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1,3,5-Trimethylcyclohexane

    • Product Name 1,3,5-Trimethylcyclohexane
    • Alias 1,3,5-Trimethylhexahydrobenzene
    • Einecs 211-297-1
    • 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

    920346

    Chemical Name 1,3,5-Trimethylcyclohexane
    Molecular Formula C9H18
    Molecular Weight 126.24 g/mol
    Cas Number 638-68-6
    Appearance Colorless liquid
    Boiling Point 164-166 °C
    Melting Point -51 °C
    Density 0.798 g/cm³ (20 °C)
    Refractive Index 1.445 (20 °C)
    Flash Point 45 °C (closed cup)
    Solubility In Water Insoluble
    Odor Characteristic hydrocarbon
    Vapor Pressure 7 mmHg (25 °C)

    As an accredited 1,3,5-Trimethylcyclohexane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A clear, 500 mL glass bottle with a screw cap, labeled "1,3,5-Trimethylcyclohexane," including hazard warnings and handling instructions.
    Shipping **Shipping Description for 1,3,5-Trimethylcyclohexane:** 1,3,5-Trimethylcyclohexane should be shipped in tightly sealed containers, protected from heat, sparks, and open flames. It must be labeled as a combustible liquid. Transport in accordance with local, national, and international regulations. Ensure proper ventilation and avoid exposure to oxidizing agents. Store and handle with appropriate safety measures.
    Storage Store **1,3,5-Trimethylcyclohexane** in a tightly closed container in a cool, dry, and well-ventilated area away from sources of ignition, heat, and direct sunlight. Keep it separate from oxidizing agents and acids. Ensure storage area has appropriate spill containment and that the material is clearly labeled. Avoid prolonged exposure to air and moisture to prevent degradation.
    Application of 1,3,5-Trimethylcyclohexane

    Applications of 1,3,5-Trimethylcyclohexane in Industrial Manufacturing

    1,3,5-Trimethylcyclohexane serves as a specialized intermediate in several downstream industries. Our facility manufactures this material at scale for integration into carefully controlled synthesis environments. The following sections detail core application fields, outlining real compliance standards, calibrated usage ratios, technical process flow, and specific end products made by downstream industry partners.

    1. High-Purity Solvent Component in Electronic Grade Chemicals

    Electronic component manufacturers use our material to formulate high-purity solvents for semiconductor and display fabrication. These solvents support critical cleaning, photoresist processing, and surface conditioning steps, where requirements for metal ion content, non-volatile residue, and VOC emissions dictate selection. Strict control at the purification, blending, and QA stages aligns with tight customer specifications for chip and panel manufacture.

    Industry compliance standards

    • SEMI C93 (Specification for Electronic Grade Organic Chemicals)
    • JEITA (Japan Electronics and Information Technology Industries Association) solvent purity criteria
    • RoHS 2.0 (2011/65/EU + 2015/863) restricted substance limits
    • ISO 14644-1 (Cleanrooms and Associated Controlled Environments)

    Typical usage ratio

    • 5–30% by weight in cleaning or etching formulations, with percentage adjusted according to solvent blend and impurity tolerance of wafer line

    Downstream process integration

    • Blending into solvent mixes after primary distillation, prior to filtration/polishing pipelines; enters at the pre-mixing stage before inline purity monitoring and filling into cleanroom-grade packaging

    Final product types

    • Photoresist strippers
    • Semiconductor-grade wet process solvents
    • Lithography rinse solutions
    • LCD/LED cleaning agents

    2. Cycloaliphatic Intermediate for Performance Resin Synthesis

    Specialty resin manufacturers utilize our material as a cycloaliphatic core molecule, particularly in saturated polyester and polyurethane systems. The methylated cyclohexane ring ensures enhanced hydrolytic resistance, lowers UV degradation, and augments mechanical properties in engineered resins used for advanced composites, coatings, and electrical components. Formulators rely on our controlled isomer distribution to drive specific molecular weight and cross-link density.

    Industry compliance standards

    • ISO 9001:2015 (Quality Management)
    • REACH Annex XVII (Restrictions for monomers/precursors in resins)
    • UL 94 (Flammability performance for plastics/resins)
    • IEC 61249-2-21 (Halogen-free material requirement in pcbs/coatings)

    Typical usage ratio

    • 10–35% by molar feed in reactor charge for specialty polyester and polyurethane synthesis; exact proportion governed by targeted glass transition temperature and flexibility of the final resin

    Downstream process integration

    • Direct feed into polymerization reactor after pre-mixing with glycol or polyol components, entering during initial charging and monitored throughout chain extension and curing steps

    Final product types

    • UV-resistant powder coatings
    • Electrical insulation resins
    • Industrial adhesive resins
    • Glass fiber reinforced sheet molding compounds

    3. Chemical Intermediate for Agrochemical Active Ingredient Synthesis

    Major crop protection companies employ our product as a synthetic intermediate to access cycloaliphatic structures in certain herbicide and fungicide actives. Its defined methyl-substitution pattern facilitates efficient ring-opening, functionalization, and coupling chemistry, giving rise to target molecules with tailored volatility and metabolic stability. Our strict QC and trace impurity control help downstream processors meet food safety and environmental requirements.

    Industry compliance standards

    • FAO/WHO JMPS (Joint Meeting on Pesticide Specifications) for technical raw materials
    • EPA 40 CFR Part 180 (US Tolerances for Pesticide Chemicals Residues in Food)
    • GB 2763 (China Maximum Residue Limits for Pesticides in Food)
    • EU Regulation (EC) No 1107/2009 (Approval of active substances for plant protection products)

    Typical usage ratio

    • Varies from 8–20% as a molar feedstock in the initial conversion step of the active ingredient synthesis pathway, with slight adjustments per active type and yield goal

    Downstream process integration

    • Charged into the main synthesis vessel after solvent and base addition, typically as the first or second step in the route toward the finished active molecule

    Final product types

    • Cycloaliphatic-selective herbicides
    • Fungicidal actives with enhanced weatherability
    • Agrochemical intermediates requiring alkyl-substituted cyclohexane cores

    4. Volatile Organic Diluent in Paints & Coatings Formulations

    Coating producers incorporate our material as a specialty VOC diluent, offering precise evaporation rates, minimal odor profile, and low reactivity. It supports processing of high-solids and quick-drying paint lines, especially for automotive plastics, maintenance, and anti-corrosion systems. Its unique volatility profile and composition favor fast film formation while minimizing orange peel and solvent pop issues during curing.

    Industry compliance standards

    • US EPA 40 CFR Part 59 (National Volatile Organic Compound Emission Standards for Consumer and Commercial Products)
    • EU Directive 2004/42/EC (VOC in Paints, Varnishes and Vehicle Refinishing Products)
    • ISO 11890-2 (Determination of VOC content by gas chromatography)
    • ASTM D2369 (Standard Test for Volatile Content of Coatings)

    Typical usage ratio

    • 3–12% by weight in ready-to-use formulations; proportion is selected based on resin type and viscosity control, as well as target dry time

    Downstream process integration

    • Added in the letdown stage after resin dispersion, followed by mixing with pigment concentrates, and then passed through filtration into filling lines for can, drum, or cartridge packaging

    Final product types

    • Automotive bumper and trim coatings
    • Industrial corrosion-resistant primer paints
    • Fast-drying plastic and PVC coatings
    Free Quote

    Competitive 1,3,5-Trimethylcyclohexane prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1,3,5-Trimethylcyclohexane: Reliable Performance and Versatility from an Experienced Chemical Manufacturer

    Our Perspective on 1,3,5-Trimethylcyclohexane

    Time in the lab and on the production floor teaches what product consistency and purity really mean to downstream engineers and technicians. As manufacturers, we see the tangible difference a high-quality supply chain makes for specialty cycloalkanes, especially 1,3,5-Trimethylcyclohexane. We don’t approach this industry as outsiders who just move material around. Our process starts with in-house knowledge of catalytic hydrogenation and ring methylation, built over years of running reactors, refining conditions, and addressing safety. Real expertise emerges not from brochures, but from troubleshooting distillation columns on third shifts and interpreting new test results with our analytical teams.

    The model of 1,3,5-Trimethylcyclohexane we routinely produce comes as a clear liquid, offering stable handling at ambient temperatures. Typical orders draw from bulk tank storage so buyers know they are sourcing from a manufacturer with direct oversight. Specifications for our product have developed over years based on the practical needs of adhesive resin compounding, lubricant additive synthesis, and specialty solvent blending. Purity isn’t a marketing line—GC content exceeds 99% after fractionation and the control of trace aromatics is verified by our in-house labs every batch. Water and acid tests matter because downstream process lines can be unpredictable; purity certification forms a part of each shipment only after direct instrument confirmation.

    Understanding the Role and Value of 1,3,5-Trimethylcyclohexane in Real Applications

    Those walking through the aisles of a chemical plant, or hearing from solvent blenders downstream, know the specifics of why certain methylated cyclohexanes get chosen. Projects using 1,3,5-Trimethylcyclohexane tend to leverage its favorable volatility: evaporation rates remain moderate, so it fits well in high-boiling solvent applications or thermal transfer fluids. The three methyl groups give a balance—solubility for organics without the odor or reactivity found in aromatics. Our technical clients tell us this is a major reason formulators substitute it for toluene or xylene in cleaner formulations, offering comparable solvency but a lower toxicity profile and tighter flash point control.

    In electronics, especially printed circuit board resin carriers, builders look for solvents that avoid side reactions. Aromatics can create yellowing or crosslinking; straight-chain hydrocarbons often lack compatibility or show too much migration. 1,3,5-Trimethylcyclohexane tests clean and leaves almost no residue on evaporation. In recent years, new requirements for low-VOC paints have prompted R&D teams to look beyond old aliphatic diluents: our methylated ring structure keeps vapor pressure controlled, letting formulators maintain flow without high emissions. Some have shared positive results in improving gloss or film integrity when blending our cyclohexane derivative into production lines.

    Where Know-How Makes a Difference: Production, Consistency, and Compliance

    It’s easy for traders to talk about purity or consistency. As direct producers, our teams know the chemical process details underpinning each shipment. We select hydrogenation catalysts for selectivity, maintain column temperatures within narrow bands, and follow up with residual gas chromatography. Distributors sending test samples often do not control upstream production, leading to batch variation or unplanned contamination. Our teams address feedback immediately: for one customer in adhesives, sensitive to isomer content, we adjusted reflux conditions mid-batch to meet tighter specifications.

    Environmental and regulatory frameworks tighten every year. Occupational exposure limits for cycloalkanes have received more scrutiny, with certain regions now demanding batch-level documentation of VOC content and impurity profiles. Our in-house labs adhere to third-party validated methods. Material Safety Data Sheets for our 1,3,5-Trimethylcyclohexane pull directly from spectroscopic and chromatographic logs, giving customers and their auditors evidence that processes align with the latest compliance requirements. Our continuous feedback loops between manufacturing, QC, and customer service ensure documentation stays current as regulations evolve.

    Technical Comparison: 1,3,5-Trimethylcyclohexane vs Other Ring Compounds

    A lot is said about cycloalkane options. 1,2,4-Trimethylcyclohexane, for example, shares similar properties but differs in boiling point and steric hindrance, making it less suitable for heat-sensitive formulations. Cyclohexane without methyl substituents is less viscous but offers lower solvency for resins and can prove more volatile. Other methyl cyclohexane isomers—injected as mixtures in some supply chains—don’t match the purity standards set by careful fractionation. Our process ensures isolation of the 1,3,5 isomer, confirmed by NMR and infrared spectroscopy each run.

    For synthetic lubricants, 1,3,5-Trimethylcyclohexane stands out in cold flow trials. The symmetry around the ring introduces consistent viscosity modifiers and blends without foam formation problems. Where competing materials might introduce branching or linear impurities, our product’s ring structure elevates thermal resistance while avoiding gelation. These factors drive formulators to single-isomer sourcing, even at a higher input cost, for the gain in downstream process control.

    Practical Issues in Handling and Storage

    Direct manufacturing teaches the value of robust drum linings, vapor recovery protocols, and transfer line maintenance. As a liquid at room temperature, 1,3,5-Trimethylcyclohexane resists polymerization and does not necessitate inhibitor addition, though ambient storage should prevent leakage and avoid open flames. Our drums are nitrogen-purged following batch filling and valved to deter contamination, a practice shaped by seeing firsthand how easily trace water can change the stability of final products.

    End users come to us with real-world problems: blocked pump lines from solidifying impurities, filter fouling from off-spec product, or inconsistent reactivity in polymer production. By owning the production floor, we can support tight batch traceability and adapt shipments based on customer feedback about storage conditions in regions with fluctuating temperatures. High-purity batches reduce customer maintenance overhead, decrease unplanned shutdowns, and keep quality auditors satisfied.

    End-Use Innovation Through Collaboration

    Plants and labs using 1,3,5-Trimethylcyclohexane aren’t only looking for a technically sound product—they want process insights and troubleshooting support. We maintain relationships with coatings, adhesive, and lubricant developers who bring us application data, sometimes even failure cases. A recent project in high-solid UV-curable coatings saw us refining distillation parameters to reduce trace UV-active contaminants. In high-purity resin applications or in electronics, our chemists and clients jointly explore instrument trace reports, highlighting a collaborative approach not possible between buyers and simple traders.

    Our history as direct suppliers teaches us the value of process data sharing. Customers want to know condensation byproducts, not just headline purity. Those developing new formulations for electric vehicles or advanced packaging request volatility and extraction curves, especially as end-use certification regimes become stricter. Offering this technical transparency—a direct result of handling the chemistry ourselves—is what enables quick problem solving and continuous product evolution.

    Supporting Industry Demands for Clean Manufacturing

    Across main customer bases—paint and coatings, lubricants, fine chemicals—we have seen rising requests for lower emissions, better operator safety, and minimized hazardous byproducts. 1,3,5-Trimethylcyclohexane answers some of those calls: as a saturated hydrocarbon, it gives a route to effective solvency without the toxicity associated with aromatic rings. Our production process uses closed-system hydrogenation, reducing fugitive emissions and keeping exposure low. Spend enough time on a factory floor or dealing with environmental audits, and it’s clear why more end-users move away from traditional spiralled aromatics.

    Beyond emissions, product stewardship improves when chemical pathways are shorter and more controlled. Our plant’s integrated operation—the ability to bring in upstream methylcyclohexane raw material and refine on-site into finished 1,3,5-Trimethylcyclohexane—reduces multi-site risk. This control recurs in customer audits, where inspectors check process logs, employee training, and batch consistency over time. Effective stewardship translates to end-user confidence and stands behind every drum shipped under our name.

    Meeting Industry Shifts and Challenges

    Manufacturing never stands still. Recent volatility in raw material pricing, stricter safety standards, and a push for alternative solvents continue to shape the future of cycloalkanes like 1,3,5-Trimethylcyclohexane. As a manufacturer, we see the shifts up close: global changes in crude oil grades mean reviewing feedstock properties almost yearly. Our technical and procurement teams revisit hydrogenation profiles and impurity control schedules when inputs shift, so downstream users don’t encounter surprise spec changes.

    Years spent working with engineering and regulatory partners have convinced us of one lesson: agility counts as much as historical knowledge. When regulatory frameworks in Europe called for new impurity disclosures, our response involved time in both the lab and on the phone with customer QA teams, running comparison tests and updating documentation within weeks. The end result—sustained approval lists and uninterrupted supply—comes not from marketing, but from knowing every aspect of real-world process control.

    Building Lasting Partnerships Through Manufacturing Know-How

    Producing 1,3,5-Trimethylcyclohexane shapes not only how we approach chemistry, but also how we view the entire value chain. Customers benefit most from a technical partner who understands their needs beyond order numbers and shipment dates. Over years, we’ve helped resin makers refine cure rates and advised cleaners on reducing foam. As end-users develop next-generation adhesives or performance fluids, they look for small-batch flexibility—something our plant can handle through modular reactors and close operator involvement.

    Our engineers sit with buyers, discuss test results, and work through failure analysis—not to push product, but to achieve technical solutions that hold up across seasons and regulatory changes. It’s common for buyers returning after several project cycles to reference earlier conversations with our technical staff as the reason they stay. Product reliability matters, but solving problems together builds partnerships.

    Continuous Improvement: Quality, Traceability, and Feedback

    Every batch produced in our facility undergoes a feedback loop. Our QC team cross-checks past spectrums, runs FTIR and GC analyses, and shares reports with customer engineers on request. If a shipment even hints at odd test results—say, during a resin filtration trial—we invite customers into our process, examine possible root causes, and refine our production accordingly. Lessons learned translate into tighter process specs, changed raw material sources, or updated operator training—steps only real manufacturers can enact reliably.

    Traceability sits at the core of our production. Using direct batch logs, we link every reactor run to archived analytical records, so downstream customers can match quality certificates batch-to-batch. This connection between lab data and plant output saves time and gives assurance during regulatory reviews or troubleshooting trials.

    Why 1,3,5-Trimethylcyclohexane Remains a Trusted Choice in Evolving Industries

    Years spent in bulk chemistry show that only well-made products stand the test of time. For 1,3,5-Trimethylcyclohexane, a substance sometimes viewed as a niche solvent, continued demand springs from tangible benefits: a high degree of chemical stability, predictable performance in both batch and continuous operations, and reduced regulatory complexity for end-users. Our role as manufacturers brings practical accountability—no third-party sourcing to cloud provenance or slow problem resolution.

    The landscape for specialty cycloalkanes evolves quickly: regulatory bans, shifting safety profiles, industry consolidation. Staying responsive requires detailed product knowledge and real-time process control. In direct production, we keep eyes on every reactor dial and test flask, knowing that our customers—often engineers and scientists themselves—depend on that vigilance.

    Every shipment of 1,3,5-Trimethylcyclohexane leaving our plant represents more than a chemical—it’s years of process refinement, ongoing dialogue with end users, and proof that manufacturing knowledge makes all the difference in specialty chemicals.