| HS Code | |
| Product Name | Sodium Citrate TSC (Trisodium Citrate) |
| Abbreviation | TSC |
| Chemical Name | Trisodium 2-hydroxypropane-1,2,3-tricarboxylate |
| Synonyms | Trisodium citrate; Citric acid trisodium salt; Sodium citrate tribasic |
| Cas Number | 68-04-2 (anhydrous); 6132-04-3 (dihydrate) |
| Einecs Number | 200-675-3 |
| Molecular Formula | Na3C6H5O7 (anhydrous); Na3C6H5O7·2H2O (dihydrate) |
| Molecular Weight | 258.07 g/mol (anhydrous); 294.10 g/mol (dihydrate) |
| Appearance | White crystalline powder, granules, or crystals |
| Color | White |
| Odor | Odorless |
| Taste | Saline, slightly alkaline |
| Assay | ≥ 99.0% (on dried basis) |
| Ph | 7.5-9.0 (5% aqueous solution) |
| Solubility | Soluble in water; insoluble in ethanol |
| Melting Point | Decomposes on heating; dihydrate loses water around 150°C |
| Density | 1.76 g/cm³ (anhydrous) |
| Bulk Density | 0.8-1.2 g/cm³ |
| Moisture | ≤ 1.0% (anhydrous); 10.0-13.0% (dihydrate) |
| Particle Size | Available as fine powder, granular, or crystalline forms |
| Grade | Food, Pharmaceutical, Technical |
| Storage | Store in a cool, dry, well-ventilated area away from moisture and strong oxidizers |
| Shelf Life | 24-36 months in unopened original packaging |
| Packaging | 25 kg PP/PE bags, 500 kg/1000 kg jumbo bags, or as customer requirement |
| Hs Code | 2918.15.00 |
As an accredited Sodium Citrate TSC factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sodium Citrate TSC is packaged in 25 kg polyethylene-lined kraft paper bags, palletized and shrink-wrapped for safe storage and transport. |
| Container Loading (20′ FCL) | Sodium Citrate TSC is palletized, shrink-wrapped, and securely braced inside a 20′ FCL container for safe ocean freight. |
| Shipping | Sodium Citrate TSC (trisodium citrate) ships as a non-hazardous, non-flammable solid in securely sealed, labeled containers. Keep dry and away from moisture, strong oxidizers, and excessive heat. No special dangerous goods classification applies; follow standard handling and local transport regulations. |
| Storage | Store Sodium Citrate (TSC) in a cool, dry, well-ventilated place in a tightly sealed container. Protect from moisture, heat, and direct sunlight. Keep away from strong oxidizers and acids. Close containers when not in use, avoid dust formation, and label clearly. Use secondary containment if required by local regulations. |
| Shelf Life | Sodium citrate TSC typically has a shelf life of 2–5 years when kept dry, sealed, and at room temperature. |
In light blue-top coagulation tubes, trisodium citrate TSC (CAS 6132-04-3, molar mass 294.10 g/mol) functions as a reversible calcium chelator. The standard draw ratio of 9 parts blood to 1 part 3.2% w/v trisodium citrate dihydrate (0.109 M) is defined by CLSI H21-A5 and ISO 6710:2017. Underfilled tubes reduce the blood-to-anticoagulant ratio, leaving excess uncomplexed citrate in the sample; when the plasma is subsequently recalcified with calcium chloride in a prothrombin time or activated partial thromboplastin time assay, the residual citrate binds the reagent calcium and produces falsely prolonged clotting times. Filled tubes must be inverted 3–4 times immediately after collection to prevent local gelation, and sample storage before centrifugation is limited to 4 hours at room temperature for routine coagulation panels. For platelet-poor plasma preparation, centrifugation at 1,500 × g for 15 minutes at 20°C is typical, although laboratory standard operating procedures may specify 10–20 minutes depending on rotor type.
Apheresis and whole-blood storage systems use citrate in combination with dextrose and phosphate. Table 1 lists the composition of ACD-A, CPD, and CPDA-1 anticoagulant solutions. In these matrices, trisodium citrate provides not only anticoagulation but also an intracellular pH buffer after red cell metabolism generates lactic acid. The final pH of CPD and CPDA-1 solutions is approximately 5.6–5.8 at 25°C; this range preserves red cell 2,3-diphosphoglycerate and ATP concentrations during refrigerated storage. Whole blood collected in CPDA-1 is cleared for red cell storage up to 35 days under validated blood bank conditions, while CPD alone supports 21 days. Operational boundaries include avoidance of calcium-containing intravenous fluids in the same administration line and exclusion of citrate anticoagulation in patients with suspected hypocalcemia or severe hepatic impairment, where citrate metabolism to bicarbonate is impaired.
| Component | ACD-A (g/L) | CPD (g/L) | CPDA-1 (g/L) |
|---|---|---|---|
| Trisodium citrate dihydrate | 22.0 | 26.3 | 26.3 |
| Citric acid monohydrate | 8.0 | 3.27 | 3.27 |
| Dextrose monohydrate | 24.5 | 25.5 | 25.5 |
| Sodium dihydrogen phosphate monohydrate | — | 2.22 | 2.22 |
| Adenine | — | — | 0.275 |
During pasteurized processed cheese manufacture, trisodium citrate TSC is incorporated into the blend of natural cheese, water, milk fat, and dairy protein at 2.0–3.0% w/w of total formula. The citrate anion sequesters calcium from the casein matrix and exchanges it for monovalent sodium; calcium paracaseinate is converted to sodium paracaseinate with increased water-binding capacity. In a batch cooker operating at 85–95°C for 4–8 minutes with indirect steam and scraped-surface agitation, this ion exchange produces a homogeneous emulsion with fat globule diameters typically reduced to 1–5 μm under high shear. Insufficient citrate addition leaves unhydrated protein clusters and visible free fat during hot filling, while excessive citrate above 3.5% w/w can generate a pasty, short-bodied texture and a saline taste that limits consumer acceptance. Formulators often blend trisodium citrate with disodium phosphate or sodium polyphosphate to balance firmness and meltability; the exact ratio depends on the calcium content of the aged natural cheese and the final target pH of 5.6–5.8.
Finished product specifications for processed cheese spreads follow Codex Alimentarius CXS 283-1978 and national compositional standards. Sodium citrate complies with FCC and E 331 identity and purity criteria under Regulation (EC) No 1333/2008. A significant process limit is cooling rate: the hot cheese mass must be cooled below 30°C within 2 hours to prevent re-aggregation of the casein network. In high-moisture spreads with moisture above 60%, trisodium citrate alone does not provide adequate emulsifying capacity; published data for these high-moisture configurations is limited, and pilot-scale validation is required before replacing phosphate emulsifying salts.
In beverage manufacturing, trisodium citrate TSC is metered into batch tanks at 0.05–0.30% w/w to buffer organic acid systems and complex trace metals. A citric acid/trisodium citrate buffer at pH 3.0–3.5 reduces sharp acid perception in lemon-lime and orange carbonates without shifting sugar-acid balance. In sports drinks containing sodium chloride and potassium citrate, the addition of trisodium citrate at 0.5–1.0 g/L contributes sodium for osmolality control without the chloride load associated with saline taste at equivalent sodium levels. The citrate ion also chelates Fe(III) and Cu(II) introduced from water mains, preventing metal-catalysed degradation of ascorbic acid and synthetic colours. This effect is measurable by accelerated shelf-life testing at 40°C/75% RH for 12 weeks, but the analytical response is matrix-specific; published data for a given flavour system is limited. A process boundary is pH elevation: sodium citrate reduces the undissociated fraction of benzoic acid and sorbic acid, and formulators must maintain pH below 4.2 for preservative efficacy in still beverages. Citrate levels are declared as E 331, and JECFA/FCC monographs define assay and loss on drying limits for the dihydrate.
Closed-loop clean-in-place (CIP) systems removing milkstone, beerstone, and mineral scale from plate heat exchangers and storage tanks require builders that remain effective in water hardness above 200 mg/L CaCO₃. Trisodium citrate TSC is incorporated into alkaline detergents at 0.5–2.0% w/v of use solution to sequester calcium and magnesium, reduce scale precipitation on spray balls, and improve rinsing after caustic circulation. In dairy CIP trains, the chelating action of citrate accelerates the removal of calcium phosphate–casein complexes from heated stainless steel surfaces at 65–75°C; the citrate-calcium stability constant is sufficient to prevent re-deposition during the intermediate rinse but allows biodegradation under waste-treatment conditions. Aerobic ready biodegradability is assessed by OECD 301B, and citrate-based builders typically exceed 70% mineralization within 28 days. A limitation appears at ambient temperatures: spent neutral cleaning baths containing citrate can support microbial growth if held for more than 24 hours, so discharge or alkaline pH maintenance is required. Sodium citrate is listed in FDA 21 CFR 184.1751 as GRAS for food use, which supports its selection in cleaning formulations where incidental food contact is possible after rinsing.
For oral pharmaceutical solutions and effervescent granules, trisodium citrate TSC is selected as a buffering agent and alkalizing salt. In effervescent formulations, a combination of sodium bicarbonate, citric acid, and trisodium citrate provides controlled carbon dioxide release; the citrate component shifts the final solution pH to 6.0–7.0 and masks the saline taste of sodium bicarbonate. Granulation with a top-spray fluid bed at inlet air temperature 45–60°C requires moisture control below 0.5% residual water to prevent premature acid-base reaction. For urinary alkalinization, citrate salts raise urine pH into the range 6.5–7.0, but sodium citrate increases sodium intake; patients on sodium-restricted diets require potassium citrate as an alternative. USP and Ph. Eur. monographs specify assay content, water of crystallization, and pyrogen limits for parenteral-grade material. In injectable anticoagulant solutions, endotoxin and particulate testing are mandatory because citrate solutions support microbial growth at neutral pH if held at room temperature for extended periods.
In cementitious systems, citrate ions are dosed at 0.05–0.50% by weight of cement to retard alite hydration and extend initial set. The citrate anion adsorbs onto calcium hydroxide and C-S-H nuclei, chelating calcium and blocking nucleation. In Portland cement paste with a water-to-cement ratio of 0.40–0.50, the delay measured by ASTM C191 can range from 30 minutes to several hours depending on C₃A content and sulfate availability. Gypsum-based plasters show a similar retardation mechanism, with trisodium citrate addition of 0.05–0.15% by weight of stucco extending Vicat set time under EN 13279 testing conditions. Overdose above 0.60% risks excessive retardation and reduced early compressive strength at 24 hours. Published data for specific regional cement types is limited, and job-site trials are required because the interaction between citrate and polycarboxylate ether superplasticizers can alter slump retention.
Competitive Sodium Citrate TSC prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8618136850665
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!
Sodium Citrate TSC, chemically trisodium citrate dihydrate (Na3C6H5O7·2H2O; CAS 6132-04-3), is a white crystalline or granular material supplied in food, pharmaceutical, and industrial grades. The anhydrous form carries CAS 68-04-2; the dihydrate is the more common commercial species because its crystal water content stabilizes handling and reduces hygroscopicity compared with the anhydrous material. In food additive listings, the substance is designated E331(iii) and is cleared as GRAS under FDA 21 CFR 184.1751. Commercial grade designations include fine powder, granular material in the 30–100 mesh range, and coarse granular material; exact particle size limits are supplier-specific and are confirmed on a certificate of analysis. The theoretical water content of the dihydrate is 12.25% w/w. A 5% w/v aqueous solution at 25 °C exhibits a pH from 7.5 to 9.0, reflecting the fully neutralized sodium citrate species. The product is used where reversible calcium sequestration, sodium contribution, and mild alkaline buffering are required in the same formulation.
Compendial sodium citrate monographs include USP-NF, Ph. Eur., and FCC. Assay is expressed on the anhydrous basis because the dihydrate contains crystal water and residual moisture. Controlling water content is necessary to prevent sodium content drift when dosage is calculated by weight. Grade selection is driven by microbial and endotoxin limits for parenteral use, lead and arsenic limits for food, and particle size for bulk dry blending. Table 1 summarizes representative acceptance parameters used in commercial certificates of analysis.
| Parameter | Unit | Range or limit | Monograph |
|---|---|---|---|
| Appearance | — | White or colorless crystals/powder | USP-NF, Ph. Eur. |
| Assay, anhydrous basis | % w/w | 99.0–101.0 | USP-NF, FCC |
| Water | % w/w | 11.0–13.0 | Ph. Eur., FCC |
| pH, 5% w/v solution, 25 °C | pH units | 7.5–9.0 | Ph. Eur. |
| Lead | mg/kg | ≤1 | USP-NF, FCC |
| Arsenic | mg/kg | ≤1 | USP-NF, FCC |
| Chloride | mg/kg | ≤50 | Ph. Eur. |
| Sulfate | mg/kg | ≤150 | Ph. Eur. |
| Oxalate | mg/kg | ≤300 | USP-NF, Ph. Eur. |
| Bacterial endotoxin, parenteral grade | EU/g | Supplier-defined | Manufacturer COA |
Because TSC is hygroscopic above relative humidity 60%, handling and storage require closed containers at 15–25 °C. Batch-to-batch moisture variation within the 11.0–13.0% w/w range changes as-is weight; mass-based dosing should be converted to anhydrous basis when high-precision formulations are specified.
In clinical collection systems, a buffered 0.109 M trisodium citrate solution is used at a whole-blood-to-anticoagulant ratio of 9:1 for coagulation testing. The citrate anion chelates ionized calcium reversibly, preventing thrombin generation until recalcification is performed in the laboratory. Underfilled tubes below 90% of nominal draw volume produce relative citrate excess and can prolong prothrombin time and activated partial thromboplastin time; CLSI H21-A5 establishes handling and rejection criteria for these specimens. A higher 0.129 M citrate solution is used for erythrocyte sedimentation rate at a 4:1 blood-to-anticoagulant ratio. Evaporative water loss from liquid citrate tubes concentrates the chelator and shifts the effective ratio; ISO 6710:2017 sets fill-volume tolerance and closure specifications for evacuated blood collection tubes. Unlike EDTA anticoagulants, citrate does not irreversibly inhibit calcium-dependent testing, but it is unsuitable for samples that require stable cell morphology beyond the immediate testing window.
During processed cheese manufacture, TSC exchanges sodium for calcium at casein phosphate nanoclusters; the citrate anion binds calcium and releases casein for hydration and fat emulsification. Published formulation ranges in processed cheese fall commonly between 1.0% and 3.0% w/w of the final product. TSC is rarely used as the sole emulsifying salt at the upper limit because pH can shift above the target window of 5.6–6.0 and alter melt profile. It is typically preblended with sodium hexametaphosphate or sodium phosphate to balance calcium sequestration and pH buffering. In lay-down cookers operating at 80–85 °C with indirect steam and high-shear agitation, the dry blend is prehydrated in process water before addition. Direct addition of undissolved TSC to the hot cheese mass can create localized calcium-chelation gradients, producing gel pockets and surface oiling during cooling. The hydration requirement is more pronounced with granular TSC than with fine powder because dissolution at the cooker surface is slower. Stoichiometrically, 1.000 g of TSC dihydrate provides 3.40 mmol of citrate; based on a 1:1 calcium–citrate complex, this can chelate approximately 136 mg of calcium. The actual sequestering capacity in a cheese matrix is lower because pH, phosphate competition, and casein-bound calcium reduce the effective ligand activity. Processing records from production-scale lay-down cookers indicate that TSC levels above 3.0% w/w can increase melt length and reduce slice firmness when the calcium-to-citrate molar balance is not compensated by phosphate.
When phosphate-free chelation is specified in detergent or descaling operations, TSC is added to bind calcium and magnesium and to inhibit scale formation in hard water. A concentration of 0.5–2.0% w/v is used in single-pass clean-in-place rinses at 60–80 °C; lower temperatures reduce dissolution kinetics and chelation rate. TSC differs from EDTA and NTA because the citrate ligand is readily biodegradable under aerobic wastewater conditions, while its chelating strength for transition metals such as iron and copper is lower than that of EDTA at neutral pH. Alkaline detergent builders combine TSC with sodium carbonate or sodium hydroxide to maintain hardness sequestration at pH 9.5–11.0; above pH 11.0, hydroxide competition can depress calcium binding. Published data for specific clean-in-place configurations is limited; citrate-based builders are recognized alternatives when phosphorus discharge is restricted. The product is not recommended for hypochlorite-containing cleaning regimes because citrate can consume free chlorine and release carbon dioxide.
In beverage concentrates, TSC is introduced as a sodium citrate buffer to regulate perceived acidity and to complex trace metals that would otherwise catalyze oxidation or haze. Use levels are typically below 0.5% w/w in ready-to-drink formulations; solubility in high-sugar concentrates must be verified because high dextrose equivalent syrups reduce water activity and can slow dissolution of granular TSC. It differs from citric acid in that TSC does not significantly depress pH; this permits acid taste correction without requiring a separate neutralization step.
For pharmacopeial alkalinization and buffering, TSC is combined with citric acid in oral solutions to form a citrate buffer that shifts urinary pH and supplies bicarbonate equivalents after hepatic metabolism. Each gram of trisodium citrate dihydrate supplies 3 mEq sodium per millimole or approximately 234 mg sodium per gram; this sodium burden is an operational boundary for sodium-restricted patients. In injection and apheresis settings, TSC is used in anticoagulant citrate dextrose solutions such as ACD-A, which contains 22.0 g/L trisodium citrate dihydrate, 8.0 g/L citric acid monohydrate, and 24.5 g/L dextrose monohydrate. Pharmacopeial monographs for sodium citrate injection require parenteral-grade water, endotoxin control, and particulate matter testing. TSC is incompatible with calcium-containing intravenous solutions unless chelation is intended; simultaneous administration of concentrated calcium salts with citrate anticoagulants can precipitate calcium citrate in line sets when flow rates and mixing are not controlled.
Across the citrate salt series, TSC occupies the fully neutralized sodium end. It carries 3 sodium ions per citrate residue, while monosodium citrate carries 1 and disodium citrate carries 2. This stoichiometry defines the pH difference: monosodium citrate is acidic, disodium citrate is intermediate, and TSC is mildly alkaline in solution. When sodium restriction is required, potassium citrate is selected because it supplies potassium rather than sodium; when sodium contribution is acceptable or required, as in processed cheese and blood collection tubes, TSC is the standard citrate salt. Compared with citric acid, TSC adds alkalinity without a sharp pH drop at equivalent citrate molarity. The dihydrate-to-anhydrous molecular weight ratio is 1.139, so 1.000 g of TSC dihydrate contains 0.878 g of anhydrous trisodium citrate.
| Compound | Representative solution pH | Cation per citrate | Typical role |
|---|---|---|---|
| Citric acid | 1.8–2.2 for 1% w/v | None | Acidulant |
| Monosodium citrate | 3.4–3.8 for 1% w/v | 1 Na⁺ | Buffering acidulant |
| Disodium citrate | 4.8–5.2 for 1% w/v | 2 Na⁺ | Intermediate buffer |
| Trisodium citrate dihydrate | 7.5–9.0 for 5% w/v | 3 Na⁺ | Anticoagulant, emulsifying salt, buffering |
| Potassium citrate | 7.5–9.0 for 5% w/v | 3 K⁺ | Sodium-free alkalinizer |
In dry blending and storage operations, TSC dihydrate should be kept in closed containers at 15–25 °C and protected from relative humidity above 60%; prolonged exposure to humid air causes caking and surface dissolution. The product is incompatible with strong acids, which decompose citrate and release carbon dioxide, and with strong oxidizers used in chlorinated cleaning regimes. In powder blends containing citric acid, a compatibility study is required because localized moisture can initiate low-level gas evolution and clumping. Processed cheese and beverage lines require dissolution or prehydration at controlled temperature; undissolved granules can create blockages in plate heat exchangers at low line velocities. When switching between TSC dihydrate and anhydrous sodium citrate, the mass correction factor 1.139 must be applied to maintain equivalent citrate and sodium delivery.