| HS Code | |
| Productname | Sulfuric Acid |
| Chemicalformula | H2SO4 |
| Molecularweight | 98.079 g/mol |
| Casnumber | 7664-93-9 |
| Ecnumber | 231-639-5 |
| Unnumber | 1830 |
| Appearance | Colorless to slightly yellow, clear, oily liquid |
| Odor | Odorless |
| Density | 1.84 g/cm3 at 20 °C for concentrated sulfuric acid |
| Meltingpoint | 10.31 °C for pure H2SO4 |
| Boilingpoint | 337 °C for pure H2SO4 with decomposition |
| Solubility | Miscible with water in all proportions, releasing heat |
| Ph | Strongly acidic; approximately 0.3 for a 1 M solution |
| Acidity | Strong diprotic acid |
| Viscosity | 24.6 mPa·s at 25 °C for pure H2SO4 |
| Flashpoint | Nonflammable |
| Hazardclass | UN Class 8 corrosive substance |
| Storage | Store in a cool, dry, well-ventilated area away from water, bases, and organic materials |
As an accredited Sulfuric Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sulfuric acid supplied in 2.5-liter high-density polyethylene safety bottles with leakproof caps and corrosive warning labels for laboratory use. |
| Container Loading (20′ FCL) | Sulfuric Acid (UN1830, Class 8) in acid-resistant drums, loaded and secured inside a 20′ FCL container with dangerous goods markings. |
| Shipping | Sulfuric acid is transported as a corrosive Class 8 dangerous good, UN 1830, in acid-resistant drums, IBCs, tank trucks, rail tank cars, or vessels. Shipments require compliant labeling, placarding, documentation, emergency response information, and trained handlers. Concentrated or fuming grades may need specialized packaging and segregation from incompatible materials. |
| Storage | Store sulfuric acid in a cool, dry, well-ventilated, fire-resistant area, away from bases, organic materials, combustibles, and reactive metals. Use sealed, labeled, corrosion-resistant containers, such as polyethylene or glass, inside acid-resistant secondary containment. Protect from moisture, sunlight, and physical damage. Separate from incompatible chemicals, inspect regularly, and keep emergency eyewash, shower, spill neutralizer, and suitable PPE nearby. |
| Shelf Life | Sulfuric acid has an indefinite shelf life when stored sealed, away from moisture and incompatible substances; it does not expire. |
In wet-process phosphoric acid, digestion of fluorapatite with sulfuric acid is the largest single downstream volume driver. The dihydrate route reacts phosphate rock with sulfuric acid at 70–80°C. Rock grades between 28 wt% and 32 wt% P₂O₅ typically consume 2.6–3.2 tonnes of 100 wt% H₂SO₄ per tonne of P₂O₅. The reaction converts fluorapatite to phosphoric acid and gypsum. Free sulfate in the attack liquor is maintained at 2–4 wt% to control gypsum crystal habit. Excess sulfate produces acicular gypsum that blinds tilting-pan filter cloths. Insufficient sulfate forms crusts on unreacted rock and reduces digestion efficiency. The phosphoric acid leaving the filter contains 26–28 wt% P₂O₅. It is evaporated to 52–54 wt% P₂O₅ for ammonium phosphate production. Terminal products include monoammonium phosphate, diammonium phosphate, and triple superphosphate. Fertilizer compliance is covered by EU 2019/1009, which sets contaminant ceilings for cadmium, chromium, mercury, nickel, and lead. Sulfuric acid handling and registration fall under REACH Regulation (EC) No 1907/2006.
Reactor trains use brick-lined carbon steel with rubber interlayers because dilute acid at 70–80°C is too aggressive for unlined carbon steel. Chloride above 0.05 wt% in phosphate rock causes pitting corrosion in stainless filter feed lines. Flash coolers maintain the digestion setpoint and control gypsum precipitation. Fluoride gases are scrubbed in venturi systems. Gypsum slurry is sent to lined storage ponds or plasterboard operations. Startup rock moisture above 8 wt% dilutes the first-stage acid and drops reaction temperature. Operators compensate by adding 93–98 wt% acid upstream of the attack tank. Phosphate rock with high magnesium oxide content consumes additional sulfuric acid to form magnesium sulfate. That raises liquid viscosity and lowers filter rate. Published data for ore below 20 wt% P₂O₅ is limited, and pilot-scale evaluation is required before plant design.
Refinery alkylation units using sulfuric acid as catalyst maintain acid strength in the reactor emulsion at 88–93 wt% H₂SO₄ rather than the 98 wt% fresh acid strength. The acid phase contains acid-soluble oil, water, and dissolved light hydrocarbons. Isobutane-to-olefin ratio is controlled between 7:1 and 12:1 to suppress polymerization and heavy acid-soluble oil formation. Reactor temperature is held at 4–14°C. Higher temperatures increase olefin polymerization and acid consumption. The terminal alkylate is separated by distillation and blended into high-octane gasoline. Research octane number is measured under ASTM D2699. Motor octane number is measured under ASTM D2700. Sulfuric acid alkylate typically runs between 92 and 97 RON, depending on feedstock composition and reactor configuration.
Spent acid withdrawal is scheduled when acid strength approaches 88 wt% or when acid-soluble oil exceeds 6–8 wt%. The spent acid moves to a regeneration plant where acid-soluble oil is thermally decomposed and sulfuric acid is returned at 98 wt%. Diene and mercaptan levels in the olefin feed directly increase acid consumption and red acid formation. Units processing high-sulfur FCC olefins require more frequent spent acid bleeding. Pressure vessels and contactors are constructed to ASME Section VIII. In the United States, process safety management for the acid inventory and associated hydrogen sulfide hazards falls under 29 CFR 1910.119.
Before cold rolling or continuous galvanizing, hot-rolled steel strip passes through a sulfuric acid pickling bath to remove magnetite and hematite scale. The bath contains 5–15 wt% H₂SO₄ at 60–85°C. An acid inhibitor is metered at 0.05–0.3 vol% to reduce base metal dissolution while descaling continues. As pickling proceeds, ferrous sulfate heptahydrate accumulates and free acid declines. At 60–100 g/L Fe, bath efficiency falls sharply. Ferrous ion slows scale dissolution and can deposit as iron sulfate crystals below 25°C. Operators bleed spent pickle liquor to crystallizers or spray-roast regeneration plants. The terminal strip is rinsed, dried, and either cold rolled, galvanized, or enameled. Surface cleanliness after pickling is verified against ISO 8501-1 rust grade comparisons. Descaling practices for stainless materials are referenced in ASTM A380/A380M-17.
Copper contamination above 50 mg/L in the pickle bath causes cementation of copper onto the steel surface and induces pitting during subsequent rolling. Brass valves and fittings must be excluded from the recirculation loop. Iron sulfate crystallization in overflow lines is a common production bottleneck in continuous push-pickle lines. Heating coils are fabricated from graphite or tantalum because dilute hot sulfuric acid attacks conventional stainless steel. Scale removal rate depends on strip speed, bath agitation, and free-acid titration. Side headers and turbulent flow reduce diffusion-layer stagnation on the strip surface.
Fresh acid for lead-acid cells is diluted from 93–98 wt% H₂SO₄ with deionized water to a filling gravity of 1.250–1.285 at 25°C. The resulting electrolyte contains 30–38 wt% H₂SO₄. Trace iron, copper, manganese, and chloride catalyze self-discharge at the negative plate. Electrolyte-grade acid is supplied with iron below 50 mg/kg, copper below 5 mg/kg, and chloride below 10 mg/kg in the diluted bath. Dilution water is prepared to ASTM D1193 Type II or equivalent demineralized specifications. Flooded SLI batteries must meet electrolyte density and capacity requirements under IEC 60095-1. Terminal electrolyte supports automotive starter batteries, VRLA cells, and traction batteries.
Filling temperature is kept below 35°C to avoid accelerated grid corrosion. Organic contaminants from uncured plastic tanks or dirty mixing equipment lower hydrogen overpotential and increase water loss. Mixing tanks are constructed from polypropylene, PVDF, or ebonite-lined steel, never unlined carbon steel. Batch-to-batch density checks use a hydrometer or digital density meter calibrated at 25°C. Operators adjust with concentrated acid or ASTM D1193 Type II water. Electrolyte-specific gravity shifts with temperature, and correction tables are applied before final fill.
In the sulfate route for titanium dioxide, concentrated sulfuric acid is consumed both as digestion medium for ilmenite and as hydrolysis control agent in titanyl sulfate solution. Ground ilmenite or primary slag is digested with 85–93 wt% H₂SO₄ at 160–210°C. The acid-to-feed mass ratio is held between 1.4 and 2.0, depending on titanium dioxide content and iron content. The resulting sulfate cake is dissolved in water and clarified. Ferric iron is reduced to ferrous iron with scrap iron to prevent premature hydrolysis. Hydrolysis is conducted at 94–105°C with seed crystals to precipitate hydrous titanium dioxide. The precipitate is filtered, washed, calcined at 800–1000°C, and milled to pigment fineness. Titanium dioxide pigment is classified under ISO 591-1 by rutile content, color, and matter volatile at 105°C.
High calcium and magnesium impurities in the feed consume sulfuric acid to form stable sulfates and increase acid demand beyond the nominal ratio. Iron sulfate heptahydrate is a large co-product stream and must be crystallized, filtered, and either sold or neutralized. Digestion vessels are brick-lined and operate under high gas generation. Incompatibility with unlined stainless steel is severe at 160–210°C because hot concentrated sulfuric acid is highly oxidizing to stainless alloys. Hydrolysis seed ratio and calcination residence time determine whether the pigment develops anatase or rutile structure. Published data for low-grade ilmenite below 45 wt% TiO₂ is limited for this specific reactor configuration.
Sulfonation of linear alkylbenzene with oleum or concentrated sulfuric acid converts the alkylbenzene to linear alkylbenzene sulfonic acid, the core anionic surfactant intermediate. Batch reactors using 98 wt% H₂SO₄ or oleum with 20–30% free SO₃ operate at 20–50°C with an aging time of 1–4 h. The acid-to-LAB molar ratio is controlled near 1.2:1 for concentrated acid sulfonation. Higher ratios generate sulfones and darken the product. Water formed during sulfonation dilutes the acid and reduces reaction rate. Spent sulfuric acid is separated by gravity and may be recycled or regenerated. The acid form is neutralized with sodium hydroxide to sodium alkylbenzene sulfonate. Anionic active matter is determined by two-phase titration per ISO 2271. Finished surfactant must satisfy biodegradability limits in EU Detergents Regulation (EC) No 648/2004 Annex II, with ultimate aerobic biodegradability above 60% in OECD 301B tests. Free oil in LABSA is maintained below 1.5 wt%, and free sulfuric acid below 2.0 wt% after neutralization.
Feed moisture above 0.5 wt% accelerates dilution of oleum and shifts the SO₃ balance. Low-temperature aging below 20°C produces a high-viscosity product that separates poorly from spent acid. Glass-lined or enameled reactors are specified because hot oleum attacks stainless steel. Terminal LABSA and sodium sulfonate are used in laundry powders, dishwash detergents, and institutional cleaners.
For oxide copper heaps, sulfuric acid-conditioned raffinate dissolves malachite and chrysocolla at pH 1.8–2.2. Irrigation liquor contains 5–15 g/L H₂SO₄. Acid consumption ranges from 2–5 tonnes per tonne of copper cathode, depending on limestone, chlorite, and iron oxide gangue. Pregnant leach solution is clarified and forwarded to solvent extraction. Organic extractant loads copper selectively. Stripped electrolyte is electrowon to LME Grade A copper cathode with 99.99 wt% Cu minimum. Bismuth and lead are controlled below 2.0 mg/kg and 5.0 mg/kg respectively in the cathode. Solvent extraction crud formation rises when soluble silica in the pregnant leach solution exceeds 0.5 g/L. Acid addition is adjusted by continuous pH probes in the raffinate return line. HDPE drip lines and multi-stage centrifugal pumps with silicon carbide mechanical seals are standard. Terminal copper cathode is sold to wire rod mills and brass producers.
Silica dissolution can also decrease heap permeability if colloidal silica precipitates in the ore pores. Operators install automatic acid dosing linked to pH setpoint. Sulfuric acid with high sulfate salt concentration may form gypsum scale in pipes if calcium is present. Published data for high-altitude heap operations with temperature swings above 30°C is limited for this specific control scheme.
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Sulfuric acid (H2SO4, CAS 7664-93-9) is supplied as a dense, water-white to slightly turbid liquid with a mass fraction typically between 93.0% and 98.5%, corresponding to a specific gravity of 1.827 to 1.844 at 20 °C. Product models are classified by feedstock source and purification train: technical grade, battery grade, reagent grade meeting ACS specifications, and oleum grades containing free SO3 from 20% to 65%. The material is produced through contact-process oxidation of sulfur dioxide over vanadium pentoxide catalysts, followed by absorption in circulating acid. Specifications for industrial delivery are controlled under ASTM E223-23 and ISO 910:1977 for total acidity and free sulfur trioxide content, with impurity ceilings for iron, chloride, nitrate, lead, and arsenic. Product differences from alternative mineral acids arise from low vapor pressure, strong dehydrating behavior, diprotic dissociation, and high specific heat capacity; these properties govern selection for sulfonation, acidulation, and electrolyte applications.
Battery-grade sulfuric acid is a high-purity stream specified for the absence of elements that poison lead dioxide and spongy lead electrodes. Technical-grade material typically carries iron from stoneware or steel process contact; iron deposition on the negative plate can accelerate local gassing and reduce charge acceptance. Commercial battery-grade specifications align with electrolyte requirements such as IEC 62877-1:2016, and typical impurity ceilings are listed in Table 1. The critical difference from technical grade is not acid strength but the maximum permissible content of redox-active metals and chloride; chloride above 0.0001 wt% can pit positive-grid alloys. In lead-acid production, the concentrated product is diluted with deionized water to 30–38 wt% before filling, and the fill density is verified against temperature-compensated hydrometer tables. Overdilution below 30 wt% reduces capacity; above 38 wt%, corrosion of the positive grid increases. The battery-grade product is also used in valve-regulated lead-acid batteries with gelled silica electrolyte, where gelling time is affected by iron and chloride content.
| Model | H2SO4 mass fraction | Density at 20 °C | Fe max (wt%) | Cl max (wt%) | Typical use |
|---|---|---|---|---|---|
| Technical grade | 93.0–98.5% | 1.827–1.844 g/cm³ | <0.0050 | <0.0005 | Phosphate digestion, metal pickling |
| Battery grade | 98.0–98.5% | 1.840–1.844 g/cm³ | <0.0005 | <0.0001 | Lead-acid electrolyte |
| Reagent ACS | 95.0–98.0% | 1.836–1.844 g/cm³ | <0.0002 | <0.0001 | Analytical chemistry |
| Oleum 20% | free SO3 20.0% | 1.915–1.930 g/cm³ | <0.0050 | <0.0005 | Sulfonation, nitration |
On continuous steel strip pickling lines, spent sulfuric acid at 15–20 wt% and 80–90 °C is circulated through shallow granite or polypropylene-lined baths. The acid dissolves mill scale by converting magnetite and hematite to water-soluble ferrous sulfate; drag-out and ferrous sulfate crystallization govern rinse-water acidity. Production lines typically observe acid consumption between 20 kg and 60 kg H2SO4 per tonne of strip when scale thickness ranges from 0.5% to 1.2% of strip mass. Concentrated acid is metered by magnetic flowmeters with tantalum electrodes or PTFE-lined dosing pumps after conductivity and density control loops. Bath life is usually terminated when ferrous sulfate exceeds 120 g/L because surface staining and sludge accumulation increase; sludge removal from the bath bottom uses rubber-lined diaphragm pumps, and acid recovery by vacuum crystallizers or acid retardation resins is specified when local discharge limits are below 10 mg/L total iron. Vacuum crystallizers operating at 40–60 °C recover ferrous sulfate heptahydrate crystals, with mother liquor returned to the pickling bath.
Single and triple superphosphate production consumes a major portion of technical-grade sulfuric acid. The reaction between milled fluorapatite and 93–98 wt% acid forms phosphoric acid and calcium sulfate dihydrate or hemihydrate depending on temperature, residence time, and excess sulfate. The dihydrate process operates at 70–80 °C with free sulfate of 20–35 g/L SO3; the hemihydrate route uses 95–105 °C and shorter residence time. Fluorapatite reactivity, measured as citrate-soluble P2O5, dictates acid feed ratio. Low-grade rock with high iron and aluminum oxide content increases acid consumption and reduces filtration rate when aluminum phosphate gels form. Tilting-pan vacuum filters with 0.1–0.5 bar differential pressure show a permeability drop when reactive silica exceeds 6%, triggering clay flocculant addition and a reduction in rock grinding size. Compared with hydrochloric acid acidulation, the sulfuric route precipitates gypsum and avoids chloride corrosion, but it requires gypsum disposal and careful control of sulfate level; published data for a specific rock source is limited.
Sulfuric acid alkylation units maintain acid strength at 90–95 wt% titratable acidity in horizontal contactors with external acid recycle. The reaction of isobutane with C3–C5 olefins proceeds at 7–10 °C; below 88 wt% acid strength, acid-soluble oil and alkylation sludge formation accelerate and emulsion stability collapses. Spent acid is regenerated on-site by thermal decomposition to SO2 or routed to fertilizer manufacture as spent sulfuric acid. Acid regeneration furnaces operate at 1,000–1,200 °C in refractory-lined vessels to decompose acid sludge to SO2; sulfur recovery and wet gas cleaning are required to meet SO2 emission limits under 40 CFR 60 or equivalent. Sulfuric acid alkylation uses higher volumetric acid consumption per tonne of alkylate than hydrofluoric acid alkylation but avoids the atmospheric dispersion and on-site neutralization demands of HF. The difference in operating temperature and catalyst consumption makes selection dependent on licensed reactor design and refinery feedstock propylene content; published data for a specific configuration is limited.
Concentrated sulfuric acid at 93–98% is stored in carbon steel tanks with a corrosion allowance of 3–6 mm; the passive ferrous sulfate film is stable below 30 °C and at flow velocities below 0.9 m/s. Above 50 °C or under high-velocity fill lines, the protective film dissolves and active corrosion rates exceed 0.5 mm/year on wetted surfaces. Pump transfer lines use PTFE-lined carbon steel for concentrated product and alloy 904L (UNS N08904) or glassed steel for intermediate dilutions. Hydrogen evolution is a known failure mode: hydrogen grooving develops at the liquid-vapor interface, and tank vents must maintain hydrogen concentration below 4 vol% lower flammable limit. Tank vent dryers with silica gel desiccant are used to prevent moisture ingress; dilution from humid air can reduce concentration below the passivating range and initiate corrosion. Inspection intervals for storage tanks follow API 653, and internal lining repairs are required when ultrasonic thickness measurements fall below 3 mm remaining wall at any shell course. Hydrochloric acid, by contrast, requires rubber-lined steel or fiberglass-reinforced plastic, and nitric acid uses stainless steel; these differences in storage metallurgy affect installed cost and maintenance intervals.
Sulfonation of linear alkylbenzene with concentrated sulfuric acid is limited by equilibrium water formation; oleum or gaseous SO3 is therefore selected when high conversion is required. Oleum grades containing 20% or 65% free SO3 shift the reaction toward sulfonic acid formation and suppress spent acid recycle volume. In falling-film sulfonation reactors, gas-phase SO3 derived from oleum is diluted to 4–8 vol% in dry air and contacted with the organic phase at 30–60 °C; jacket heat removal controls the exotherm to avoid sulfone formation and color body generation. Color bodies from sulfone formation are controlled by maintaining reactor cooling water temperature below 50 °C and by limiting SO3 gas residence time. The viscosity of 98% acid is approximately 25.8 mPa·s at 20 °C, and oleum grades exhibit higher viscosity that varies with free SO3 content; transfer pumps are positive displacement with steam tracing. Compared with chlorosulfonic acid, oleum generates no hydrochloric acid byproduct, but it introduces a higher freezing point and requires free sulfur trioxide vapor containment. Published data for a specific reactor configuration is limited.
Selection between sulfuric acid and alternative mineral acids depends on vapor pressure, oxidizing strength, and anion compatibility. Hydrochloric acid is volatile and forms chloride stress-corrosion cracking in austenitic stainless steel; nitric acid is a strong oxidizer and introduces nitrate residues; phosphoric acid has lower acid strength and is generally chosen for metal passivation rather than acidulation. Sulfuric acid has a boiling point of approximately 337 °C for the 98.3% azeotrope; its vapor pressure at 20 °C is below 0.001 kPa, so fuming at ambient temperature is minimal. The acid is diprotic with a first dissociation constant of approximately 10³ and a second dissociation constant of 1.2 × 10⁻². These differences make sulfuric acid preferable where high-temperature digestion, dehydration, or sulfonation is required; operational boundaries and storage metallurgy differ accordingly.
| Property | Sulfuric acid | Hydrochloric acid | Nitric acid | Phosphoric acid |
|---|---|---|---|---|
| Typical commercial mass fraction | 93–98 wt% | 30–36 wt% | 60–68 wt% | 75–85 wt% |
| Density at 20 °C | 1.827–1.844 g/cm³ | 1.15–1.19 g/cm³ | 1.37–1.42 g/cm³ | 1.58–1.75 g/cm³ |
| Boiling point / azeotrope | 337 °C at 98.3% | 110 °C at 20.2% | 121 °C at 68% | 158 °C at 85% |
| Oxidizing behavior | Non-oxidizing; hot concentrated acid oxidizes metals | Reducing acid | Strong oxidizer | Non-oxidizing |
| Typical storage metallurgy | Carbon steel at >93% | Rubber-lined steel or FRP | Stainless steel | Stainless steel |
Operational boundaries for concentrated product include freezing points that vary from −35.7 °C at 93.3% to 10.4 °C at 100%; the 98% product grade freezes near 0 °C. Storage tanks and transfer lines require heat tracing when ambient temperature falls below these setpoints. Dilution must always be performed by adding acid to water with continuous mixing; localized water addition to concentrated acid can produce steam explosions and aerosol release. Incompatible materials include alkaline cyanides, sulfides, chlorates, powdered metals, and organic peroxides; contact can initiate violent decomposition or ignition. Secondary containment for storage tanks is required under EPA 40 CFR 264.193 or equivalent local regulation. Personnel exposure limits are typically set at an ACGIH TLV of 0.2 mg/m³ thoracic fraction and an OSHA PEL of 1 mg/m³ for sulfuric acid mist. Emergency showers and eyewash stations must deliver tepid water at 15.6–37.8 °C per ANSI/ISEA Z358.1. These constraints are the minimum basis for specification in a chemical handling system.