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Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%]

    • Product Name Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%]
    • Alias Picric acid, wetted
    • Einecs 208-498-2
    • 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

    915322

    Chemical Name Ammonium 2,4,6-Trinitrophenoxide
    Synonyms Ammonium Picrate Monohydrate; Picric acid ammonium salt hydrate
    Molecular Formula C6H2N3O7.NH4
    Molar Mass 246.14 g/mol
    Cas Number 1314-89-0
    Appearance Yellow to orange solid (often damp/wet)
    Water Content ≥10%
    Solubility Soluble in water
    Storage Conditions Store at 2-8°C, away from heat and sources of ignition
    Explosive Hazard Explosive under certain conditions; sensitive to shock, heat, and friction

    As an accredited Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%] factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g white plastic bottle with red screw cap, labeled with hazard symbols and product details, includes safety instructions for water-dampened ammonium 2,4,6-trinitrophenoxide.
    Shipping Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%] must be shipped as a hazardous material under strict regulatory guidelines. It should be packed in UN-approved containers, kept wet to reduce explosive risk, and isolated from incompatible substances. Proper labeling, documentation, and transport by authorized carriers are required to ensure safety and compliance.
    Storage **Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%]** should be stored in a cool, dry, and well-ventilated area, away from heat sources, open flames, and direct sunlight. Keep in tightly closed containers, protected from physical damage. Separate from incompatible substances such as strong acids, reducing agents, and combustibles. Ensure water content is maintained to minimize explosion risk; avoid conditions that could cause drying.
    Application of Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%]

    Applications of Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%] in Industrial Manufacturing

    As the direct manufacturer of high-purity Ammonium 2,4,6-Trinitrophenoxide supplied at a defined water content ≥10%, we support specialized downstream sectors that depend on verified consistency and controlled energetic properties. Our product integrates into several mature industrial chains, where regulatory compliance, formulation precision, and process adaptability drive procurement decisions. The following sections illustrate key application scenarios where customers apply our material in production of advanced energetic compounds, with details reflecting realistic industrial standards, ratios, production stages, and resulting product types.

    1. Primary Explosives for Blasting Caps Production

    Top-tier detonator manufacturing plants rely on Ammonium 2,4,6-Trinitrophenoxide due to its sensitivity characteristics, making it a staple in primary explosive charges for organizational mining and seismic exploration. Engineers focus on powder compaction and uniformity within automated filling lines, leveraging the controlled moisture for safer handling in humidification chambers during formulation.

    Industry compliance standards

    • UN Recommendations on the Transport of Dangerous Goods (Orange Book, 23rd Edition)
    • U.S. ATF Federal Explosives Regulations and Laws (27 CFR Part 555)
    • EU Directive 2014/28/EU for Civil Explosives
    • ISO 9001:2015 Quality Management for Energetic Materials

    Typical usage ratio

    • Explosive content in the primer charge typically ranges from 35% to 60% by mass, depending on cap design, humidity, and initiation energy requirements.

    Downstream process integration

    • Material is introduced post-milling, directly metered into automated weighing and pellet pressing sections before closure of metal shell housing; moisture content managed using in-line driers after initial blending for final particle size optimization.

    Final product types

    • Commercial electric blasting caps for mining
    • Non-electric (shock tube) initiation systems
    • Seismic survey primers

    2. Energetic Ink Formulations for Reliability Testing

    Analytical laboratories and defense component manufacturers employ Ammonium 2,4,6-Trinitrophenoxide as the core oxidizer in specialty energetic ink formulations, supporting trace explosive residue sensors and testing strips. The high water content ensures safety during emulsification, limiting dust hazards in ink jet systems and gravure printing units during deposition onto test substrates or micro-electronic sensor arrays.

    Industry compliance standards

    • EN 60079-10-1/2 (ATEX) Guidelines for Explosive Atmospheres
    • IEC 62471 Safety of Photoluminescence Equipment used in Sensor Testing
    • ISO/IEC 17025 Laboratory Calibration and Testing Requirements
    • REACH Regulation (EC) No 1907/2006 on safe chemical handling

    Typical usage ratio

    • Active energetic ingredient forms 8–14% of total ink mass; adjusted down to 5% for high-sensitivity strip formats or up to 17% for thick film sensor platforms with controlled solvent evaporation.

    Downstream process integration

    • Ingredient dissolved or suspended in water-glycol vehicle; added during high-shear mixing just before filtration; passed through ultrasonic dispersers to achieve uniformity before loading into cartridge reservoirs or gravure troughs prior to printing or spraying onto carriers.

    Final product types

    • Explosive ink-based detection strips
    • Microfluidic sensor calibration films
    • Explosion trace test swabs

    3. Igniter Compositions for Pyrotechnic Delay Elements

    Licensed pyrotechnics assemblers use this ammonium salt as an oxidizing agent within delay train ignition compounds where predictable burn rates and minimal reaction byproducts are required, such as in military time fuses and circut interrupters. Controlled hydration reduces electrostatic ignition risk across process lines during slurry formation and extrusion through proprietary delay column molds.

    Industry compliance standards

    • U.S. MIL-STD-286C (Propellants and Explosives)
    • NFPA 495: Explosive Materials Code
    • EN 13763-15: Non-electric delay detonators
    • ISO 2230 for Handling of Hazardous Powders

    Typical usage ratio

    • Delay column igniter blends specify 25–40% by mass, adapted for particular granulation size and desired burn time across designs from 5 ms up to 500 ms.

    Downstream process integration

    • Oxidizer introduced to solvent base in vacuum jacketed mixers under temperature control, then combined with fuel and binders at slow agitation until slurry reaches specified viscosity; extruded into delay column tubes or compacted for pressed pellet insertions.

    Final product types

    • Pyrotechnic time delays for military fuzes
    • Circuit breaker interrupt pellets
    • Initiation elements for aerospace separation mechanisms

    4. Analytical Standards in Forensic Laboratories

    Certified forensic reference labs procure this compound as a reference material for method development and quality control in trace explosives identification, high-performance liquid chromatography (HPLC) calibration, and remediation studies. The consistent hydration level stabilizes the analyte during preparation of working standards and guarantees reproducibility under ISO-accredited testing protocols.

    Industry compliance standards

    • ISO/IEC 17025: General requirements for the competence of testing laboratories
    • ASTM E1618: Forensic Analysis of Explosives by Gas Chromatography-Mass Spectrometry
    • ENFSI Guidelines on Chemical Analysis of Explosives
    • OECD Good Laboratory Practice (GLP) Principles

    Typical usage ratio

    • Reference stock standard solutions: 1–10 mg/L (adjusted by solvent dilution for instrument calibration curve requirements, depending on LC, GC, or MS detection limits).

    Downstream process integration

    • Material directly weighed in microbalances within controlled atmosphere gloveboxes, dissolved in acetonitrile–water solution or buffer; aliquoted into volumetric flasks for creation of calibration standards prior to analytical runs or spiking into blank matrices for blind testing scenarios.

    Final product types

    • Traceable explosive calibration standards
    • Proficiency testing kits for analytical labs
    • Forensic contamination control blanks

    5. Lead-Free Initiator Formulations in Green Energetics Development

    Emerging specialty firms in the green energetics field incorporate Ammonium 2,4,6-Trinitrophenoxide as a high-performance alternative in the drive to replace toxic lead-based azides in initiator formulations, particularly for extreme low-temperature and humidity-controlled assembly lines. Hydrated form ensures safe integration during en masse blending, contributing to reduced emission profiles and worker exposure in line with evolving environmental regulations.

    Industry compliance standards

    • EU REACH Annex XVII: Restrictions on Lead and Lead Compounds
    • Directive 2011/65/EU (RoHS) for hazardous substances limits in electronic detonators
    • OSHA 1910.1200: Hazard Communication Standard
    • ISO 14001:2015 Environmental Management

    Typical usage ratio

    • Formulation levels vary from 18–33% by weight, set depending on whether single- or double-base matrix is utilized, with water content facilitating clean handling and dust suppression at higher dosages.

    Downstream process integration

    • Oxidizer introduced into rotary blenders with organic binders, lightly moistened to achieve homogeneous wet mass, pressed into capsule shells, and vacuum-dried under inert conditions to reach application-specific moisture tolerance levels before assembly in compliant assembly cells.

    Final product types

    • Lead-free electric initiator charges
    • Eco-friendly percussion caps for specialty pyrotechnics
    • Primer compounds for environmentally responsible ammunition
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    Competitive Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%] prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Ammonium 2,4,6-Trinitrophenoxide [Water Content ≥10%]: A Closer Look from the Manufacturer’s Bench

    Our Product, Our Process

    We’ve worked with Ammonium 2,4,6-Trinitrophenoxide in our own reactors and lab benches for decades. Our technicians don’t just handle batch cards — they check clarity, maintain tight control on water content, examine every drum before it leaves our filling lines. Over the years, we’ve learned there’s an enormous difference between approaching this compound on paper and living with its cycles and quirks day in and day out. Our model for this product, manufactured with a reliable water content of no less than 10%, stems from steady experimentation with stabilizing agents, batch testing, and a constant review of raw materials. Every shift, our plant crew meets to check the charts, not just for output, but for product character and quality.

    The Working Edge: Why Water Content Matters

    Water determines how this chemical behaves across different uses. Anyone who has tried to move a too-dry trinitrophenoxide knows the feeling of static, the unsettling sharpness at the surface — and, on the other end, excess water can interrupt sensitive steps further down the chain. Consistency isn’t achieved through documentation alone. It’s the result of staying on top of each factor in production, from grinding to filtration to the final pH. We keep the water content at or above 10%, and in doing so, we see the product flow more safely through our lines. This extra water content keeps dust down during transport and storage, making staging and blending less stressful for shop-floor staff. It remains manageable, especially during the summer months when ambient humidity battles for control in packing sheds and shipping warehouse corners.

    Some manufacturers stretch for leaner hydrates to save on shipping costs or reduce volume. Our experience has been that this invites far more headaches in handling and sorting. Products can clump unpredictably or move awkwardly out of drums. By keeping to at least 10% water, we've observed fewer incidents, fewer inconsistent batches at the user's facility, and, crucially, less risk for our own staff in day-to-day operations. Every pound that leaves our site matches months of bench data and safety assessments.

    Specifications Built on Real-World Metrics

    With this ammonium salt, model consistency runs through more than just calibration logs. We maintain a fixed point for key parameters. Particle size, pH profile, solubility, and color all stay within a range learned from packed lab records — we don’t chase a number on a spec sheet if real-world data says otherwise. If a customer struggled with coagulation at low moisture, our solution didn’t come from a sales team, it came from line management, who pointed out the impact on their sieving gear and their waste disposal volume. So we adapted, kept critical properties inside bands that actually work on the plant floor, not just inside a marketing presentation.

    Handling safety, performance in energetic synthesis, compatibility with other nitrated intermediates — these are concerns we hear directly and solve directly. We document variance, alert our buyers to lot-to-lot changes, and adjust drying cycles in real time. Every filling operator here knows that surprise clumping or drying is a signal to halt, not gloss over. Instead of the standard template, this approach grounds our specifications in workbench results and customer feedback, not just measured readings.

    Usage in Industry Settings

    Our ammonium 2,4,6-trinitrophenoxide finds work in industrial and technical formulations where energetic performance and controlled moisture are key. We support customers who need reliable input for chemical synthesis — particularly those operating in the energetics field. For years, we’ve seen formulations shift from single-use explosives to more controlled, purpose-driven compounds. The product’s behavior with ≥10% water aligns with requirements for safe intermediate storage and consistent release in chemical reactors.

    On the energy side, we see this compound paired with other oxidizers in initiator mixes, and every time we dial in for a new order, we coordinate directly with production engineers who run those lines. They share their struggles — caking, inconsistent ignition, bottlenecked material flow — and we respond by tweaking our process, not just the packaging. If a client experiences trouble with the blend due to offsetting water or density, our technical team compares their field data with our own batch records, often catching small details that would be missed by third-party handlers.

    Our product also gets used in labs scaling up to pilot runs, where the difference between a stable mixture and an unusable mess often comes down to water management. With ≥10% water, technicians report easier clean-up, less static, and reduced risk during material transfer. This might seem minor until you’ve watched fine energetic dust behave on a hot day, or cleaned up a shelf after poorly made low-hydrate batches arrived. We’ve been there, and every time we return to a modestly hydrated product it makes sense by the end of the month’s error logs.

    Production and Handling: Keeping Eyes on Details

    As a direct manufacturer, we see every stage. We prepare every vessel for cleaning, monitor every start-up—too many years of experience to treat this as routine. The chemistry behind ammonium 2,4,6-trinitrophenoxide may feel fixed, but real-life conditions always force reflection. A plant environment, with its heat, cold, and vibration, throws punches at every neat lab theory. By making careful adjustments to each batch—tightening humidity controls, balancing agitation rates—we aim for reliable product quality that delivers the expected performance in downstream use.

    We’ve learned that even small changes—a new delivery route, a different pump seal, or fresh filter mesh—can shift the finished product in subtle ways. The goal remains unchanged: Keep each drum leaving the facility safe, stable, and effective for its role. This philosophy roots itself in years of practical experience, not theoretical best-practices alone.

    Differences from Other Ammonium Trinitrophenoxides

    We see competitors and traders offer low-hydrate or even near-anhydrous alternatives, often promising higher assay or lighter shipping weights. Our experience tells a different story. A drier product, handled hastily, can drift into dangerous territory due to static charge and uncontrollable dusting. It also tends to compact during transit, which makes removal from containers a headache. There’s less margin for safety during handling and a greater risk of uncontrolled release.

    We also compare our product to versions manufactured by batch versus continuous process. Batch controls let us make targeted tweaks; in contrast, continuous lines sometimes create an illusion of uniformity while masking subtle shifts in composition. Our crews run routine checks on color, scent (sometimes the nose catches a problem before an instrument), and run small-batch filter tests to catch unexpected outliers. We send out samples for outside analysis and talk to our contacts in the industry — we’ve fixed plenty of shipments where third-party batches arrived with “nominal” numbers, but proof in application told another story.

    Some suppliers chase high-purity, extremely low-impurity grades by running more aggressive washing or drying cycles. In our shop, we prioritize keeping the overall water content steady, because wild swings there have caused more equipment shutdowns and operator surprises than any marginal increase in purity. If we have to choose between technical purity and practical stability, experience pushes us toward day-to-day safety and consistent performance.

    Facts from the Manufacturing Floor

    Every shift, we collect data on pH stability, bulk density, flow characteristics, and filter-ability. Our commitment to water content comes from these real observations, not just regulatory paperwork. Operators spot issues — a shift in color, a minor pH drift — and production halts to investigate. We rely on staff insight, not just managerial oversight, for on-the-fly adjustments. Dozens of minor events each year tell us what the charts miss: consistency, not just specs, keeps both our crew and our customers safe.

    Challenges and Solutions in Production and Supply

    Even with refined controls, keeping the water content at or above 10% demands vigilance. Site climate, drum material, time in storage — all can nudge the water fraction off target if we relax. Our solution includes continuous monitoring in both production and storage, frequent recalibration of measurement equipment, and regular cross-checks between lab and line samples. Should we see drift after packaging, we’re ready to reblend in small lots, not pretending a minor error is good enough for shipment. This slows us down some weeks, but it beats chasing customer complaints or operator injuries.

    With extended storage or overseas shipment, evaporation and drum expansion become a risk. Instead of running lean and hoping for the best, our warehouse team keeps conditions tightly regulated, and our quality staff logs water loss during simulated transport. Every time we learn a lesson, we share it down the line, from packers to loading dock, closing the feedback loop before it turns into a liability at the receiving site.

    Sourcing and Raw Material Reliability

    A significant part of maintaining consistent product quality comes from careful sourcing. We buy raw phenolic intermediates directly and pre-qualify every supplier through hands-on testing. Even small adjustments at the source can shift downstream behavior; the appearance and reaction profile of our incoming feedstock directly impact the way water holds in the final product. We resist the urge to chase short-term deals on subgrade material, as too many of those have ended up as drum rejections or frustrated downtime for our customers. Our purchasing team coordinates with production on every shipment, refusing to accept unchecked substitutions that can introduce risk.

    Staff Development: The Human Element

    No matter how much we automate, experience teaches us that a sharp-eyed staff member can spot potential trouble in a way an instrument can’t. Training operators to recognize the feel of a batch, to report odd residue, or to document unexpected foam makes more difference in the final product than any bench-top spectrometer. Regular workshops, cross-team discussions, and practical reviews empower our lineup to keep quality on track, bringing a sense of accountability into every lot and every packing session. Our turnover stays low, because this approach brings pride in seeing shipping drums filled with product they trust themselves.

    Environmental and Safety Commitments

    Working with ammonium 2,4,6-trinitrophenoxide comes with its own set of environmental and occupational responsibilities. Our long-term commitment keeps us focused on reducing emissions, lowering energy waste, and processing all rinse and vent streams with active monitoring. Site safety officers, in the trenches each day, document all near misses and root out causes before they become bigger problems. This isn’t just good policy — it lets us sleep at night knowing we haven’t left hazards for someone else to find.

    We maintain compliance with regional and national guidelines but aim for tighter house rules. Drums leave our gates only after a final full inspection, not only for product performance but also for safe closure and label visibility. Every site audit feeds lessons into production improvements, from floor layouts to operator gear. We actively seek direct conversations with downstream users to understand new risks and evolving regulations, closing loops that might otherwise leave gaps in real-world usage.

    Looking Ahead: Customer Feedback and Industry Cooperation

    As trends shift and regulations tighten, the role of a consistent, well-understood product only grows in significance. We maintain ongoing dialogues with partnering labs, industry consortiums, and field experts to keep our understanding sharp and our product relevant. Our technical support crew gathers field reports, tracks issue logs, and suggests adjustments both on the shop floor and in logistics.

    Direct communication with users fuels our continuous improvement. Customers who face real trouble in their lines — injection blockages, dusting at unplanned spots, storage problems — have driven more practical upgrades to our plant than any remote consultant. We treat every complaint as field learning, blending troubleshooting advice with practical manufacturing tweaks.

    Final Thoughts from the Production Floor

    Manufacturing Ammonium 2,4,6-Trinitrophenoxide with consistent, ≥10% water content doesn’t just check a box on a shipment form — it builds reliability into industry partnerships and workplace safety. Past shortcuts, such as targeting minimal water or prioritizing shipment volumes, taught us tough lessons. Over time, stability, predictability, and hands-on transparency have proved more valuable than chasing minor cost savings or empty “high-purity” labels.

    Every drum that rolls off our line encapsulates the cumulative knowledge of our entire staff. The priorities we set today draw on years of real incidents as well as technical data. The commitment to controlled water content isn’t just a specification — it's a tangible result of constant learning, a pulse-check that reflects both our pride in safe manufacturing and our role in helping end-users keep their own operations running smoothly. This isn’t the easy path, but it’s the only one we trust as manufacturers at the core of the chemical industry.