benefits on both electrical utilities and the project’s owner.
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    Solar water heating in residential building
    (2019-07-01)
    Chiradeja, Pathomthat
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    Pothisarn, Chaichan
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    Jettanasen, Chaiyan
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    Yoomak, Suntiti
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    Songsukthawan, Panapong
    The electrical consumption has been rapidly increased in the past few decades. However, environment concern and depleting of fossil fuel lead to raise of alternative energy. One of the applications for solar energy that has gain significant attention is solar thermal for watering heating that can replace electricity. This paper aims to presents feasibility on solar water heating for residential building in Thailand. The analysis has been done on both energy performance and economic perspective using RETscreen software and Bangkok, Thailand as case study location in order to verify the feasibility of solar water heating application in residential building. The result has shown the potential of solar water heating system application in residential building as a replacement to conventional electrical water heating.