| Код ТН ВЭД | |
| Название продукта | Молочная кислота |
| химическая формула | C3H6O3 |
| Название ИЮПАК | 2-гидроксипропановая кислота |
| Cas номер | 50-21-5 |
| Номер Einecs | 200-018-0 |
| молекулярный вес | 90,08 г/моль |
| внешность | Безцветная до слегка желтая вязкая жидкость или белая кристаллическая твердая |
| запах | Легкий, почти без запаха |
| вкус | Кислый |
| точка плавления | 16,8 °C (расемический); 53 °C (L-(+)-изомер) |
| точка кипения | 122 °C при 12 mmHg (распадается) |
| плотность | 1,209 г/см³ при 25 °C (чистая); 1,19–1,21 г/см³ (85% раствор) |
| растворимость | Смешивается с водой, этанолом, глицерином; растворимый в эфире; нерастворяемый в хлороформе |
| рН | кислотный; 1% водный раствор pH приблизительно 2,4 |
| пКа | 3,86 при 25 ° C |
| точка вспышки | > 100 ° C |
| вязкость | Примерно 40 мПа·с при 20 °C (88% раствор) |
| Испытание Чистота | Обычно 80-90% водного раствора или 88% пищевого /фармацевтического качества |
| условия хранения | Хранить в прохладном, сухом, хорошо вентилируемом месте подальше от окислителей и щелоц |
| Общие классы | Продовольственная, фармацевтическая, косметическая, техническая |
| Основные области применения | Пищевые консерванты, кислотители, ароматизаторы, косметика, фармацевтические препараты, биопластмассы |
Как аккредитованный завод Молочная кислота, мы применяем строгие протоколы качества - каждая партия проходит тщательное тестирование для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Молочная кислота упаковывается в 25 кг полиэтиленоволоконных барабанов с надежно запечатанными крышками для безопасной обработки и хранения. |
| Погрузка контейнера (20-футовый контейнер) | Молочная кислота загружается в контейнер в 20′ FCL, используя паллетизированные барабаны или IBC, закрепленные и маркированные для безопасной перевозки химических веществ. |
| Доставка | Молочная кислота поставляется как UN3265, Коррозионная жидкость, кислотная, органическая, не указанная (молочная кислота), класс 8, группа упаковки III. Используйте одобренную ООН, кислотостойкую упаковку с коррозионными этикетками/плакатами. соблюдать правила ДОПОГ/ИМДГ/ИАТА; держать контейнеры закрытыми, избегать контакта и обеспечивать соблюдение SDS и местных правил. |
| Хранение | Храните молочную кислоту в прохладном, сухом, хорошо вентилируемом месте, подальше от тепла, источников зажигания и прямого солнечного света. Держите контейнеры плотно закрытыми, чтобы предотвратить поглощение влаги. Используйте коррозионостойкие контейнеры, такие как стекло, полиэтилен, полипропилен или нержавеющая сталь. Отделяется от сильных оснований и окисляющих агентов. Ясно маркируйте, соблюдайте местные правила хранения кислоты и сдерживания разлива и регулярно проверяйте утечки. |
| Срок годности | Молочная кислота обычно имеет двухлетний срок хранения, если хранится в плотно закрытом контейнере, прохладном, сухом и подальше от света. |
Commercial polylactic acid production routes begin with condensation of aqueous lactic acid into oligomers, followed by depolymerisation to lactide in a wiped-film evaporator. The wiped-film unit is typically operated at 180–230 °C under 10–50 mbar absolute pressure, with a residence time below 10 min to limit racemisation. Polymer-grade L-lactic acid feedstock requires a stereochemical purity of at least 99.0 % L-isomer by chiral HPLC. Water content in the 90 wt% solution is controlled at 8–10 wt%. Residual sugar content above 0.1 wt% caramelises on the evaporator hot surface and increases the yellowness index of the resulting lactide. Sulfate concentration above 10 mg/kg poisons the tin catalyst used downstream. Iron above 5 mg/kg is avoided because it catalyses oxidative colour body formation during vacuum distillation.
Ring-opening polymerisation of lactide is run in a 3,000 L 316L stainless steel reactor with Dowtherm heating jackets. Tin(II) 2-ethylhexanoate is added at 0.02–0.05 wt% relative to lactide. Bulk polymerisation proceeds at 170–190 °C for 2–5 h. Monomer conversion is monitored by 1H NMR, with a target residual lactide below 0.5 wt% before devolatilisation. The melt is then fed to a co-rotating twin-screw extruder with an L/D ratio of 40:1 and a vacuum vent at 20–40 mbar. Pellets are dried to below 0.025 wt% moisture before injection moulding or fibre spinning. Failure to dry below this threshold produces a melt-flow-rate drift of more than 15 % after 4 h at 200 °C due to hydrolytic chain scission.
| L-lactide /D-lactide ratio | Glass transition temperature range | Melting temperature range | Melt flow rate at 190 °C/2.16 kg (ISO 1133-1:2022) | Typical forming route |
|---|---|---|---|---|
| 100 /0 | 55–60 °C | 170–180 °C | 2–10 g/10 min | fibre spinning, biaxially oriented film |
| 96 /4 | 50–55 °C | 150–160 °C | 6–20 g/10 min | thermoforming, blown film |
| 88 /12 | 45–50 °C | none | 15–30 g/10 min | injection moulding, hot-melt adhesive |
Packaging grades intended for food contact require compliance with Regulation (EU) No 10/2011 overall migration limits of 10 mg/dm² and, for compostability claims, with ASTM D6400-23. Mechanical property certification commonly uses ISO 527-2:2012 for tensile properties and ASTM D3418-21 for thermal transitions. Published data for specific lots vary with catalyst residue and devolatilisation efficiency; resin suppliers control batch-to-batch variation by blending depolymerised lactide streams with a defined meso-lactide content below 1.0 wt%.
In fermented, pasteurised, and acidified beverage lines, L(+)-lactic acid is metered as a 50 wt% or 88 wt% aqueous solution after flash pasteurisation. Soft-drink addition rates are commonly set between 0.5 g/kg and 2.0 g/kg finished beverage, with the final titratable acidity adjusted to 1.5–2.5 g/L expressed as lactic acid. pH is verified by a calibrated probe according to ISO 10523:2008 and titratable acidity by AOAC 942.15. The acid is injected by a 316L stainless steel positive-displacement pump into a static mixer before carbonation. The undissociated fraction capable of crossing microbial membranes is calculated from the pKa of 3.86 at 25 °C; at pH 4.0 this fraction is approximately 42 %, and at pH 3.5 it rises to approximately 69 %. This gradient explains why pH drift above 4.2 in acidified whey drinks is corrected by lactic acid rather than citric acid, because the lower buffer intensity at the target pH avoids excessive sourness.
For fermented meat and cheese brine applications, lactic acid is used in concentration ranges of 0.1–1.0 wt%. Brine make-up tanks are held at 4–8 °C and the acid is dosed under continuous recirculation to prevent localised protein coagulation. In fresh pasta and sauce lines, 0.2–0.5 wt% lactic acid reduces spoilage yeast counts when the product water activity is above 0.95. The food additive specification for lactic acid is covered by FDA 21 CFR 184.1061, the FCC monograph, and EU Regulation (EC) No 1333/2008 Annex II as E 270. Only the L(+) isomer is permitted in infant formulae under Commission Delegated Regulation (EU) 2016/127, because high D(-)-lactate intake is associated with metabolic acidosis in neonates. Production lines handling spray-dried lactic acid powder require relative humidity below 60 % RH in the dosing hopper, because the hygroscopic powder forms lumps that block screw conveyors.
| pH | Ratio of ionised to undissociated acid | Undissociated fraction |
|---|---|---|
| 3.0 | 0.14 | 88 % |
| 3.5 | 0.44 | 69 % |
| 4.0 | 1.38 | 42 % |
| 4.5 | 4.37 | 19 % |
| 5.0 | 13.8 | 7 % |
Clean-in-place systems handling lactic acid solutions use elastomer seals made of EPDM or Viton. Contact with hypochlorite-based sanitisers must be sequenced with intermediate water rinses because lactic acid at pH 2.5–3.0 protonates hypochlorite and releases chlorine gas. Published data for specific beverage microbial deletion rates depend on the target organism and temperature; validation is performed by challenge testing with Listeria monocytogenes or Saccharomyces cerevisiae rather than inferred from lactic acid concentration alone.
The replacement of acetate with lactate in two-part bicarbonate dialysate concentrates is executed when acetate-induced hypotension or myocardial depression is to be avoided in high-efficiency haemodialysis. An acid concentrate for haemodialysis may contain 3.0–4.0 g/L lactic acid, with sodium chloride, potassium chloride, calcium chloride, and magnesium chloride, while the bicarbonate concentrate is kept as a separate solution to prevent precipitation of calcium carbonate. The final dialysate after proportioning is held at pH 7.0–7.4 and contains lactate at 2.0–4.0 mmol/L. Compounding is performed in pharmaceutical-grade 316L vessels with water meeting USP purified water requirements; endotoxin concentration in the water is controlled below 0.25 EU/mL. The lactic acid raw material must meet the USP monograph assay of 88.0–92.0 % w/w, with chloride below 0.005 %, sulfate below 0.02 %, iron below 10 ppm, and heavy metals below 10 ppm. Pharmacopoeial compliance also requires identity by reaction with sodium hydroxide and a positive test for lactate, plus limit tests for citric acid, oxalic acid, and tartaric acid.
In topical keratolytic formulations, lactic acid is used at 5–12 % w/w. Partly neutralised ammonium lactate lotion contains lactic acid neutralised with ammonium hydroxide to pH 4.5–5.5. The vehicle is an oil-in-water emulsion; the aqueous phase is prepared with humectants such as propylene glycol at 10 % w/w, and the oil phase is added under high-shear mixing at 60–70 °C. The pH is adjusted after cooling to 35 °C to prevent emulsion destabilisation. Permeation of lactic acid into the stratum corneum is pH-dependent; published data show that a pH decrease from 5.0 to 3.5 increases the undissociated acid fraction from 7 % to 69 % based on pKa 3.86. This is why lower pH alphahydroxy acid products are associated with higher stinging and erythema rates, even when the total acid concentration is held constant.
For parenteral or dialysis use, the oxidative degradation of lactic acid to acetaldehyde and carbon dioxide is monitored. Bulk lactic acid stored at >25 °C for more than 6 months can form intermolecular esters, chiefly lactoyllactic acid, that shift the assay downward. Warehousing practice therefore maintains polymer-grade and pharmaceutical-grade lactic acid in high-density polyethylene containers at 15–25 °C. Published data for this specific configuration is limited when the acid is repeatedly exposed to air; closed-loop nitrogen blanketing is specified for stainless storage tanks.
Cosmetic emulsions buffered with lactic acid at pH 3.8–4.5 require a buffering strategy that accounts for the acid's pKa of 3.86 and for the base used to thicken carbomer polymers. In a typical oil-in-water anti-ageing cream, 0.1–0.5 wt% lactic acid is added to the water phase before carbomer neutralisation with triethanolamine to pH 5.5–6.5. In leave-on AHA exfoliants, the free acid concentration is maintained between 5 wt% and 10 wt%, but the formulation pH is not reduced below 3.5 without documented safety substantiation. Sodium lactate at 1–2 wt% is used as a humectant in moisturising creams and is often described as a natural moisturising factor component. The ingredient functions as a chelating agent for iron and copper at 0.05–0.2 wt% in emulsions containing unsaturated vegetable oils; this reduces oxidative rancidity during storage at 45 °C for 12 weeks, as measured by peroxide value according to ISO 3960:2017.
Safety assessment under Regulation (EC) No 1223/2009 requires a Cosmetic Product Safety Report; lactic acid is not restricted under Annex II or III, but the Scientific Committee on Consumer Safety has published concentration-specific opinions for alpha-hydroxy acids that form the basis for pH limitation in mass-market products. Preservative efficacy in lactic acid-toned emulsions is evaluated by ISO 11930:2019 challenge testing, because the low pH increases the antimicrobial activity of organic acid preservatives but can destabilise carbomer and xanthan gum matrices. High-shear mixing at 3,000 rpm for 15 min is typical for o/w emulsions; prolonged mixing after acid addition can entrain air and accelerate oxidation of fragrance components. Published data for specific lactic acid-induced viscosity loss in silicate-thickened systems indicates that magnesium aluminium silicate gels lose more than 20 % viscosity when pH is reduced from 6.0 to 4.0; therefore, thickening is completed after final pH adjustment.
Ethyl lactate synthesis from lactic acid and ethanol is equilibrium-limited, requiring water removal to drive conversion above 90 %. A continuous reactive distillation column with 15–25 theoretical stages is operated at atmospheric pressure. The feed molar ratio of ethanol to lactic acid is set between 3:1 and 5:1. Sulfuric acid at 1.0 wt% of the lactic acid feed or a sulfonic acid resin such as Amberlyst 15 is used as catalyst. The column reboiler temperature is maintained below 110 °C to suppress lactic acid oligomerisation. Water is removed as the ethanol-water azeotrope at 78–80 °C; molecular sieves with a pore size of 3 Å are installed in the distillate loop to break the azeotrope when anhydrous ethyl lactate is required. Crude ester is then vacuum distilled at 20–40 mbar with a head temperature of 60–70 °C. Finished grade purity is verified by gas chromatography with flame ionisation detection; moisture is below 0.1 wt% by ASTM E203, acidity below 0.05 % as lactic acid, and distillation range within 145–155 °C by ASTM D1078.
Industrial solvent applications use ethyl lactate as a low-vapour-pressure alternative to acetone, methyl ethyl ketone, and N-methyl-2-pyrrolidone in printing inks and coil coatings. The flash point of ethyl lactate is approximately 46–52 °C, which places it in combustible liquid classification under ASTM D3278. Formulation trials on rotogravure presses have shown that replacements above 30 wt% of the total solvent blend require rebalancing of drying tunnel temperatures because the evaporation number for ethyl lactate is higher than that of MEK. The solvent is less aggressive to polyurethane and acrylic binders than NMP, but its use in two-pack systems containing isocyanate hardeners is limited because residual lactic acid and ethanol can consume isocyanate groups at 0.1–0.3 wt% residual acid. Published data for specific printing press configurations is limited; OEM ink suppliers evaluate dot gain and cylinder swelling per press set-up. Food-grade ethyl lactate falls under FDA 21 CFR 172.515 as a synthetic flavouring substance and is registered under EU REACH for industrial import volumes above 1 tonne/year.
Deposits in dairy plate heat exchangers consist of calcium phosphate, calcium carbonate, protein, and fat. Lactic acid at 0.5–2.0 wt% is circulated as a descaling solution at 40–60 °C. The pH of the cleaning solution is held between 2.5 and 3.5. Calcium phosphate dissolution is slower than calcium carbonate dissolution; therefore, a contact time of 20–40 min is required for pasteuriser plates processing milk at 72–74 °C for 15 s. The cleaning solution is delivered through the plate pack at a velocity of 1.5–2.0 m/s, which is 1.5–2.0 times the normal product velocity, to create turbulent flow at Reynolds numbers above 5,000. Stainless steel corrosion rates in lactic acid at 60 °C are below 0.1 mm/year for 316L when the chloride content of the make-up water is below 50 mg/L. At chloride concentrations above 150 mg/L, pitting risk increases sharply; descaling programs in high-chloride water therefore substitute gluconic acid or use lactic acid with a corrosion inhibitor.
Efficacy is measured by weighing a fouled stainless coupon before and after circulation. A mass removal of 85–95 % is considered effective for milkstone containing 60–70 % calcium phosphate by ash analysis. After circulation, the system is rinsed with water until the rinse conductivity returns to below 10 µS/cm and pH is above 6.0. Lactic acid is preferred in organic-certified processing plants because it is produced by fermentation and is accepted under FDA 21 CFR 184.1061 as a food-grade acid. However, residual lactic acid in the cleaning circuit after rinsing can support biofilm regrowth if the final sanitiser is not applied; therefore, lactic acid descaling is followed by peracetic acid sanitation at 0.1–0.2 wt% for 10 min. Published data for specific plate geometries is limited; heat exchanger manufacturers provide temperature and pressure drop curves for each plate pack configuration.
Silage clamp inoculant formulations containing lactic acid at 0.5–1.0 L/tonne of fresh forage are applied during harvesting to accelerate the initial anaerobic fermentation. Target silage pH for maize is below 4.2; for grass and legume silage the target is below 4.0. The acid is applied through an inline flowmeter and nozzle manifold mounted on a self-propelled forage harvester at 2.0–3.5 bar. Direct acidification is most effective in crops with a low sugar content, where endogenous lactic acid bacteria cannot produce sufficient acid to overcome buffering capacity. Buffering capacity for grass silage is typically 30–50 meq/kg DM; for maize silage it is 20–30 meq/kg DM. Direct lactic acid addition at 3–5 kg/tonne DM lowers the initial pH to below 5.0 within 1 h, before anaerobic yeasts multiply. Published data show that direct acidification alone does not prevent aerobic spoilage at feed-out, because lactic acid is a substrate for lactate-assimilating yeasts; blends with propionic acid or benzoic acid are used at 0.2–0.5 wt% of the total acid mix to improve aerobic stability.
In drinking water acidification for poultry, lactic acid is combined with formic acid and propionic acid. The target drinking water pH is 4.0–4.5, achieved with inclusion rates of 0.5–1.5 L/1,000 L. Dosing pumps are calibrated daily by pH measurement at the nipple line. Prolonged exposure below pH 4.0 can reduce water intake and increase corrosion of galvanised lines; therefore, stainless steel or food-grade PVC distribution piping is specified. In feed preservation, lactic acid is sprayed onto finished mash or pellets at 0.5–1.5 wt% to suppress Salmonella and mould growth during storage at moisture levels up to 14 %. EU feed hygiene is governed by Regulation (EC) No 183/2005; lactic acid used as a technological feed additive is listed in the EU Register of Feed Additives. Batch-to-batch variation in acid tolerance of feed mill matrices requires on-site challenge testing, because published data for specific feed compositions is limited.
In chrome tannage, basification after chromium penetration is controlled by adding weak organic acid salts such as sodium lactate; lactic acid is used earlier as a masking agent in the pickle or in the chrome bath. A typical process sequence uses 5–8 wt% basic chromium sulfate powder with 33 % basicity and 25 % Cr₂O₃ on fleshed pelt weight. The float ratio is maintained at 0.8–1.0, and the drum speed is set at 6–10 rpm in a stainless steel tanning drum. After 2–3 h of penetration, basification agents such as sodium bicarbonate or magnesium oxide are added incrementally to raise the bath pH from 2.8–3.2 to 3.8–4.2 over 90–120 min. Lactic acid or sodium lactate, when added at 0.3–0.5 wt% before basification, acts as a masking ligand that temporarily coordinates with chromium, delaying precipitation of chromium hydroxide and promoting uniform diffusion into the hide cross-section. Leather shrinkage temperature after fixation should exceed 100 °C when measured by ISO 3380:2015; incompletely fixed leather records shrinkage temperatures below 75 °C.
In the pickling stage prior to tanning, lactic acid is used at 0.5–1.5 wt% on pelt weight, with sodium chloride at 6–8 °Bé to suppress acid swelling. The pickle pH is held at 2.8–3.5. Lactic acid is less aggressive than sulfuric acid and provides a gradual pH reduction that limits surface grain damage. Finished leather pH and difference factor are measured according to ISO 4045:2018; values above pH 4.0 are considered risky for leather goods stored in high-humidity environments because they promote acid migration and fibre weakening. The use of D-lactic acid in leather processing is avoided where EU Ecolabel or ZDHC wastewater requirements apply, because D-lactate degradation in conventional aerobic wastewater treatment is slower than L-lactate. Published data for specific chrome-tanned leather batch performance is limited; tanneries validate each chemical batch by conducting a mini-drum trial with hide powder and chrome uptake analysis before full-scale runs.
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