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Maleic Anhydride

    • Product Name: Maleic Anhydride
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code
    Productname Maleic Anhydride
    Chemicalformula C4H2O3
    Molecularweight 98.06 g/mol
    Casnumber 108-31-6
    Ecnumber 203-571-6
    Unnumber UN 2215
    Synonyms Maleic acid anhydride; cis-Butenedioic anhydride; 2,5-Furandione; Toxilic anhydride
    Appearance White crystalline solid or colorless needles
    Odor Pungent, irritating
    Meltingpoint 52.8 °C (127 °F)
    Boilingpoint 202 °C (395.6 °F)
    Density 1.48 g/cm³ at 20 °C
    Vaporpressure 0.2 mmHg at 20 °C
    Vapordensity 3.38 (air = 1)
    Flashpoint 103 °C (217 °F) closed cup
    Autoignitiontemperature 447 °C (837 °F)
    Solubility Soluble in water with hydrolysis to maleic acid; soluble in acetone, ether, chloroform, benzene; slightly soluble in petroleum ether
    Ph Acidic in aqueous solution
    Hazardclass 8 (Corrosive)
    Packinggroup III
    Purity Typically ≥99.5%
    Grade Industrial grade; flake, briquette, molten
    Storageconditions Store in a cool, dry, well-ventilated area away from moisture, heat, and ignition sources
    Stability Reacts with water, alcohols, amines; may polymerize on heating
    Primaryuse Production of unsaturated polyester resins, alkyd resins, maleic acid, fumaric acid, and copolymers

    As an accredited Maleic Anhydride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Maleic Anhydride supplied in 25 kg polyethylene-lined steel drums, tightly sealed to protect against moisture and contamination.
    Container Loading (20′ FCL) Maleic Anhydride (UN 2215) loaded in 25 kg bags onto pallets in a dry 20′ FCL, secured and hazard-labeled.
    Shipping Maleic anhydride is shipped as UN 2215, Class 8 corrosive solid or molten, Packing Group III. It requires moisture-resistant, corrosion-resistant packaging, tight closure, and temperature control for molten form. Keep dry, away from heat, ignition, oxidizers, and alkalis. Label corrosive; follow IMDG/IATA/ADR regulations.
    Storage Store maleic anhydride in a cool, dry, well-ventilated, fire-resistant area away from moisture, water, heat, sparks, and open flames. Keep containers tightly closed, corrosion-resistant, and clearly labeled. Segregate from oxidizers, bases, amines, alkalis, and metals. Protect from humidity to prevent hydrolysis. Use secondary containment, grounded equipment, and spill kits. Follow local regulations.
    Shelf Life Maleic anhydride shelf life is about two years when kept sealed, cool, dry, and away from moisture and heat.
    Application of Maleic Anhydride

    Unsaturated polyester resin synthesis is governed by maleic anhydride isomerization and condensation water removal rates

    Maleic anhydride is charged together with phthalic anhydride and propylene glycol into a stainless-steel batch polycondensation reactor equipped with a packed distillation column, a partial condenser, and a nitrogen sparge ring. The maleic anhydride fraction controls the density of unsaturated sites available for later styrene crosslinking: general-purpose orthophthalic resins are formulated with a maleic anhydride share of 18–30 mol% of the total dibasic acid charge, while corrosion-resistant isophthalic resins may require a higher fraction to raise crosslink density. During the first stage, ring-opening esterification occurs at 165–185°C; the temperature is then raised in controlled steps to 190–220°C, at which point the maleate half-ester isomerizes toward fumarate unsaturation. This isomerization is operationally significant because fumarate-containing chains react faster with styrene and produce a more rigid final network than maleate-containing chains. Water formed by condensation is removed through the column under partial vacuum; failure to maintain water removal below a critical rate leads to equilibrium-limited esterification, residual acid values above specification, and lower molecular weight. The endpoint is monitored by acid value, typically 15–35 mg KOH/g for many commercial grades, and by melt or solution viscosity. After cooling, the resin is cut with styrene monomer at 30–45 wt%; inhibitors such as hydroquinone are added to prevent premature radical polymerization during storage. Final part testing for glass-reinforced laminates references ISO 527-2:2012 for tensile properties, ISO 14125:1998/Amd 1:2011 for flexural properties, and ISO 75-2:2013 for heat deflection temperature under load. The operational boundary is narrow: esterification below 180°C preserves maleate ester structures that give slower cure and lower barcol hardness, while excessive residence time above 220°C darkens the resin and raises the risk of dicyclopentadiene side reactions if present. Batch-to-batch variation in gel time is typically controlled by adjusting maleic anhydride charge and final styrene content, not by changing inhibitor level alone.

    Typical unsaturated polyester resin process envelope for maleic anhydride-modified orthophthalic resin
    ParameterObserved rangeTest standard
    Maleic anhydride share of total dibasic acid18–30 mol%in-process formulation control
    Final acid value after esterification15–35 mg KOH/gISO 2114:2000
    Styrene monomer content after let-down30–45 wt%gas chromatography or refractive index

    What limits storage stability in polyisobutenyl succinic anhydride dispersant intermediates?

    During scale-up of polyisobutenyl succinic anhydride production, the ene reaction between high-reactivity polyisobutylene and maleic anhydride is run at maleic anhydride loadings usually in the range of 1.2–2.0 mol per mole of terminal vinylidene PIB. The reaction is carried out in a stainless-steel pressure reactor under nitrogen blanket, with staged heating from 180°C to 220–230°C; residence time may extend from 6 h to 24 h depending on PIB molecular weight and target bismaleation ratio. Unreacted maleic anhydride is removed by vacuum stripping in a wiped-film evaporator; residual free maleic anhydride levels in the intermediate are commonly specified below 0.5 wt% because acidic residues interfere with subsequent amination and lower finished dispersant base number. The reaction mass is then reacted with polyethyleneamines such as tetraethylenepentamine to produce succinimide-succinamide dispersant structures; the degree of amination is controlled by amine charge, temperature ramp rate, and vacuum stripping of water. The critical storage stability issue is hydrolytic ring opening: if moisture ingress exceeds approximately 0.05 wt% water in the hold tank, the anhydride ring opens to diacid and causes viscosity drift and filter plugging during downstream blending into 5W-30 and 10W-40 passenger car motor oils. Production-scale batch records show that bottom drain lines and nitrogen padding on recovered-MA tanks are more important than reactor temperature precision for controlling hydrolytic instability. Finished lubricant packages are tested against ASTM D2896-23 for total base number, ASTM D874-23 for sulfated ash, ASTM D445-21 for kinematic viscosity, and ASTM D2270-10(2016) for viscosity index where full formulated oils are evaluated. The use of maleinized PIB with too high bismaleation can raise soot-handling capacity but also increases post-amination viscosity; balancing this trade-off is formulation-specific, and published data for exact ratio-amine combinations is limited outside lubricant additive supplier technical bulletins.

    When food-grade malic acid is the target molecule, maleic anhydride is first hydrolysed to maleic acid, then catalytically converted to malic acid or fumaric acid depending on the required isomer. In the malic acid route, maleic anhydride is hydrolysed with demineralized water in a corrosion-resistant reactor; the water-to-anhydride molar ratio is maintained above 1.0 to prevent anhydride sublimation losses and to complete ring opening. Maleic acid is then converted under heat and pressure in the presence of a suitable acid catalyst to yield an equilibrium mixture enriched in malic acid; crystallization and recrystallization steps raise chemical purity to Food Chemicals Codex limits. For fumaric acid, maleic anhydride is first hydrolysed and the maleic acid solution is isomerized at elevated temperature, typically above 150°C, in the presence of a mineral acid catalyst and optionally thiourea; the lower-solubility fumaric acid precipitates and is isolated by filtration. The ratio of maleic anhydride charge to final fumaric acid mass is governed by the 98% conversion target and the isomerization equilibrium; residual maleic acid must remain below food-grade specification. The finished products are used as acidulants in beverages, confectionery, bakery leavening systems, and ready-to-drink sports drinks. Regulatory references include FDA 21 CFR 184.1069 for malic acid, FDA 21 CFR 172.350 for fumaric acid, the Food Chemicals Codex 11th edition monographs, and Commission Regulation (EU) No 231/2012 for food additive purity criteria. The main operational limit is corrosion: maleic acid at elevated temperature attacks 316L stainless steel if chloride is present; therefore glass-lined or titanium equipment is used for hydrolysis and isomerization. Published data for continuous fixed-bed isomerization with solid acid catalysts is limited compared with batch crystallizer operations.

    Styrene maleic anhydride resin composition drift in semi-batch radical copolymerization

    For styrene maleic anhydride resin production, free-radical copolymerization is conducted in a solvent such as methylethyl ketone, methyl isobutyl ketone, or xylene. The alternating tendency of styrene and maleic anhydride means that feed ratio is not identical to copolymer composition; a styrene-rich feed is often used to produce final resins with maleic anhydride contents between 7 wt% and 30 wt% depending on the target alkali solubility and glass transition temperature. The reaction is run in a stirred stainless-steel reactor at temperatures from 70°C to 120°C; free-radical initiator such as azobisisobutyronitrile or di-tert-butyl peroxide is selected according to the solvent boiling point and reactor pressure rating. Precise composition control is critical because the anhydride content defines performance in paper coating formulations: higher anhydride content increases dispersion in aqueous ammonia solution but also raises the glass transition temperature and may reduce film flexibility. The polymer is isolated by precipitation into a non-solvent, followed by filtration and drying; solvent residues in precipitated SMA powder are controlled to below packaging limits due to transport classification. Melt-processable SMA grades are compounded in a corotating twin-screw extruder with a length-to-diameter ratio of 40:1 to allow grafting, glass-fibre reinforcement, or rubber toughening in one pass. Thermal properties are measured by differential scanning calorimetry under ASTM D3418-21; melt flow rate is determined according to ISO 1133-1:2022, and tensile properties of injection-moulded test specimens are evaluated using ASTM D638-14. In emulsion polymer systems, SMA partial esters can be used as protective colloids or surface-sizing agents; the operational boundary is hydrolysis sensitivity—aqueous SMA solutions thicken and lose solubility if stored above 50°C at pH above 9 for extended periods because the anhydride ring opens to the carboxylate form. Published data for specific chain-transfer agent effects is limited, and formulators rely on reactor composition monitoring rather than offline gel permeation chromatography for production control.

    When 1,4-butanediol synthesis routes are specified through maleic anhydride hydrogenation

    When maleic anhydride is the starting material for 1,4-butanediol, the production chain starts with esterification to dimethyl maleate or diester derivatives, followed by hydrogenation over copper-based catalysts in multi-stage fixed-bed tubular reactors. In the esterification route, maleic anhydride is reacted with methanol at a molar ratio controlled to minimize dimethyl succinate and monomethyl maleate impurities; the dimethyl maleate stream is then vaporized and co-fed with hydrogen. Reactor inlet pressures are maintained above 4.0 MPa and catalyst bed temperatures are staged from approximately 170°C to 230°C to manage the strong exotherm. Hydrogen-to-diester molar feed ratios are set well above stoichiometric demand, typically in the range of 20:1 to 50:1, to strip reaction heat and suppress coking. The selectivity shift between gamma-butyrolactone, 1,4-butanediol, and tetrahydrofuran depends on temperature, hydrogen partial pressure, and catalyst promoter package; higher hydrogen availability favors 1,4-butanediol, while lower pressure or higher temperature drives tetrahydrofuran cyclization. Downstream separation uses a sequence of distillation columns; water-methanol azeotrope recovery is integrated to reduce feedstock cost. Tetrahydrofuran is then polymerized to polytetramethylene ether glycol, which is consumed in high-performance polyurethane elastomers and spandex fibres. Process gas is monitored for carbon monoxide and methane by online gas chromatography because carbon oxides indicate decarboxylation and catalyst deactivation. Published deactivation rate data for copper-based ester hydrogenation catalysts is limited to licensor guarantees rather than open technical literature.

    Paper sizing formulations based on maleated rosin require a Diels-Alder or ene-addition step in which maleic anhydride is reacted with rosin under inert gas at temperatures between 180°C and 220°C. Maleic anhydride is charged at 3–8 wt% relative to rosin to raise softening point and acid number without causing excessive gelation. The resulting maleated rosin is then saponified with sodium hydroxide or potassium hydroxide and emulsified with cationic starch or polyaluminium chloride for use in neutral or alkaline papermaking. The sizing performance is evaluated by the Cobb water absorption test as described in ISO 535:2023 or by Hercules sizing test methods; the target Cobb value depends on the paper grade but generally falls below 30 g/m² for packaging grades. The terminal products include corrugated medium, linerboard, and coated paperboard where resistance to aqueous penetration is required during printing or transport. The process conflict is viscosity control: excessive maleic anhydride fortification increases softening point beyond the emulsification temperature window and produces high-viscosity saponified pastes that cannot be homogenized without high-pressure homogenizers. In continuous emulsification lines, the pressure drop across the homogenizer must be maintained above a minimum threshold to achieve a stable particle size distribution; otherwise the emulsion destabilizes in the paper machine wet end and causes pitch deposition. Compliance for paper contact is evaluated according to regional food-contact legislation and recommendations for paper and board; the maleated rosin must not transfer residues above applicable migration limits.

    Maleic hydrazide is produced by reacting maleic anhydride with hydrazine sulfate under alkaline conditions. The reaction is carried out in aqueous medium at controlled pH; maleic anhydride is first hydrolysed to maleic acid and then treated with hydrazine sulfate, producing maleic hydrazide with the elimination of water and neutralized sulfuric acid by-product. Mole ratio control between hydrazine and maleic anhydride is critical because excess hydrazine can form dihydrazide impurities that lower assay and alter residue profiles in treated crops. The product is crystallized, filtered, and dried; particle size distribution is controlled for suspension concentrate and soluble concentrate formulations. Terminal use is as a systemic plant growth regulator to inhibit sprouting in onions and potatoes during storage, and to suppress sucker growth in tobacco. The active substance content in technical material is usually specified above 97 wt%, and the final use rate is set by crop-specific maximum residue limits established under EC Regulation No 396/2005 Annex II and corresponding Codex Alimentarius schedules. Export formulations must be checked for impurity compliance with FAO specifications for plant protection products; the relevant specification includes limits for free hydrazine and related breakdown products. The manufacturing process is run in closed equipment with scrubber systems because hydrazine is toxic and classified; personal exposure limits follow national occupational exposure limits and the EU binding occupational exposure limit where applicable. Published data for continuous hydrazine sulfate feeding is limited; many small-to-mid-scale facilities use controlled batch neutralization to avoid thermal spikes and intermediate salt precipitation.

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    More Introduction

    Maleic anhydride is the cyclic anhydride of cis-1,2-ethylenedicarboxylic acid. It is designated as CAS 108-31-6, has the empirical formula C₄H₂O₃, and has a molar mass of 98.06 g/mol. The commercial product is supplied as white briquette, flake, or molten material. Molten product is a clear, water-white liquid with a solidification point of 52.6 °C, a boiling point of 202 °C at 101.3 kPa, and a density of 1.48 g/cm³ at 60 °C. Closed-cup flash point is 103 °C. The anhydride is hygroscopic and hydrolyzes on contact with free water to maleic acid; this reaction is accelerated by acidic conditions and elevated temperature. Technical-grade specifications are controlled to preserve downstream stoichiometry and color stability. Assay is commonly held at ≥99.5 % by weight, free maleic acid at ≤0.10 %, and molten color at ≤20 APHA by ASTM D1209-22. Solidification point is specified at 52.5–53.0 °C by ASTM D1493-18.

    PropertyTest methodTypical technical-grade value
    Solidification pointASTM D1493-1852.5–53.0 °C
    Maleic anhydride assayTitration after hydrolysis≥99.5 % by weight
    Free maleic acidAqueous acidimetric titration≤0.10 % by weight
    Molten colorASTM D1209-22≤20 APHA
    AshGravimetric after ignition≤0.005 %
    Iron contentICP-OES after acid digestion≤5 mg/kg
    MoistureISO 760≤0.10 %

    Molten storage is specified at 65–75 °C in agitated, nitrogen-blanketed stainless steel tanks. Vapor-space oxygen is held below 2 % by volume and measured with a zirconia oxygen analyzer. At temperatures above 80 °C, sublimation increases and maleic anhydride can crystallize in vent lines and pressure-vacuum valves. At temperatures below 55 °C, freeze-off in pump casings and magnetic flowmeters becomes a production risk. Experience from continuous feed systems shows that heat tracing of dead legs, sample points, and instrument taps must extend to the end of the line; a single unheated pressure transmitter diaphragm can plug during winter operation. Briquette and flake forms reduce handling complexity for batch operations but require dry storage with relative humidity below 40 % to limit surface hydrolysis.

    What Limits Continuous Molten Feed Stability in Esterification and Diels-Alder Systems?

    Continuous feed stability is controlled primarily by temperature uniformity and moisture exclusion. Piping constructed from 316L stainless steel with low-pressure steam or tempered hot-water tracing is standard. Feed pump selection commonly uses externally bushed gear pumps or sealless canned-motor pumps because the product freezes at crystallization points and exhibits low lubricity. In esterification service, the anhydride line is often kept at 70–80 °C. If line temperature exceeds 90 °C, partial sublimation can form solids in unheated vapor pockets; if line temperature falls below 60 °C, viscosity increases sharply near the solidification point and flow becomes unstable. A production-scale failure mode in continuous unsaturated polyester resin reactors is a frozen maleic anhydride side-stream after a manual block valve that is not heat traced. This fault reduces anhydride feed below stoichiometric target and shifts resin acid value upward, requiring extended cook time. In Diels-Alder service with 1,3-butadiene, the molten anhydride is fed into a cooled autoclave at 60–80 °C; the cycloaddition is exothermic, and insufficient heat removal can raise localized temperature above 120 °C, increasing polymer formation.

    Unsaturated polyester resin manufacture uses maleic anhydride as a primary unsaturated dibasic acid. A typical 15–30 m³ stainless-steel reactor with pitched-blade turbine agitation is charged with maleic anhydride and propylene glycol at a hydroxyl-to-carboxyl ratio between 1.05:1 and 1.15:1. The mixture is heated to 180–220 °C under a nitrogen sparge of 0.5–1.0 m³/h per tonne of resin. Water of esterification is removed through a partial condenser and decanter. Esterification is followed by acid-value titration according to ASTM D1639. The target acid value for many laminating resins is 20–35 mg KOH/g. The resin is cooled to 120–140 °C and thinned with styrene monomer to 35–45 wt%. Viscosity is measured at 25 °C with a Brookfield RVT spindle 3 at 20 rpm using ISO 2555; typical values are 0.3–2.5 Pa·s.

    Fumarate Isomerization and Its Effect on Styrene Crosslinking

    During the esterification stage, maleate half esters isomerize to fumarate half esters at temperatures above 160 °C. This shift is kinetically slow at lower temperatures and accelerates with increasing temperature. The trans-fumarate configuration is less sterically hindered and gives higher reactivity with styrene during subsequent peroxide-initiated crosslinking. Industrial practice holds the reactor at 200–210 °C for the final 2–4 h of cook to drive isomerization. If the final cook temperature is limited to 180 °C, the maleate-to-fumarate ratio remains high, and the cured resin shows lower crosslink density in hardness and solvent-resistance tests. A production control method is to monitor the resin exotherm temperature in a 100 g cup with 1.0 phr methyl ethyl ketone peroxide; values below 150 °C often indicate insufficient isomerization or inhibitor carryover. Gel time is determined at 25 °C according to ISO 2535; the range for general laminating resins is 10–30 min. Barcol hardness of cured casts is measured by ASTM D2583 and is typically 35–50 for resin-rich surfaces.

    Styrene-maleic anhydride copolymers are prepared by radical polymerization in solvent or by bulk thermal polymerization. The anhydride content is commonly 10–25 wt%. In alkaline paper sizing, the copolymer is dissolved as ammonium or sodium carboxylate salt at 20–30 % solids and dosed at 0.2–0.5 % dry polymer on dry fiber. The anhydride moiety reacts with cellulose hydroxyl groups under heated drying conditions, developing size. Sized handsheets are tested by Cobb water absorbance per TAPPI T441 om-15 and ring crush per TAPPI T822. Pilot paper-machine data show that resin bleed and foam are minimized when pH is held at 7.5–8.5 and the diluted polymer solution is pre-filtered through 100 µm screens.

    When Maleic Anhydride Replaces Phthalic Anhydride in Resin Formulations

    Replacement of phthalic anhydride with maleic anhydride changes the resin backbone from aromatic diester to unsaturated aliphatic diester. The lower molar mass of maleic anhydride reduces the mass needed to achieve a given carboxyl equivalent. For a resin with total dibasic acid 1.0 mol, replacing phthalic anhydride with maleic anhydride reduces dibasic acid mass by approximately 34 %. The formulation must be recalculated for hydroxyl-to-carboxyl stoichiometry because both anhydrides are difunctional. The resulting unsaturated polyester resin has lower viscosity at equivalent molecular mass and higher styrene compatibility. The cured network exhibits higher elongation but lower heat distortion temperature than phthalic-based resin; comparative tensile properties are evaluated by ASTM D638-14 and heat distortion temperature by ASTM D648. In alkyd modification, maleic anhydride raises viscosity more rapidly than phthalic anhydride at equivalent addition level because the unsaturated maleate half ester can participate in free-radical side reactions during cook.

    PropertyMaleic anhydridePhthalic anhydrideSuccinic anhydride
    CAS number108-31-685-44-9108-30-5
    Molar mass98.06 g/mol148.12 g/mol100.07 g/mol
    Solidification point52.6 °C131.6 °C119.5 °C
    Boiling point202 °C284 °C261 °C
    Reactive functionalityα,β-unsaturated cyclic anhydrideAromatic cyclic anhydrideSaturated cyclic anhydride
    Primary industrial useUnsaturated polyester resins, PIBSA, styrene-maleic anhydride copolymersPhthalate plasticizers, alkyd resinsEpoxy curing agents, succinate esters

    Compared with succinic anhydride, maleic anhydride is unsaturated and undergoes Diels-Alder cycloaddition with conjugated dienes; succinic anhydride is used primarily in saturated systems. Compared with acetic anhydride, which has CAS 108-24-7 and a boiling point of 140 °C, maleic anhydride is a cyclic diacid anhydride rather than a linear acetylating agent, and it introduces a C₄ backbone with reactive ethylenic unsaturation. These functional differences govern selection in unsaturated polyester, alkyd, and copolymer manufacturing.

    Polyisobutenyl succinic anhydride production uses the thermal ene reaction between maleic anhydride and polyisobutylene having terminal vinylidene content above 70 %. The reaction is conducted at 200–230 °C under nitrogen pressure 0.2–0.5 MPa in a stirred pressure vessel; maleic anhydride is charged at 1.1–1.6 mol per mole of terminal unsaturation. Unreacted maleic anhydride is stripped at 180 °C and 5–20 kPa vacuum. The resulting PIBSA has saponification number controlled to 100–170 mg KOH/g depending on polyisobutylene molecular weight. Subsequent reaction with heavy polyamine yields succinimide dispersants for crankcase lubricants; dispersancy is bench-screened by sludge suspension tests, but final qualification is governed by API engine sequence tests.

    Maleic anhydride is also the starting intermediate for malathion via diethyl maleate and for maleic hydrazide, a plant growth regulator. In these high-purity derivative processes, color and maleic acid content are critical because side products can reduce yield and accelerate decomposition in downstream phosphorylation reactors.

    Operational boundaries limit contact with water and aqueous amines. Mixing maleic anhydride with primary or secondary amines generates maleamic acids and imides in strongly exothermic reactions; the addition must be controlled at 20–40 °C with adequate cooling. Molten process equipment is specified in 316L stainless steel, because hydrolyzed product is corrosive to carbon steel. Flush systems with dry solvent or inert gas before maintenance. Waste streams containing maleic acid are biodegradable in activated sludge at hydraulic retention times above 12 h; however, pH must be neutralized to 6.5–8.0 before discharge.

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