See how recording fried food types and quantities with correlation data enables accurate frying
Organic protective coatings deoxygenate during resin hydrogenation, protecting the catalyst while avoiding product contamination and easing separation.
A two-layer Mo-Ni-P catalyst system boosts bio-feed hydrodeoxygenation at lower temperature while managing heat release, coke, and fouling.
A Mo-Ni-P catalyst improves bio-feedstock hydrodeoxygenation by favoring C-O bond cleavage while limiting CO and CO2 formation.
A Mo-Ni-P hydrotreating catalyst enables lower-temperature hydrodeoxygenation of bio feedstocks, reducing coke, pressure drop, and run-length limits.
Oxidase-coupled α-hydroxylation shortens fatty acid chains without added hydrogen peroxide, enabling food-suitable unsaturated and odd-numbered fatty acids.
This crystallization process suppresses gel and fiber formation, yielding agglomerated sodium caprate crystals for scalable isolation.
A multifunctional zeolite-based catalyst combines key reactions in one step, reducing energy and hydrogen use in bio-jet fuel production.
A base-oil formulation helps retain non-stick performance, reduce residue buildup, and double burns per application.
Specific lipoxygenase enzymes produce di-, tri-, and tetra-hydroxy derivatives from polyunsaturated fatty acids, simplifying SPM synthesis.
Using catalytic alkali and fatty acid esters instead of stoichiometric reagents minimizes waste disposal issues while maintaining high reaction yields.
Deodorizing triglyceride compositions at 235 °C transforms symmetric molecules into asymmetric forms to create bloom-retarding components.
Controlling hydroxyl value and MCPD-FS content in an oil composition prevents heaviness during deodorization.
Adsorption beds recover copper tetrafluoroborate catalysts from polyol mixtures, eliminating substance loss during ring opening reactions.
A mixed catalyst composition comprising an inorganic and cyclic organic catalyst accelerates biofuel transesterification reactions.
Castor oil-based polyurethane formulation extends open time while preserving structural integrity under 70% relative humidity.
Metathesis catalyst converts polyunsaturated oils into cyclohexadiene intermediates, resolving low feedstock conversion efficiency in fuel blendstock synthesis.
A universal colorant surfactant package maintains viscosity stability while reducing volatile organic compound levels in latex and alkyd paints.
A chemical liquid formulation containing specific metal ions and organic solvents maintains low charge potential to prevent pipeline breakage.
Aminolysis of vegetable oil polyols with low molecular weight amino compounds yields high hydroxyl number polyols with controlled viscosity.
Using fatty acid esters and polyol solvents eliminates hydrochloric acid waste during acyl glycinate synthesis.
Mono and difunctional compounds bind to transition metal oxide nanoparticles forming stable complexes with total surface coverage.
Superacid catalysts initiate cationic polymerization of biological oils, replacing high-energy thermal processes to produce high molecular weight products.
Segmenting the FCC unit allows separate temperature control for vegetable oil processing, resolving the trade-off between fuel oil formation and diesel purity.
Alkyne zipper reaction converts unsaturated plant oils into hydroxyl-terminated polyols with terminal primary groups.
Metathesized natural oil derivatives provide reactive methacrylate monomers for polymer synthesis.
A microemulsion paint thinner blends hydrocarbon solvent, glycol ether, and partially neutralized carboxylic acid to thin oil-based coatings.
Over-blown paving grade asphalt combined with an ester additive creates a thermally stable built-up roofing composition.
Titanium-based catalyst enhancers sequester feedstock poisons to protect metathesis catalysts from deactivation.
Soluble organometallic compounds replenish active metal sites on solid alcoholysis catalysts to sustain catalytic activity during continuous production.
A four-stroke internal combustion engine converts biomass to bio-oil by compressing the mixture and rapidly cooling it during expansion.
Partial saponification of metathesized natural oils with metal compounds produces metallic soaps that reduce asphalt viscosity.
Low-rate DEA addition and partial vacuum reduce BHEP by-product formation in alkanolamide synthesis.
A biodegradable marking composition combines a diol-diacid condensation polymer with natural resins to prevent crayon flaking and excessive tackiness.
Selective ligand removal from metallic cores creates ultrathin nanostructures that improve biocompatibility while maintaining high-contrast MRI signals.
Moderate temperature catalytic hydrothermolysis minimizes gaseous byproduct and coke formation during triglyceride conversion, improving mass efficiency.
Partial epoxidation of vegetable oils with fluoroboric acid catalyst preserves triglyceride structure while reducing dependence on petroleum sources.
Structured edible product uses specific triglyceride composition to achieve hard texture without high saturated fatty acids.
Lower temperature deodorization removes trace components while maintaining diacylglycerol levels and preventing trans fatty acid formation.
Carbonyl compounds stabilize organic antioxidants in polypropylene compositions to reduce headspace emissions.
Engineered microbes convert fixed carbon into lipid feedstocks, reducing fossil fuel dependence and greenhouse gas emissions.
A sulphided catalyst composition with a porous alumina carrier and Group VIB/VIII metals maintains active states during hydrodeoxygenation.
Thermal decomposition of iron oleate complexes yields uniform 4 nm iron oxide nanoparticles, replacing toxic gadolinium with biocompatible T1 contrast agents.
One-step hydroxylation eliminates epoxidation by-products to yield low-viscosity, light-colored polyols from renewable resources.
Partially salting free fatty acids with calcium oxide raises onset melt points and hardness, preventing caking during storage and transportation.
Single-step acid catalyzed addition eliminates hazardous byproducts and reduces processing costs compared to traditional two-step epoxidation.
Selective hydrolysis removes phosphorus impurities from lipid material while preserving intact acylglycerols, preventing yield loss in traditional degumming.
Sequential lithium hydroxide addition in silver soap synthesis reduces shelf-aging fog and extends photothermographic material stability.
Surfactant-mediated phase separation eliminates dehydration facilities while preventing emulsion formation during lipophilic bioactive extraction.