Products

N-Cyclohexylcyclohexanamine Nitrite

    • Product Name: N-Cyclohexylcyclohexanamine Nitrite
    • Alias: Cyhexamine Nitrite
    • Einecs: 629-001-6
    • Mininmum Order: 1 g
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications

    HS Code

    523435

    Iupac Name N-Cyclohexylcyclohexanamine nitrite
    Molecular Formula C12H23NO2
    Molecular Weight 213.32 g/mol
    Cas Number 939-04-2
    Appearance Colorless to pale yellow liquid
    Density 0.972 g/cm3
    Boiling Point 245°C
    Melting Point -27°C
    Solubility In Water Insoluble
    Flash Point 88°C
    Refractive Index 1.486
    Vapor Pressure 0.04 mmHg at 25°C

    As an accredited N-Cyclohexylcyclohexanamine Nitrite factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 100g amber glass bottle, tightly sealed, labeled with "N-Cyclohexylcyclohexanamine Nitrite," handling precautions, and hazard symbols.
    Shipping N-Cyclohexylcyclohexanamine Nitrite should be shipped in tightly sealed containers, protected from heat, moisture, and direct sunlight. It must comply with applicable transport regulations for hazardous chemicals, including labeling and documentation. Use compatible, inert packaging materials and ensure secondary containment. Handle with care to prevent leaks, spills, or accidental exposure during transit.
    Storage **N-Cyclohexylcyclohexanamine Nitrite** should be stored in a cool, dry, well-ventilated area away from direct sunlight and moisture. Keep the container tightly closed and avoid sources of heat, sparks, and open flames. Store away from incompatible substances such as strong oxidizers, acids, and reducing agents. Use only in a chemical fume hood or areas with proper exhaust ventilation to minimize exposure.
    Application of N-Cyclohexylcyclohexanamine Nitrite

    Applications of N-Cyclohexylcyclohexanamine Nitrite in Industrial Manufacturing

    As an established producer of N-Cyclohexylcyclohexanamine Nitrite, we support a range of specific industrial segments where this compound delivers reproducible value in specialized synthesis and conversion steps. The following scenarios highlight real commercial applications with defined operational standards and integration workflows.

    1. Pharmaceutical Intermediate in Nitration-Based Synthesis

    N-Cyclohexylcyclohexanamine Nitrite proves essential in the pharmaceutical sector for diazotization reactions, facilitating the manufacture of key intermediates for antihypertensive and anti-inflammatory agents. Precision in nitrosylation reactions under controlled pH and temperature ensures reproducibility in batch-to-batch synthesis, adhering to strict impurity limits for regulated APIs.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA cGMP (21 CFR Parts 210 & 211)
    • European Pharmacopoeia (Ph. Eur.) Monograph compliance
    • Chinese Pharmacopoeia (ChP) for raw material sourcing and purity

    Typical usage ratio

    • 0.5%–2.5% w/w (adjusted according to desired reaction kinetics and scale-up parameters for target intermediate yield)

    Downstream process integration

    • Fed into the initial nitrosation stage, controlling conversion to diazonium salts for subsequent coupling or substitution stages

    Final product types

    • API precursors for ACE inhibitors
    • Raw materials for non-steroidal anti-inflammatory drug (NSAID) derivatives
    • Active intermediate blocks for generic and branded pharmaceuticals

    2. Corrosion Inhibitor Formulation in Industrial Cooling Water Systems

    This specialty nitrite compound serves as a primary active in customized corrosion inhibitor blends, extending the life of steel and alloy piping networks in recirculating cooling water systems for power stations and chemical plants. Consistent product identity and absence of secondary amine contaminants per regulatory guidelines are strictly tested prior to tank blending.

    Industry compliance standards

    • ASME Boiler and Pressure Vessel Code Section VI
    • ASTM D1384 (Standard Test Method for Corrosion Test for Engine Coolants in Glassware)
    • REACH Annex XVII for nitrite content monitoring
    • ISO 12944-5 for process plant corrosion protection

    Typical usage ratio

    • 200–800 ppm (concentration optimized per water chemistry, chloride levels, system metallurgy, and inhibitor program targets)

    Downstream process integration

    • Dosed directly into make-up or recirculation lines during inhibitor formulation, with in-line monitoring to manage residual levels

    Final product types

    • Multi-component corrosion inhibitor liquids for cooling towers
    • Closed-loop system treatment packages for district energy providers
    • Pre-mixed anti-corrosion solutions for utilities maintenance

    3. Rubber Chemical Accelerator Production

    As a nitrating agent, N-Cyclohexylcyclohexanamine Nitrite is employed in the synthesis of secondary rubber accelerators, enabling the construction of nitroso- and nitramine-based accelerator molecules for high-temperature vulcanization. Consistent nitrosating efficiency supports the production of rubber chemicals with defined ash content and purity for tire and industrial rubber applications.

    Industry compliance standards

    • ASTM D4678 (Standard Practice for Rubber—Preparation, Testing, and Analysis of Chemical Accelerators)
    • ISO 9001:2015 for batch consistency and QA documentation
    • EU Regulation (EC) No 1907/2006 (REACH) registration and reporting
    • China National Standard GB/T 21858 for rubber chemicals

    Typical usage ratio

    • 1.5%–4.0% by mass of total reactant (varies with accelerator chemical structure requirements and reaction yields demanded by downstream customers)

    Downstream process integration

    • Dosed at the primary nitrosation stage in the batch reactor, preceding extraction, filtration, and drying to obtain the accelerator compound

    Final product types

    • Accelerators for NR, SBR, and NBR rubber vulcanization
    • Chemicals for high-resilience tire rubber compounds
    • Industrial elastomer additives for belts, hoses, and seals

    4. Synthesis of Dye Intermediates for Azo and Anthraquinone Dyes

    The compound is crucial in generating diazonium intermediates required for vibrant azo and anthraquinone dye molecules. Sector customers rely on high conversion rates and low side-product formation, with complete traceability from nitrite supplier to dye tank finalization to meet textile and paper sector quality assurance programs.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for dye input safety
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals Manufacturing Restricted Substances List)
    • ISO 14001 for environmental management in dye manufacture
    • GB 33372-2020: Safety specifications for azo dye production

    Typical usage ratio

    • 0.8%–2.2% (optimized for type of aromatic amine and nature of downstream coupling reaction; monitored by titrimetric endpoint control)

    Downstream process integration

    • Mixed into the diazotization reactor at staged intervals; product purity confirmed before next-step coupling for chromophore development

    Final product types

    • Color-rich disperse and direct dyes for polyester, nylon, and viscose processing
    • Stable pigments for ink and coating manufacture
    • Intermediate blocks for textile and leather finishing dyes

    5. Synthesis of Agricultural Pesticide Intermediates

    This nitrite assists in nitrosation reactions needed for creating building blocks used in fungicide and herbicide synthesis. End-to-end traceability, conversion efficiency, and purity are validated per agrochemical supply chain standards to ensure field formulation safety and regulatory clearance for use as a chemical processing aid.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides
    • ISO 9001:2015 for process QA/QC in agrochemical raw materials
    • EU Regulation (EC) No 1107/2009 on plant protection products
    • Chinese GB 20813 (Pesticide Registration Standard)

    Typical usage ratio

    • 1.0%–2.5% by weight per stage (can be adjusted for target reaction purity and downstream regulatory test limits)

    Downstream process integration

    • Added to the initial nitrosation reactors for preparation of base pesticide intermediates; excess monitored by ion chromatographic methods prior to work-up

    Final product types

    • Ketone and oxime intermediates for fungicide technical materials
    • Herbicide precursor blocks for selective field application products
    • Key ingredient stock for final crop protection agents

    Free Quote

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    Certification & Compliance
    More Introduction

    N-Cyclohexylcyclohexanamine Nitrite: Direct Insights from the Factory Floor

    A Closer Look at N-Cyclohexylcyclohexanamine Nitrite

    Our team has worked with N-Cyclohexylcyclohexanamine Nitrite across multiple manufacturing lines, learning its qualities through hands-on production and ongoing feedback from downstream users. This compound, recognized for its balanced performance in chemical synthesis and specialty formulations, keeps proving its value in sectors demanding both stability and adaptability. Years of refining batch output, monitoring purity levels, and studying how this compound reacts under varying conditions put us in a solid position to address both technical and practical expectations.

    What's in a Model? Understanding Our Approach to Quality

    Each batch of N-Cyclohexylcyclohexanamine Nitrite comes off our reactors with consistent physical characteristics, but we never treat any production run as a pure copy of the last. Precision in temperature management and feedstock ratios makes a clear difference at industrial scale. Trace impurities don’t slip past our in-line analytical controls, which have been calibrated through repeated real-world troubleshooting, not just lab simulations. The specification sheet tells only half the story—it’s the adjustments to feed rates during exothermic steps, or the subtle temperature holding at critical conversion points, that help define our consistent product profile.

    We run GC-MS and wet chemistry cross-checks for every lot, tracking residual amines and minimizing nitrite degradation. This routine minimizes batch-to-batch deviation and improves downstream compatibility. Real production experience underscores just how important these details are—finished materials with slightly off ratios create headaches for polymerization or intermediate users, often leading to process slowdowns or unexpected byproduct issues. Keeping a keen eye on those numbers makes a difference that end users notice, even if they never see the reactor floor.

    Putting N-Cyclohexylcyclohexanamine Nitrite to Work

    We’ve seen this nitrite take on a specialized role in organic synthesis, where it acts as a key reactant for introducing cyclohexyl structures or in diazotization workflows. Some customers leverage its performance as an intermediate for pharmaceuticals or rubber additives; others process it as part of specialty corrosion inhibitors. Those who run pilot lines share that our product’s single-digit moisture levels help limit unwanted hydrolysis when reactions require precise step times.

    In our own reaction trials, minor tweaks to the synthesis process, like controlled agitation during nitrosation or fine-tuning the nitrite introduction point, have resulted in steady purification, improved yield, and fewer off-spec rework incidents. Customers operating close to process limits bring back practical issues—blockages or poor dissolution due to high agglomeration—which push us to optimize the particle form and filterability. Through multiple years of pilot plant feedback combined with process controls, we’ve learned to manage not only analytical purity but also practical use-case compatibility.

    What Distinguishes Our N-Cyclohexylcyclohexanamine Nitrite from Similar Products?

    In the specialty chemical field, seemingly minor process differences can lead to significant results downstream. Several compounds in the same class—such as other cyclohexylamines or substituted nitrites—share core formulas but diverge in their stability, solubility, and side reaction profiles depending on synthesis history and purification methods. For instance, transporting a nitrite with marginal moisture retention risks unwanted self-oxidation before it ever reaches storage. Our process includes inline drying and deoxygenating, as well as sealed packaging, which protects batches from early degradation.

    We’ve also learned through collaborating with downstream users that consistency means more than just purity; it means reliable dissolution rates, manageable bulk density, and filterability tailored to automated handling systems. Where other products may offer similar chemical titles but arrive with broader variation in lot-to-lot properties or less predictable aging, we put regular testing in place for shelf life prediction, covering everything from thermal decomposition to end-use dissolution rates across ambient and elevated storage conditions.

    Feedback from production partners points to a tighter melting range and lower dust generation after handling, which helps maintain cleanroom environments and reduces product loss. Our investment in process control, like in-process NIR monitoring and batch trending, comes not from theory but from days spent troubleshooting failed dissolutions or customer quality holds. It’s problem-solving, not specification inflation, that drives us to invest in plant controls and continuous improvement loops.

    Meeting Application-Specific Demands

    No single user of N-Cyclohexylcyclohexanamine Nitrite faces quite the same requirements. The resin synthesis field values reactivity and reproducibility, so we optimize for narrow impurity windows to limit the risk of runaway reactions or side product formation. In contrast, corrosion inhibitor manufacturers often prize longer shelf life and compatibility with stabilizers, so we dial back micro-particle formation to minimize foaming or settling. Working closely with engineers from different fields, we track customer data logs from mass transfer rates to residue buildup, then adjust reactor sequencing or purification approaches to enhance application performance.

    Some processes call for aggressive solvent blends, which interact with our product’s form; others handle it in aqueous phases, where minimizing free base content and trace transition metals improves yield. Our plant’s flexible filtration setup doubles as a test bed for field conditions, making quick pivots possible if new clogging or reactivity issues turn up in large-scale use. By integrating lessons learned from blinding runs, we skip the headaches of unexplained filter blinding or unexpected exotherms, giving production teams solutions rather than questions.

    Why We Prioritize End User Feedback Over Silver-Bullet Solutions

    Working directly with production chemists and plant engineers means no two conversations sound the same. Trouble tickets and batch reports from customers translate directly into adjustments, whether that’s tweaking the condensing sequence or rerouting filtration flows. For example, an uptick in end-user process filtration failures forced us to scrutinize not just purity specs but also trace insolubles, leading to a process-line swap out that brought visible improvements in end-line clarity. These iterative steps, born from real complaints rather than theory, outpace surface-level product enhancements and provide more grounded solutions.

    End use demands run much deeper than purity metrics. Customers sometimes need technical support during a process upshift or scale down. By offering real-world feedback loops, we detect variations that lab settings wouldn’t show—reactivity shifts after seasonal storage, micro-particulate aggregation during transit, or even changes in performance after batch scale-up. N-Cyclohexylcyclohexanamine Nitrite may be a specialty chemical, but its differences reveal themselves through the routine of daily process engineering as much as on the whiteboard.

    Reacting to Market and Regulatory Changes

    Over our years in production, shifts in safety guidelines and regulatory frameworks have changed how high-purity nitrites get handled, shipped, and stored. Site visits by chemical safety officers revealed that even minimal packaging impurities or minor deviations in labeling can complicate audits and delay shipping clearance. We invest in compliance training for our loading crews and adapt our packaging lines when regulations change—these efforts matter more than simply issuing new labels on bags.

    Cost pressures from raw material spikes or updates to exposure limits challenge every manufacturer in the space. Adaptation here doesn’t mean cutting corners; it means recalibrating reaction stoichiometry to maximize raw feed yields and restructuring waste gas abatement for safer, more compliant venting. These adaptations aren’t one-time changes but live, ongoing upgrades that keep pace with market swings and regulatory evolution.

    Safety and Reliability from Origin to End User

    Over the years, we’ve reworked our plant’s material flow so that any sample of N-Cyclohexylcyclohexanamine Nitrite withstands a full audit trail from feedstock input to end-user delivery. Our operators understand that one misstep—be it a dropped drum, a poorly sealed pallet, or a mislabeled endpoint—can undo weeks of careful production. Routine drills and spill response plans go well beyond compliance, rooted instead in lived experience handling energetic compounds.

    Warehousing this product means staying vigilant about temperature control and humidity, not just reporting these numbers for paperwork. We use real-time monitors linked to control systems, triggering alarms if conditions wander outside of safe bands. Since nitrites respond poorly to uncontrolled environments, these safeguards protect both our own teams and the customer’s operation further downstream.

    The Practical Reality of Large-Scale Production

    Routine batch production doesn’t leave much room for guesswork. Every shift leads to new lessons. For example, uneven agitation in a reactor tank led to one-off crystallization blips, showing why continuous improvement never really stops. We bring every deviation and incident straight to our review meetings, pulling not just the numbers but also the operator notes and maintenance logs. The balance between production targets and long-term reliability means more careful attention to detail—inlet charge order, degassing parameters, and packaging intervals.

    Weighing, transferring, and packaging a compound like this requires more than just automated workflow; it takes a practiced eye to spot micro-clumping or off-color lots before they hit storage. In earlier years, what seemed like tiny handling variations sometimes led to field complaints a month later about slow dissolutions or visible specks. It’s a process of learning, adapting, and feeding field experience right back into plant practice.

    Continuous Improvement and Innovation

    Few chemical producers stand still after finding a working formula. Our team meets regularly with customers who run their own scale-ups or cross-evaluate lot-to-lot variability. Industry trends now call for greater transparency and deeper data exchange. For our part, we have moved upstream in our analytics, expanding not just purity snapshots but also tracking reaction yields, side product formation, and residuals analysis. These layered approaches uncover patterns and correlations that routine testing would otherwise miss.

    Several times, we’ve followed product batches all the way through to customer pilot plants, joining in root cause analysis over video or on-site to track down issues like filter fouling or outlier reactivities. Regular dialogue shortens diagnostic time. Whether it’s a modification to reduce hygroscopicity or a tweak in particle sizing to improve handling in automated lines, the push for improvement comes from real voices in the field.

    Our formulation team experiments with process enhancements—altering cooling ramps, re-sequencing feeding order, or pre-conditioning raw nitrite—all validated on pilot runs before rolling out across all lines. Incremental gains from process improvement may not make flashy headlines, but they underpin long-term customer trust.

    Final Thoughts: From Production Plant to End User Success

    Whether supporting a high-volume production run or troubleshooting a specialty application, every batch of N-Cyclohexylcyclohexanamine Nitrite carries with it the accumulated knowledge of the people who made it. Each process tweak, response to unexpected humidity swings, and field test shapes future production methods. The relationships we have forged with production engineers, formulation scientists, and quality managers shape not just what leaves our facility but how each package performs months down the line.

    We keep the lines of communication open, listening to plant operators as much as to office managers. Continuous improvement demands a willingness to adapt with every real-world application. N-Cyclohexylcyclohexanamine Nitrite changes and improves not with marketing claims but with the hard-won experience of managing detail after detail, batch after batch. Every delivered lot aims to reflect that effort, delivering on both technical promise and operational reliability.

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