Search results for "Fuel Technology"

showing 10 items of 323 documents

Hydrogen trapping: Synergetic effects of inorganic additives with cobalt Sulfide absorbers and reactivity of cobalt polysulfide

2012

International audience; The biphasic product CoS2 + Co(OH)(2) obtained by oxidation of cobalt sulfide is known to trap hydrogen at room temperature and low pressure according to a balanced reduction equation. Adding various inorganic compounds to this original absorber induces their reduction by hydrogen in the same conditions at a significant rate: (i) excess cobalt hydroxide is reduced to metallic cobalt; (ii) nitrate ions are reduced to ammonia; (iii) sulfur and sodium thiosulfate are reduced to H2S or NaHS and Na2S, respectively. Without a hydrogen absorber these inorganic compounds are not reduced by H-2, suggesting synergetic effects involving H-2 and the hydrogen absorber. Amorphous …

HydrogenCobalt hydroxideHydrogen sulfideInorganic chemistryDRINKING-WATEREnergy Engineering and Power Technologychemistry.chemical_elementCATALYSTS02 engineering and technology010402 general chemistry01 natural scienceschemistry.chemical_compoundREMOVALOXYSULFIDECHEMISTRYPolysulfideRenewable Energy Sustainability and the EnvironmentNITRITE021001 nanoscience & nanotechnologyCondensed Matter PhysicsSulfurCobalt sulfide0104 chemical sciencesCobalt extraction techniquesREDUCTIONFuel Technologychemistry13. Climate action0210 nano-technologyCobaltNITRATE
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Hydrogen underground storage—Petrographic and petrophysical variations in reservoir sandstones from laboratory experiments under simulated reservoir …

2018

Abstract Fluctuating energy production by renewables is one of the main issues in transition times of energy production from conventional power plants to an energy production by renewables. Using excess produced electricity (windy/sunny periods) to convert water to oxygen and hydrogen and storing the hydrogen in depleted oil-, gas fields or sedimentary aquifer structures would provide the option to recover and convert hydrogen to electricity in periods with an energy demand. Research focus is here the pore space in the geological underground where still few studies exist. In static batch experiments up to six weeks long, under different reservoir-specific conditions; regarding pressure, tem…

HydrogenEnergy Engineering and Power Technologychemistry.chemical_elementSoil scienceAquifer02 engineering and technology7. Clean energyPetrography0502 economics and business050207 economicsgeographygeography.geographical_feature_categoryRenewable Energy Sustainability and the Environmentbusiness.industry05 social sciencesPetrophysics021001 nanoscience & nanotechnologyCondensed Matter PhysicsRenewable energyFormation fluidNatural gas fieldFuel TechnologychemistryEnvironmental scienceSedimentary rock0210 nano-technologybusinessInternational Journal of Hydrogen Energy
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Hydrogen and methane production in extreme thermophilic conditions in two-stage (upflow anaerobic sludge bed) UASB reactor system

2013

Abstract Two-stage hydrogen and methane production in extreme thermophilic (70 °C) conditions was demonstrated for the first time in UASB-reactor system. Inoculum used in hydrogen and methane reactors was granular sludge from mesophilic internal circulation reactor and was first acclimated for extreme thermophilic conditions. In hydrogen reactor, operated with hydraulic retention time (HRT) of 5 h and organic loading rate (OLR) of 25.1 kg COD/m 3 /d, hydrogen yield was 0.73 mol/mol glucose added . Methane was produced in second stage from hydrogen reactor effluent. In methane reactor operated with HRT of 13 h and OLR of 7.8 kg COD/m 3 /d, methane yield was 117.5 ml/g COD added . These resul…

HydrogenHydraulic retention timeRenewable Energy Sustainability and the EnvironmentThermophileta1172Energy Engineering and Power Technologychemistry.chemical_elementCondensed Matter PhysicsPulp and paper industryMethaneInternal circulation reactorchemistry.chemical_compoundFuel Technologychemistryta219Methane productionEffluentMesophileInternational Journal Of Hydrogen Energy
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From determination of the fugacity coefficients to estimation of hydrogen storage capacity: A convenient theoretical method

2015

Abstract The equation of state (EOS) from virial expansion (VE) is used in this work to pave the way for determining the fugacity coefficients of the hydrogen fluid at arbitrary temperature and pressure. The fugacity coefficients from our VE method have more physical meanings than the empirical values. In this way, the hydrogen storage capacity of a novel material model can be estimated by using few density functional theory (DFT) calculations with the aid of a continuum model. The efficient continuum model can provide a more accurate estimation of the hydrogen storage capacity than the pure DFT calculations. Furthermore, the expensive grand canonical ensemble (μNT) simulations combining wi…

HydrogenRenewable Energy Sustainability and the EnvironmentChemistryEnergy Engineering and Power TechnologyThermodynamicschemistry.chemical_elementCondensed Matter PhysicsHydrogen storageGrand canonical ensembleFuel TechnologyTemperature and pressureVirial expansionDensity functional theoryFugacityBilayer grapheneInternational Journal of Hydrogen Energy
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Batch dark fermentative hydrogen production from grass silage: The effect of inoculum, pH, temperature and VS ratio

2008

Abstract The potential for fermentative hydrogen (H2) production from grass silage was evaluated in laboratory batch assays. First, two different inocula (from a dairy farm digester and digested sewage sludge) were studied with and without prior heat treatment and pH adjustment. Only the inoculum from the dairy farm digester produced H2 from grass silage. Without heat treatment, methane (CH4) was mainly produced, but heat treatment efficiently inhibited CH4 production. pH adjustment to 6 further increased H2 production. The effects of initial pH (4, 5 and 6), temperature (35, 55 and 70 ∘ C ) and the substrate to inoculum volatile solids (VS) ratio (henceforth VS ratio) (1:1; 1.5:1 and 2:1) …

HydrogenRenewable Energy Sustainability and the EnvironmentChemistrySilageEnergy Engineering and Power Technologychemistry.chemical_elementSubstrate (chemistry)Condensed Matter PhysicsMethanechemistry.chemical_compoundFuel TechnologyAnimal scienceFermentative hydrogen productionYield (chemistry)SludgeHydrogen productionInternational Journal of Hydrogen Energy
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Metal hydride alloys for storing hydrogen produced by anaerobic bacterial fermentation

2016

Abstract This study reports on hydrogen sorption from bacterial fermentation media with powdered palladium (Pd) and alloys (LaNi5, AB5, and AB2) that are capable of forming hydrides. Mass changes of the powders after incubation in fermentation media were measured by differential thermogravimetry. Composition and concentrations of the gases accumulated during fermentation and absorbed by Pd or the alloys were analyzed by mass spectrometry. The results demonstrated that hydrogen (H2) was absorbed and stored by powdered Pd and alloys directly from nutritional broth. The best sorption was obtained with Pd, followed by alloys AB5 and AB2. Scanning electron microscopy revealed that bacteria were …

HydrogenRenewable Energy Sustainability and the EnvironmentHydrideInorganic chemistryEnergy Engineering and Power Technologychemistry.chemical_elementSorption02 engineering and technologyDark fermentationequipment and supplies010402 general chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciences0104 chemical sciencesThermogravimetryFuel TechnologychemistryFermentation0210 nano-technologyInert gasPalladiumInternational Journal of Hydrogen Energy
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Experimental investigation on lithium borohydride hydrolysis

2010

Abstract Lithium borohydride, one of the highest energy density chemical energy carriers, is considered as an attractive potential hydrogen storage material due to its high gravimetric hydrogen density (19.6%). Belonging to borohydride compounds, it presents a real issue to overcome aims fixed by the U.S. Department of Energy in the field of energy, and so crystallizes currently attention and effort to use this material for large scale civil and military applications. However, due to its important hygroscopicity, lithium borohydride is a hazardous material which requires specific handling conditions for industrial aspects. In order to understand much more the reaction mechanism involved bet…

HydrogenRenewable Energy Sustainability and the EnvironmentInorganic chemistryEnergy Engineering and Power Technologychemistry.chemical_elementCondensed Matter PhysicsBorohydrideLithium metaboratechemistry.chemical_compoundHydrogen storageFuel TechnologychemistryLithium borohydrideLithiumDehydrogenationThermal analysisInternational Journal of Hydrogen Energy
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Probing the low-temperature chemistry of ethanol via the addition of dimethyl ether

2018

Considering the importance of ethanol (EtOH) as an engine fuel and a key component of surrogate fuels, the further understanding of its auto-ignition and oxidation characteristics at engine-relevant conditions (high pressures and low temperatures) is still necessary. However, it remains difficult to measure ignition delay times for ethanol at temperatures below 850 K with currently available facilities including shock tube and rapid compression machine due to its low reactivity. Considering the success of our recent study of toluene oxidation under similar conditions [38], dimethyl ether (DME) has been selected as a radical initiator to explore the low-temperature reactivity of ethanol. In …

IGNITION DELAY020209 energyGeneral Chemical EngineeringRAPID COMPRESSION MACHINEGeneral Physics and AstronomyEnergy Engineering and Power TechnologyLibrary science02 engineering and technologyPRESSURE FLOW REACTORGAS-PHASE7. Clean energychemistry.chemical_compound[SPI]Engineering Sciences [physics]RATE CONSTANTSLow-temperature chemistry020401 chemical engineering0202 electrical engineering electronic engineering information engineeringDMELAMINAR BURNING VELOCITYOrganic chemistryDimethyl ether[INFO]Computer Science [cs]0204 chemical engineeringSHOCK-TUBECHEMICAL-KINETICSComputingMilieux_MISCELLANEOUSEthanolGeneral ChemistryTHERMAL-DECOMPOSITIONIgnition delay timesFuel TechnologychemistryLIQUID FUELS13. Climate action
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Energetic macroscopic representation and inversion based control of fuel cell in a series hybrid race vehicle system

2020

This paper studies the replacement of engine and generator as range extender in a hybrid racing car with a fuel cell system. A model of the original system of the car using range extender consisting of an internal combustion engine and electric generator has been developed respecting the action-reaction principle used by energetic macroscopic representation (EMR) and its inversion based control (IBC) to organise its subsystems interconnection according to the physical causality. Results from drive tests of the real car on racing circuit are used to validate the model. The objective of this paper is to study the parameterisation and the integration of fuel cell stack components based on this…

InterconnectionMathematical modelComputer scienceRenewable Energy Sustainability and the EnvironmentElectric generatorInversion (meteorology)Automotive engineeringlaw.invention[SPI]Engineering Sciences [physics]Fuel TechnologyInternal combustion enginelawControl systemAutomotive EngineeringFuel cellsHybrid vehicleComputingMilieux_MISCELLANEOUS
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Interesterification of rapeseed oil catalysed by a low surface area tin (II) oxide heterogeneous catalyst

2018

Abstract The interesterification of rapeseed oil was performed in a batch reactor using for the first time low surface area massive tin(II) oxide as heterogeneous catalyst and methyl acetate as acyl acceptor. The effect of reaction temperature, methyl acetate to oil molar ratio and catalyst loading on the performances of the process were investigated. Yields in fatty acid methyl esters (FAMEs) and triacetin (TA) up to 90% and 70% respectively, were achieved after 4 h of reaction time at 483 K in the presence of 0.69 mol of SnO per mole of rapeseed oil using a methyl acetate to oil molar ratio of 40. Quite interestingly, the catalyst performances improved when water was added to the reaction…

InteresterificationInteresterified fatMethyl acetate020209 energyGeneral Chemical EngineeringMethyl acetateBatch reactorEnergy Engineering and Power Technology02 engineering and technologyHeterogeneous catalysisCatalysischemistry.chemical_compoundHeterogeneous catalysi0202 electrical engineering electronic engineering information engineeringChemical Engineering (all)TriacetinBiodieselBiodiesel; Heterogeneous catalysis; Interesterification; Methyl acetate; Tin oxide; Chemical Engineering (all); Fuel Technology; Energy Engineering and Power TechnologyHeterogeneous catalysisSettore ING-IND/27 - Chimica Industriale E TecnologicaTin oxideTin oxideFuel TechnologychemistryBiodieselNuclear chemistry
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