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Arachidic Acid Ethyl Ester

    • Product Name Arachidic Acid Ethyl Ester
    • Alias Ethyl arachidate
    • Einecs 204-806-7
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    603728

    Chemical Name Arachidic Acid Ethyl Ester
    Cas Number 112-85-6
    Molecular Formula C22H44O2
    Molar Mass 340.59 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 384°C
    Melting Point 30-32°C
    Density 0.838 g/cm3 at 20°C
    Solubility In Water Insoluble
    Refractive Index 1.440 - 1.445 at 20°C

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

    Packing & Storage
    Packing Arachidic Acid Ethyl Ester, 100g, is packaged in a sealed amber glass bottle with a secure screw cap and safety labeling.
    Shipping Arachidic Acid Ethyl Ester is shipped in tightly sealed containers, protected from moisture, heat, and direct sunlight. It should be handled in accordance with standard chemical safety guidelines. Ensure proper labeling and documentation. During transit, avoid exposure to extreme temperatures and physical damage to maintain product integrity and stability.
    Storage Arachidic Acid Ethyl Ester should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from direct sunlight and sources of ignition. Keep it away from strong oxidizing agents. Store at room temperature, protected from moisture. Ensure proper labeling and safety measures to prevent accidental exposure or environmental contamination. Use appropriate personal protective equipment when handling.
    Application of Arachidic Acid Ethyl Ester

    Applications of Arachidic Acid Ethyl Ester in Industrial Manufacturing

    Arachidic Acid Ethyl Ester serves specialized functions in selected high-value chemical sectors. As a direct manufacturer, we supply this compound to support downstream process reliability, compliance, and targeted formulation development. The scenarios below detail precise usage and integration of this raw material across core industrial segments.

    1. High-Performance Lubricant Base Stock Formulation

    Manufacturers in the specialty lubricant industry utilize this ester for the formulation of hydraulic fluids and synthetic lubricants where thermal stability, limited volatility, and extended service intervals are required. Its long-chain structure contributes to viscosity control and oxidative resistance, especially for industrial gear oils and compressor lubricants. The raw material is introduced after initial oil blending, preceding additive incorporation. Compliance with sector-specific performance demands necessitates stringent raw material traceability and blending verification.

    Industry compliance standards

    • ASTM D445 (Viscosity of Transparent and Opaque Liquids)
    • ISO 6743-99 (Classification of Lubricants)
    • REACH Regulation (EC) No 1907/2006 (EU chemical safety registration)
    • API Base Oil Categories (American Petroleum Institute)

    Typical usage ratio

    • 2%–8% by weight in base oil matrices; dosage adjusted as per target viscosity index and temperature profile requirements.

    Downstream process integration

    • Incorporated post-base oil blending, before additive package addition; mixed under inert atmosphere at 60–95°C for optimal homogeneity.

    Final product types

    • Synthetic compressor oils
    • High-temperature chain lubricants
    • Industrial hydraulic fluids
    • Electric motor lubricants

    2. Cosmetic Emollient and Texture Modifier

    Cosmetic and personal care manufacturers use the ester in formulating skin creams, lotions, and cosmetic balms, benefiting from its spreading capability and low comedogenic potential. Material quality must align with pharmacopeial and cosmetic ingredient regulations for skin contact, while batch-specific analytical verification ensures purity. The ingredient is introduced during the oil phase of emulsions, allowing adjustable viscosity and sensorial properties by modifying ester concentration relative to the overall lipid matrix.

    Industry compliance standards

    • EU Cosmetics Regulation (EC) No 1223/2009
    • Cosmetic Ingredient Review (CIR) Safety Assessments
    • ISO 16128 (Natural and Organic Cosmetic Ingredients)
    • IFRA guidelines (where applicable for ingredient sourcing)

    Typical usage ratio

    • 1%–5% by weight in oil phase; the exact ratio depends on the end product's viscosity and absorption requirements.

    Downstream process integration

    • Added during heating of oil phase (65–80°C) before emulsification, so that uniform dispersion in the oil-based components ensures stable emulsion quality.

    Final product types

    • Facial moisturizers
    • Body lotions
    • Nourishing balms
    • Sunscreen bases

    3. Polymer Stabilizer and Internal Lubricant in Engineering Plastics

    Downstream polymer compounders apply this compound as an internal lubricant or slip agent in engineering-grade plastics. It improves mold flow, enhances demolding, and minimizes melt fracture during extrusion of polyolefins and engineering resins. Compliant use requires adherence to food-contact or RoHS restrictions for plastics intended for regulated applications. The raw material is typically dosed during masterbatch compounding or direct extrusion blending, with dosage controlled for mechanical property retention and finished article performance.

    Industry compliance standards

    • FDA 21 CFR 177.1520 (Olefin Polymers - for indirect food contact)
    • EU Reg. 10/2011 (Plastic Materials Intended to Contact Food)
    • RoHS Directive 2011/65/EU (Where used in electronics plastics)
    • ISO 9001:2015 (Documented QC for plastic compound manufacturing)

    Typical usage ratio

    • 0.1%–1.0% by weight in polymer matrix; adjusted to target required slip effect and mechanical retention.

    Downstream process integration

    • Blended into polymer melt during masterbatch or direct extrusion above 140°C; dispersion assisted by high shear during compounding.

    Final product types

    • Extruded PP and PE films
    • Injection-molded ABS and polycarbonate parts
    • Food contact rigid containers
    • Plastic electronic casings

    4. Analytical Reagent Manufacture for Chromatography

    Chemical suppliers for analytical labs use Arachidic Acid Ethyl Ester as a chromatographic reference standard and for preparing calibration solutions in the quantification of long-chain fatty acid esters. The requirement here is for high purity, defined isomer composition, and batch-specific certificates of analysis. Selection for use rests on method validation in line with international test method development. The ester is typically dissolved in HPLC-grade solvents to specified concentrations by the reagent manufacturer before end-user distribution.

    Industry compliance standards

    • ISO/IEC 17025 (Test and Calibration Laboratory Accreditation)
    • ACS Reagent Grade Specifications (where relevant)
    • USP General Chapter <621> Chromatography (when used in pharmaceutical testing)
    • IUPAC analytical standards for purity

    Typical usage ratio

    • Reference standard stock solutions prepared at 0.1–1 mg/mL in acetonitrile, methanol, or other chromatography solvents as specified by end use.

    Downstream process integration

    • Dissolved in HPLC/GC-grade solvent by reagent labs under ISO-class cleanroom conditions, then aliquoted into vials for distribution to analytical laboratories.

    Final product types

    • Chromatography calibration standards
    • Fatty ester standard mixes
    • Testing kits for pharmaceutical laboratories
    • Reference materials for environmental testing

    5. Synthesis Intermediate in Surfactant Production

    Arachidic Acid Ethyl Ester serves as a precursor in manufacturing specialty surfactants for industrial detergents and emulsifiers. Surfactant manufacturers apply this raw material in the transesterification reactions with polyols or ethoxylated alcohols to produce nonionic surfactants. Batch verification for residual ester and absence of low molecular weight impurities remains a key compliance criterion. The process sequence typically positions the ester as an initial reactant prior to catalyst addition and subsequent downstream purification.

    Industry compliance standards

    • REACH Registration (if exporting to the EU)
    • OECD Test Guidelines for Biodegradability Assessment
    • ISO 9001:2015 (Process quality management)
    • Surfactant and Detergent Quality Testing (ASTM D4007 as example for phase separation)

    Typical usage ratio

    • Variable: 1–5 molar equivalents based on stoichiometry of desired surfactant species; adjusted according to reactivity and chain length requirements.

    Downstream process integration

    • Introduced as a primary reactant; charged into the reaction vessel before catalyst and co-reactants, under temperature-controlled agitation (100–180°C depending on synthesis pathway).

    Final product types

    • Nonionic surfactants for industrial cleaning
    • Oil-in-water emulsifiers
    • Textile processing aids
    • Paper processing antistat additives
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    Certification & Compliance
    More Introduction

    Arachidic Acid Ethyl Ester: Exploring Its Value in Modern Applications

    Understanding Our Product: Practical Manufacturing Insight

    Producing Arachidic Acid Ethyl Ester under controlled conditions has taught us the importance of process consistency and material purity. In operation after operation, our focus lands on extracting the best yield from high-quality feedstocks, so what enters our reactors is always traceable and reliable. This level of attention goes beyond routine QC; it impacts the final product’s performance in every application that depends on a predictable ester profile.

    Our facilities run with dedicated lines for fatty acid esters. We start with purified arachidic acid, react it with high-grade ethanol, and bring the reaction to completion with careful temperature management. Vacuum distillation, filtration, and drying round out the process. Over time, we've learned that stable operation—free from thermal spikes—matters just as much as the raw inputs. Residual moisture and unreacted fatty acids can interfere with downstream uses, so we don’t compromise on thorough removal.

    What Sets Arachidic Acid Ethyl Ester Apart in the Market

    Our Arachidic Acid Ethyl Ester stands out for its high purity and narrow carbon profile, consistently meeting stringent analytical standards for esters of C20 fatty acid chains. We offer batches with purity levels above 98% GC, low acid values, and minimal color—attributes that come directly from decades of refining our extraction and purification strategies. Unlike methyl arachidate or other commercial esters, the ethyl version we manufacture shows better solubility in certain nonpolar blends, and users often tell us it performs reliably as either a base stock or a constituent in sensitive formulations.

    While some factories output esters using technical-grade materials, we insist on pharmaceutical- or food-grade sources whenever possible—not because the specifications demand it, but because the end results speak for themselves. A laboratory can spot the difference on a chromatogram, and an end user will see the benefits in finished goods with fewer impurities and better shelf life.

    Model and Specifications Shaped by Real-World Demands

    Our best-known model is produced for high-end industrial, cosmetic, and laboratory use. Each batch arrives with a detailed certificate, showing spectral data and test results covering GC analysis, acid value, saponification value, and water content. We pack in HDPE drums with tamper-proof liners for transport stability. Consistency across batches has been one of our strongest selling points: after years of feedback, we’ve tuned every step of our process to keep product parameters inside tight windows. That way, chemists can rely on repeatable outcomes whether they’re synthesizing surfactants, testing lubricity, or producing specialty polymers.

    We’ve noticed that users in coatings, plasticizers, and performance additives gravitate to our ethyl ester over shorter chain analogues. Flashpoint, pour point, and molecular weight all factor into processing choices, so our technical staff maintains full datasets for real-world reference. No marketing gloss—just the numbers you need for process setup and troubleshooting.

    Usage Stories: Why Manufacturers Choose Ethyl Esters Over Methyl Esters

    Customers often ask why they might pick Arachidic Acid Ethyl Ester rather than something more common like methyl arachidate or stearic esters. Much of the answer comes from our experience testing these alternatives side by side. The ethyl ester’s slightly higher molecular weight tweaks volatility and flow properties—an advantage where gradual evaporation or slow diffusion benefit performance. Paint formulators appreciate the longer-lasting wet edge. Synthetic lubricant makers see improved oxidation resistance, which we’ve confirmed with in-house stability studies. We see our ethyl ester fit best in applications where product shelf life and precise evaporation rates are critical.

    Another area where the ethyl compound excels is cosmetic bases. Olefins and free fatty acids can cause odor or incompatibility; our product’s low residuals help reduce these problems. This purity comes directly from tight controls during the esterification and finishing stages. In our work alongside cosmetics researchers and pilot manufacturers, we see reduced skin irritation and greater ease in meeting international product registration standards.

    Differences from Other Long-Chain Esters

    Actual performance separates Arachidic Acid Ethyl Ester from related compounds. Where methyl esters in the C18-C22 range work well in bulk lubricants, ethyl esters generally show higher resistance to hydrolysis and offer a finer balance of lubricity and surface activity. In certain applications—such as antistatic additives for films—these tweaks mean less migration over time and better final product consistency. If one compares against stearyl or behenyl esters, the chain length and polarity differences become more apparent. Subtle chemical shifts drive tangible changes in fluidity, spreading, and reactivity.

    Early in our production runs, we noticed some applications suffered from slight color development or off-spec odor in finished blends. A few adjustments in reaction time and feedstock selection quickly drove defect rates down. For technical users, color stability remains a selling point. We keep close records and can trace any shipment back to its precursor batches, giving customers peace of mind in regulated industries like personal care or specialty chemicals.

    Getting the Chemistry Right — Experience Behind the Process

    On the production floor, our chemists combine hands-on technique with a relentless attention to details. Feeding precise quantities, maintaining reaction temperatures within a narrow band, and running extended distillation steps have proven their worth over years of scale-up and process troubleshooting. Every vessel turn brings fresh insight—overcoming sticking points like incomplete esterification, variable yields, or trace impurities in recycled ethanol. By iterating process tweaks, we deliver robust material to developers who run multi-stage syntheses and demand unflagging batch comparability.

    We work with technical partners to develop new applications and stress-test our materials in a wide range of chemistries. Not all trials go as we hope at first; sometimes novel uses highlight an impurity or trace side reaction that never showed up in established uses. We step back, identify the root cause, and gradually improve the product based on that feedback loop. This hands-on approach brings raw honesty to our supply relationships. Customers know we deal openly with any hiccups and implement continuous upgrades.

    Applications We’ve Helped Advance

    Over years, our team has delivered Arachidic Acid Ethyl Ester for a variety of niche areas. In lubricants, our ester supports high-temperature stability with fewer breakdown byproducts—results that save operators from premature equipment fouling. In plastic compounding, the compound’s low polarity suits antistatic and lubricity roles without interfering with the base polymer properties. Clients in food packaging and medical device prototypes have praised the absence of detectable odor and trace contaminants.

    One specialty surfactant company came to us after recurring instability ruined their emulsifier batches. By switching to our highly pure ester, they saw a drastic drop in rejected lots and a jump in long-term stability. These successes don’t just prove our specifications on paper; they show what careful control, batch after batch, can do in the field. The close dialogue between our production chemists and customers shortens the distance between plant floor and end application, creating a reliable feedback loop that helps us keep raising the bar.

    Facing Industry Challenges: Regulatory Needs and Supply Security

    Changing regulatory climates add pressure on ester producers to deliver full transparency about process aids, byproducts, and trace solvent residues. This challenge suits our experience. Full batch documentation, audit trails, and recall readiness have become integral parts of our operation. Trust, in this line of work, builds from acknowledgment of risk and clear lines of communication with regulators and end users.

    Supply security matters for every downstream operation. The market for high-carbon fatty acid esters, including Arachidic Acid Ethyl Ester, faces occasional strain when agricultural feedstocks fluctuate. We keep broad supplier relationships to buffer these disruptions, evaluate alternate geographic sources, and maintain regular reserves. By investing in diversified sourcing and in-plant reserves, we help customers plan long-term supply with confidence, even in the face of raw material uncertainty.

    Quality, Traceability, Transparency: Our Ongoing Commitment

    Our operational experience emphasizes persistent improvement. After feedback from tech customers in Europe and Asia, we added more robust moisture controls to every drum packed for export. Further, we refined recordkeeping so that every barrel sold retains a complete analytical fingerprint for future reference. Batch records include every shipment, not because external standards enforce it, but because our own troubleshooting efforts rely on traceable detail.

    Few things slow a production line like an unexpected contaminant or drift in esterification degree. That’s why our team has built redundancies into not just manufacturing, but also the way we handle documentation and complaint management. Years in the industry have proved that transparency, not rigid secrecy, forges trust with the R&D chemists and sourcing professionals who rely on our materials day in and day out.

    Product Limitations and Realistic Solutions

    Like all specialty esters, Arachidic Acid Ethyl Ester has boundaries. It shows limited compatibility with highly polar solvents and degrades with strong acid or base. Honest communication about these limits saves both sides wasted time. By providing technical notes, offering small-scale evaluation samples, and working directly on blending studies, our staff helps end users optimize formulations and decide up front whether our ester aligns with their needs.

    Every so often, a customer’s process highlights an unexpected incompatibility or side reaction. Instead of brushing off the issue or blaming external factors, we bring the question back to the team. Sometimes, a tweak in reaction conditions or a post-treatment polish solves the problem. In tougher cases, we document the lessons learned and bake that information into our next round of pilot batches.

    The Road Ahead: Adapting Arachidic Acid Ethyl Ester to Evolving Demands

    Technical markets can shift quickly, and we see more requests for sustainable, traceable, and low-impact production methods. This drives our experiments with bio-based ethanol and green energy reactors. As these new approaches mature, production feedback and customer insight shape the next upgrades to our process lines. The demand for ever-cleaner esters never slows. Regulations tighten on process solvents, permitted contaminants, and labeling. We take an open approach: publishing safety details, collecting regulatory dossiers, and involving our chemical safety team in each change.

    Future users push us for better performance data—lower odor, higher purity, more detailed reactivity studies. We answer by building out our QC labs, recruiting technical staff, and staying in close dialogue with academic partners and industrial R&D labs. These investments ensure our product keeps evolving to meet new technical, regulatory, and supply realities. We see this cycle as necessary, not optional, to upkeep the standard our customers expect.

    Supporting Customer Success with Direct Experience

    We don’t treat Arachidic Acid Ethyl Ester as a mere commodity. Our production engineers back every drum with hands-on expertise and real project history. Clients in lubricants, coatings, and performance chemicals return to us because our ester delivers more predictable processing, fewer batch failures, and direct access to troubleshooting support. This relationship, built on shared technical ground, enables deeper collaboration, not just transactional selling.

    Feedback from long-term partners influences the details: tighter spec tolerances, easier packing formats, more responsive sampling, faster data turnaround in QC. Our plant staff and field technical experts spot process improvements through direct observation—sometimes catching issues before they become problems for end users. This creates a support system built on mutual benefit, not just transactional supply.

    Committed to Industry Advancement: Why Standards Matter

    We work closely with standards bodies, industry associations, and regulatory panels that shape the future of long-chain esters. That involvement brings an early warning of coming changes—be those new purity thresholds or green chemistry benchmarks. Our internal R&D team and testing group keep their skills current by participating in industry roundtables and technical committees, ensuring our Arachidic Acid Ethyl Ester keeps pace with the best science and manufacturing practices available.

    This knowledge doesn’t stay inside our plant walls. We publish technical notes, submit product samples for round-robin tests, and proactively share non-competitive findings with industry partners. By staying rooted in sound chemistry and honest communication, we both move the sector forward and keep our product line fully competitive.

    Conclusion: Why Experience Drives Better Chemical Production

    Years of hands-on manufacturing Arachidic Acid Ethyl Ester provide a depth of technical and logistical understanding. Whether adapting process conditions, qualifying supply chains, or supporting new regulation, our primary aim remains supplying a consistently high-quality material that stands up to scrutiny in any technical setting. Customers looking for predictable results, transparent documentation, and open support benefit directly from this operational attitude.

    We produce not just for immediate shipment, but for long-term customer confidence. Our Arachidic Acid Ethyl Ester reflects these values: clear material, controlled by rigorous testing, delivered with every detail known and traceable, ready to help customers innovate and resolve the real-world challenges their industries bring.