| HS Code | |
| Productname | Triethanolamine |
| Iupacname | 2,2',2''-Nitrilotriethanol |
| Casnumber | 102-71-6 |
| Einecsnumber | 203-049-8 |
| Molecularformula | C6H15NO3 |
| Molecularweight | 149.19 g/mol |
| Appearance | Colorless to pale yellow viscous liquid |
| Odor | Mild ammoniacal |
| Meltingpoint | 21.6 °C |
| Boilingpoint | 335.4 °C at 760 mmHg |
| Density | 1.124 g/cm³ at 20 °C |
| Solubility | Miscible with water, ethanol, and acetone |
| Ph | 10.5 to 11.5 for aqueous solution |
| Flashpoint | 179 °C closed cup |
| Viscosity | 590 mPa·s at 25 °C |
| Refractiveindex | 1.4855 at 20 °C |
| Vaporpressure | Less than 0.01 mmHg at 20 °C |
| Pka | 7.74 at 25 °C |
| Logp | -1.0 |
| Chemicalclass | Alkanolamine |
As an accredited Triethanolamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Triethanolamine is supplied in 250 kg polyethylene drums or 1,000 kg IBC totes, with secure closures and hazard labels. |
| Container Loading (20′ FCL) | Triethanolamine is loaded into a 20′ FCL container in drums, properly secured, labeled, sealed, and documented for safe ocean shipment. |
| Shipping | Triethanolamine (CAS 102-71-6) is generally not classified as dangerous goods for transport. It is shipped in steel drums, IBC totes, or bulk tankers with proper labeling. Keep containers sealed and store away from acids and oxidizers. Follow the SDS and applicable local, national, and international shipping regulations. |
| Storage | Store triethanolamine in tightly closed, labeled containers in a cool, dry, well-ventilated area. Protect from moisture, carbon dioxide, light, acids, and oxidizers. Keep away from incompatible metals and ignition sources. Maintain temperatures above its freezing point (about 21°C) to prevent solidification. Use compatible containers, secondary containment, and grounding. Follow local regulations, SDS, and spill procedures. Ensure adequate ventilation. Store securely. |
| Shelf Life | Triethanolamine shelf life is typically 24 months when stored sealed in cool, dry, dark place, away from acids and moisture. |
Triethanolamine is metered into the first compartment of closed-circuit cement mills as a processing addition at 0.01–0.05 wt% of clinker mass (100–500 g/t), typically diluted with water to a mass ratio of 1:1–1:4 before injection. The amine reduces surface energy of fine particles and lowers agglomeration in the grinding zone, permitting higher Blaine fineness at constant specific energy. Compliance is demonstrated through ASTM C465-19 for processing additions used in hydraulic cement manufacture, with compressive strength retention verified against EN 196-1 and fineness measurement by ASTM C204. In production, a positive-displacement metering pump feeds the diluted amine either onto the clinker conveyor ahead of the mill or directly into the mill inlet through an atomizing nozzle; mill outlet temperature is held between 90 °C and 115 °C to avoid excessive volatilisation before contact with clinker. Field experience on 150 t/h two-chamber ball mills with separator recycle indicates that the rheological behaviour of the separator fines changes before measurable fineness gain; when the amine dose exceeds 500 g/t, prehydration and coating effects on gypsum dehydration can become detectable. Overdosage above 0.1 wt% can shift Vicat initial set according to EN 196-3, and batch-to-batch variance in clinker mineralogy makes a universal set-time correction factor unreliable. Because triethanolamine has a freezing point near 21 °C, bulk tanks and dosing lines in cold-climate plants require heat tracing at 25–30 °C and a dry-air or nitrogen pad to prevent water absorption. Terminal finished product types include CEM I 42.5 R, high-early-strength Portland cement, CEM II/A-LL 42.5 with limestone, and rapid-hardening cement for precast concrete where early compressive strength is controlled.
In semisynthetic metalworking fluid concentrates, triethanolamine is charged at 8–18 wt% of the concentrate to neutralise tall oil fatty acid and boric acid, forming water-soluble amine salts that buffer the diluted sump at pH 8.8–9.3. The formulation addition ratio at the machine sump is typically 3–7% concentrate in water, giving a working triethanolamine concentration of 0.24–1.26 wt%. Compliance and corrosion control are tested according to ISO 6743-7 for fluid classification and ASTM D4627 for cast iron chip corrosion; DIN 51360-2 may be used as a supplementary rust-preventing test for ferrous surfaces. Production blending uses a temperature-controlled vessel at 40–50 °C with high-shear dispersion for amine soap formation; tall oil fatty acid is charged first, followed by triethanolamine addition at a rate that keeps the exotherm below 55 °C, then water and extreme-pressure additives are introduced. Field-scale blending of 5,000 kg batches shows that under-neutralisation by 0.5% of the required triethanolamine charge produces cloudiness and a pH drop of 0.3–0.5 after 72 h. Nitrite-based rust inhibitors are excluded from triethanolamine-containing formulations because of potential N-nitrosodiethanolamine formation, and separate pumps, hoses, and sump charging procedures are required when switching from nitrite legacy coolants. For 6000-series aluminium machining, pH is capped at 8.8 and silicate or phosphate inhibitor packages are used to avoid bimetallic staining of aluminium components. Terminal finished product types include semisynthetic coolants for CNC turning and milling of cast iron, soluble oils for gear hobbing, and high-lubricity grinding fluids for bearing steel.
An acid-functional styrene-acrylic dispersion with an acid number of 18–25 mg KOH/g is neutralized with triethanolamine at 0.8–1.8 wt% based on polymer solids, shifting pH from 2.8–3.2 to 7.8–8.5 before the coalescent and associative thickener letdown. This addition ratio is calculated from the resin acid number rather than total formulation mass; under-neutralisation below 70% leaves shear-sensitive viscosity instability, while over-neutralisation above 110% increases water sensitivity of the dried film. Compliance with volatile organic content requirements is measured by ASTM D2369-20 or ISO 11890-2:2020, and the final decorative wall paint must conform to EU Directive 2004/42/EC Category A/a limits if supplied in Europe. Production equipment for neutralization is a stainless steel mixing tank with a Cowles disperser or low-speed propeller at 200–400 rpm; the amine is added over 15–25 min at 25–35 °C because the neutralization exotherm can form local gel particles if dumped into a high-solids dispersion. In production-scale 2,000 L batches, viscosity rise during neutralization is tracked with a rotational viscometer at 1 s⁻¹ and 100 s⁻¹ to confirm the ratio of low-shear to high-shear viscosity remains within 2.5–4.5, which controls sag resistance without over-thickening. Terminal finished product types include interior and exterior architectural paints, waterborne wood primers, and direct-to-metal acrylic coatings where triethanolamine is selected for cost-driven pH control rather than low-odor performance. In low-odor or zero-VOC formulations, triethanolamine is usually replaced by 2-amino-2-methyl-1-propanol or sodium hydroxide because residual amine volatility contributes to headspace odor and pH drift at elevated storage temperatures.
In oil-in-water creams, triethanolamine is charged at 0.3–0.8 wt% of the finished formula to neutralise 2–4 wt% stearic acid in the oil phase, forming triethanolamine stearate as the primary anionic emulsifier. The maximum ready-for-use concentration is limited to 2.5% by Annex III of Regulation (EC) No 1223/2009, and raw material nitrosamine content is controlled to below 50 µg/kg with nitrite-free container specifications. Production follows ISO 22716 good manufacturing practice; the oil phase containing stearic acid is heated to 70–75 °C, the water phase containing triethanolamine is heated separately to 70–75 °C, and the two phases are combined under a rotor-stator homogenizer at 3,500–5,000 rpm for 5–10 min. Batch processing in a 500 kg vacuum kettle with anchor stirrer at 20–30 rpm requires pH probe recalibration at the start of each batch because fatty acid soap film builds on the electrode surface, and drift of 0.3–0.5 pH units can otherwise occur during the cooling phase. The emulsion is cooled to 40 °C before heat-sensitive additives are introduced; final viscosity is measured by rotational viscometer at 25 °C. Terminal finished product types include vanishing creams, shaving preparations, hair conditioning creams, and low-pH sunscreen lotions where triethanolamine stearate provides a fine oil droplet distribution with a mean droplet size of 1–10 µm. The system is incompatible with nitrosating agents and should not be formulated with bronopol or sodium nitrite-containing preservative systems.
Aqueous triethanolamine at 20–30 wt% is circulated in an absorber-stripper loop for bulk CO2 removal from ammonia synthesis gas or pipeline natural gas when selective H₂S rejection is not the primary objective. Lean amine loading is maintained between 0.08–0.15 mol CO2/mol amine, rich loading between 0.35–0.45 mol CO2/mol amine, and absorber pressure between 20–40 bar with lean amine inlet temperature of 40–50 °C. Regeneration occurs in a steam-stripped reboiler at 115–125 °C with stripping steam ratio of 0.1–0.2 kg steam/kg lean amine; materials selection follows NACE MR0175/ISO 15156 for sour service and ASME B31.3 for process piping, while amine degradation products are monitored by heat-stable salt analysis. Operational boundaries: triethanolamine has lower specific CO₂ capacity than monoethanolamine or MDEA; make-up rates and reboiler duties rise when rich loading exceeds 0.45 mol/mol, and corrosion accelerates in carbon steel overhead systems if acid gas flashing occurs at temperatures above 90 °C. Production-scale columns of 2.0–3.0 m diameter and 18–24 m packed height may show foaming from heat-stable salts; antifoam addition and activated carbon filtration are used to maintain absorber differential pressure below 10 kPa. Terminal finished product types include purified ammonia synthesis gas, low-CO₂ natural gas, and liquefied natural gas pre-treatment streams where triethanolamine is selected for low corrosion in high-acid-gas environments rather than high absorption efficiency. Published data for specific triethanolamine-based gas treating systems is more limited than for MDEA; design should be confirmed against vendor pilot data.
Triethanolamine is blended into the B-component polyol formulation at 0.5–2.0 php to function both as a trifunctional crosslinker and a tertiary amine co-catalyst in rigid polyurethane and polyisocyanurate foams. Below 0.5 php, contribution to compressive strength development is negligible; above 2.5 php, the foam becomes friable and the B-component viscosity rises sufficiently to alter mixing quality in high-pressure metering machines. Compliance testing uses ASTM D1621-16 for compressive properties, ISO 844 for apparent density, and EN 13501-1 for fire classification of the final board. The B-component containing polyol, triethanolamine, water as chemical blowing agent, surfactant, and flame retardant is conditioned at 20–25 °C; A-component is polymeric MDI. High-pressure polyurethane metering equipment mixes at 120–150 bar with a static or dynamic mix head, cream time 15–25 s, gel time 45–70 s, and free rise density 28–40 kg/m³. In continuous laminate lines for metal-faced sandwich panels, the reacting liquid is dispensed onto a moving lower metal skin with a traversing mix head at 10–20 kg/min per head; line speed and laydown density are adjusted to limit overpack below 15%. Field-scale experience shows that triethanolamine levels at the upper end of the range cause premature cream time reduction of 3–5 s because the tertiary nitrogen accelerates the water-isocyanate reaction before full mixing. For formulations requiring fine cell structure below 150 µm, triethanolamine is combined with potassium octoate or dimethylcyclohexylamine to decouple gel and blowing profiles. Terminal finished product types include PIR insulation boards for flat roofs, continuous metal-faced sandwich panels for cold storage, and pour-in-place insulation foam for reefer containers and domestic appliances.
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Triethanolamine, CAS 102-71-6, EC 203-049-8, is a tertiary alkanolamine consisting of a central nitrogen carrying three 2-hydroxyethyl groups. Industrial production proceeds by ethoxylation of ammonia; the reaction yields a mixture of monoethanolamine, diethanolamine, and triethanolamine, and subsequent fractional distillation produces the commercial grades. Common commercial designations include triethanolamine 99 %, triethanolamine 85 %, and low-freeze triethanolamine 85 LFG, although producer nomenclature varies. The 99 % grade is a clear hygroscopic liquid with molecular weight 149.19 g/mol, specific gravity 1.124 at 20 °C, normal freezing point 21.6 °C, and dynamic viscosity 600–900 mPa·s at 25 °C. The 85 % grade contains residual diethanolamine and small water content, which alters solidification behavior and active alkalinity per unit mass.
Specification differences arise from the distillation cut and the allowable residual alkanolamines. High-purity TEA 99 is typically released with triethanolamine content at or above 99.0 %, diethanolamine below 0.5 %, monoethanolamine below 0.2 %, and water below 0.2 % by ASTM E203. TEA 85 is a mixed alkanolamine product in which triethanolamine content is 85 % minimum and diethanolamine can approach 15 %; water is typically controlled below 0.5 %. The blend has different solidification behavior and lower active tertiary-amine concentration per unit mass. In metering systems, this means a mass-based dosage must be increased by approximately 15 % to deliver the same tertiary-amine content as TEA 99, while the higher diethanolamine content introduces secondary-amine chemistry relevant to nitrosamine control and isocyanate reactivity. Table 1 shows representative release values; producer certificates of analysis vary.
| Property | TEA 85 representative release | TEA 99 representative release | Test method |
|---|---|---|---|
| Triethanolamine content | 85 % min | 99 % min | GC-FID with internal standard |
| Diethanolamine content | 15 % max | 0.5 % max | GC-FID with internal standard |
| Water content | 0.5 % max | 0.2 % max | ASTM E203 |
| Colour, APHA | 100 max | 50 max | ASTM D1209 |
| Specific gravity at 20 °C | 1.12 | 1.124 | ASTM D4052 |
In cement grinding, triethanolamine is introduced into closed-circuit ball mills at 0.01–0.05 % by mass of clinker. The addition point is usually the mill feed conveyor or the first compartment via an air-atomized spray. The amine adsorbs on freshly fractured silicate surfaces and reduces particle-to-particle agglomeration, which improves separator efficiency and increases Blaine fineness at constant mill energy. Response is not linear; a dosage increase of 0.005 % can produce Blaine fineness shifts of 5–20 m²/kg in some clinker systems, but published data for specific mill configurations remains limited. Over-addition above 0.05 % may reduce mill throughput and increase storage pack-set, particularly when clinker sulfate and alkali contents are high. Compliance with ASTM C465 is required when the material is used as a processing addition in hydraulic cement.
Triethanolamine serves as a low-volatility base in water-dilutable metalworking fluid concentrates, maintaining working solution pH between 8.8 and 9.5. The tertiary amine neutralizes acidic hydrolysis products from phosphate esters and sulfonates, while the three hydroxyl groups contribute to lubricity film formation on ferrous surfaces. Cast iron chip corrosion is evaluated by ASTM D4627, and copper alloy staining by ASTM D130. Typical concentrate addition is 5–15 wt%. Above 20 wt%, concentrate viscosity increases and dried residues on machine tool surfaces become difficult to remove. Compared with monoethanolamine, triethanolamine produces a smaller pH increase per unit mass but retains reserve alkalinity over longer sump residence time and has lower ammonia-like odour. In hard water, formulations may require supplemental borate or sebacate buffers because the triethanolamine buffer window shifts with magnesium and calcium ion concentration.
In carbomer-based gels, triethanolamine is added at 0.3–1.5 wt% to raise pH into the 5.5–6.5 range. At this pH, carboxylic acid groups on the polymer ionize and electrostatic repulsion produces the transparent gel structure. The neutralization is stoichiometric; excessive triethanolamine above pH 7.5 compresses the electrical double layer and may reduce viscosity and optical clarity. Low-diethanolamine triethanolamine is specified where secondary-amine impurities are controlled under the raw-material requirements of Commission Regulation (EC) No 1223/2009. The 85 % grade is generally avoided in this application because its diethanolamine content can alter gel clarity and introduce nitrosamine-relevant impurity. Published data for specific carbomer grades is limited; polymer type, mixing shear, and addition order influence the final rheology.
The three ethanolamines differ in amine classification, hydroxyl functionality, and vapour pressure. Monoethanolamine is a primary amine with one hydroxyl group; diethanolamine is a secondary amine with two hydroxyl groups; triethanolamine is a tertiary amine with three hydroxyl groups. The additional hydroxyl group in triethanolamine increases the nominal hydroxy equivalent weight to 49.73 g/eq, while the absence of N–H hydrogen reduces urea formation in isocyanate systems. Table 2 compares the commercial products.
| Parameter | MEA | DEA | TEA |
|---|---|---|---|
| CAS registry number | 141-43-5 | 111-42-2 | 102-71-6 |
| Amine type | Primary | Secondary | Tertiary |
| Hydroxyl groups per molecule | 1 | 2 | 3 |
| Molecular weight | 61.08 g/mol | 105.14 g/mol | 149.19 g/mol |
| pKa at 25 °C | 9.5 | 8.9 | 7.8 |
| Boiling point at 101.3 kPa | 170 °C | 268 °C | 335 °C with decomposition |
| Functional consequence in polyurethane systems | Monofunctional chain stopper | Difunctional chain extender | Trifunctional crosslinker and tertiary-amine catalyst |
In polyurethane formulations, triethanolamine is incorporated into the polyol blend rather than added to the isocyanate side. Typical loading is 0.5–5.0 parts per hundred polyol. The tertiary amine accelerates the water-isocyanate reaction, and the three hydroxyl groups enter the urethane network. Because the hydroxy equivalent weight is 49.73 g/eq, replacement of diethanolamine by triethanolamine at equal mass increases crosslink density and can shorten pot life. Published data for specific formulation systems is limited; gel time may shift by several seconds when triethanolamine is changed in 0.1 pphp increments. In flexible slabstock foam, low-diethanolamine triethanolamine grades are used to control secondary-amine-derived nitrosamine potential.
Triethanolamine reacts with fatty acids such as stearic acid or oleic acid to form triethanolamine soaps. At a 1:1 molar ratio, the resulting triethanolamine stearate is an oil-in-water emulsifier; partial neutralization leaves free fatty acid and may invert the emulsion to water-in-oil character. These soaps are used in emulsifiable metalworking fluids, cosmetic creams, and leather fatliquors. The pH of the finished emulsion typically falls between 7.5 and 8.5, which is adequate for mild steel corrosion inhibition but insufficient for high-hardness water without supplemental alkanolamine or borate buffer. The viscosity and colour of the soap are affected by the residual water and diethanolamine content of the triethanolamine grade.
Bulk storage of TEA 99 requires heat tracing where ambient temperature can fall below 21.6 °C. At 15 °C, the viscosity of the 99 % material can exceed 1,500 mPa·s, and pump suction line pressure drop increases proportionally. Gear pumps with low-speed operation and positive displacement metering are preferred over high-speed centrifugal pumps. Carbon steel and 316 stainless steel are suitable for storage; continuous contact with copper and copper alloys is avoided because amine complexation can discolour the product. Nitrogen blanketing is used to limit water absorption and oxidative colour drift. Heating loops should maintain product temperature at 30–40 °C; local hot spots above 60 °C accelerate colour formation. When triethanolamine is used in reactive systems, it is pre-blended into the polyol or aqueous phase rather than mixed directly with concentrated isocyanate, avoiding localized gelation.
In waterborne alkyd and polyester coatings, triethanolamine neutralizes acid-functional resins and stabilizes the dispersion pH between 7.8 and 8.5. It is added before letdown water; addition after water can cause viscosity peaks because neutralization and inversion occur simultaneously. The dosage is calculated from resin acid number and is typically 0.5–2.0 wt% of resin solids. Compared with ammonia, triethanolamine provides lower evaporation and more stable pH during spray application, but it also reduces early water resistance in the dried film. Flash-rust resistance on ferrous substrates is evaluated by ASTM D610 visual rust rating or specified salt-spray procedures.