Products

Bis (2,3-Epoxypropyl) Ether

    • Product Name: Bis (2,3-Epoxypropyl) Ether
    • Alias: Diglycidyl Ether
    • Einecs: 203-439-8
    • 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

    171346

    Cas Number 2238-07-5
    Molecular Formula C6H10O3
    Molecular Weight 130.14 g/mol
    Iupac Name 2,2'-[Oxybis(methylene)]bis(oxirane)
    Synonyms Diglycidyl ether, DGE, DGE ether
    Appearance Colorless to pale yellow liquid
    Density 1.114 g/cm³ (at 20°C)
    Boiling Point 178-179°C
    Flash Point 77°C
    Solubility In Water Partial
    Refractive Index 1.436 (at 20°C)
    Vapor Pressure 0.167 mmHg (at 25°C)

    As an accredited Bis (2,3-Epoxypropyl) Ether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Bis (2,3-Epoxypropyl) Ether is packaged in a 500 mL amber glass bottle, featuring a secure screw cap and hazard labels.
    Shipping Bis(2,3-Epoxypropyl) Ether is shipped as a hazardous material, requiring secure, sealed containers typically made of compatible materials like stainless steel or approved plastics. It must be clearly labeled, with shipping in accordance with regulations such as DOT, IATA, and IMDG. Proper ventilation, temperature control, and protection from moisture or ignition sources are essential.
    Storage Bis(2,3-Epoxypropyl) ether should be stored in a cool, dry, well-ventilated area, away from direct sunlight, heat sources, and incompatible substances such as strong acids, bases, and oxidizing agents. Keep the container tightly closed and properly labeled. Use corrosion-resistant containers and prevent moisture ingress, as the chemical may react with water. Follow all relevant safety and regulatory guidelines for storage.
    Application of Bis (2,3-Epoxypropyl) Ether
    Purity 99%: Bis (2,3-Epoxypropyl) Ether of 99% purity is used in specialty resin synthesis, where it enhances cross-linking efficiency and final product strength.Low Viscosity: Bis (2,3-Epoxypropyl) Ether with low viscosity is used in electronic encapsulation, where it ensures uniform penetration and void-free coatings.Molecular Weight 130.17 g/mol: Bis (2,3-Epoxypropyl) Ether with a molecular weight of 130.17 g/mol is used in adhesive formulations, where it enables precise control over curing rates and bond durability.Epoxy Content 42%: Bis (2,3-Epoxypropyl) Ether with 42% epoxy content is used in polymer modification, where it increases flexibility and chemical resistance of finished materials.Stability Temperature up to 150°C: Bis (2,3-Epoxypropyl) Ether stable up to 150°C is used in high-temperature coatings, where it maintains its structural integrity and protective properties.Water Solubility Low: Bis (2,3-Epoxypropyl) Ether with low water solubility is used in corrosion-resistant paint systems, where it improves the long-term performance under humid conditions.Colorless Liquid: Bis (2,3-Epoxypropyl) Ether as a colorless liquid is used in optical resins, where it prevents tinting and ensures maximal light transmittance.Reactivity High: Bis (2,3-Epoxypropyl) Ether with high reactivity is used in surface primers, where it accelerates adhesion and shortens the application process time.
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    Certification & Compliance
    More Introduction

    Introducing Bis (2,3-Epoxypropyl) Ether: Experience from the Plant Floor

    Understanding What We Make: Bis (2,3-Epoxypropyl) Ether in Focus

    Every batch of Bis (2,3-Epoxypropyl) Ether that leaves our reactor marks the result of years of small improvements and careful observation. In the chemical plant, where mistakes become lessons fast, learning doesn’t come from textbooks alone. Watching how Bis (2,3-Epoxypropyl) Ether behaves in its pure form and in downstream application taught us not just the science, but the practical impact of choices in synthesis and purification.

    Our Typical Model Specifications

    We produce Bis (2,3-Epoxypropyl) Ether as a clear liquid with a characteristic, slightly sharp odor. The usual specification falls within GC purity at or above 99%. Moisture content and acidity control have always driven our quality checks—low water content keeps the epoxy functional groups active. Over the years, we standardized a viscosity range and a color index measured against absolute benchmarks, not just to tick boxes, but to make sure customers face no unknowns when introducing it to their production lines. We check peroxide content with each batch to ensure material life and process safety.

    The commonly requested model falls under a CAS number known to many formulators who value consistent epoxide equivalents. Our staff understand that trace impurities in any batch can spoil entire resin batches downstream or break catalysts. That keeps our focus sharp in every shift.

    Where We See It Used and Why It Matters

    Bis (2,3-Epoxypropyl) Ether commonly finds its path into epoxy resin systems. Over time, we have been in touch with clients making high-performance coatings, thermoset plastics, and adhesives needing an extra level of chemical resistance or easier flow during processing. Its two active oxirane groups turn it into a true building block. We’ve watched how it speeds up curing or helps fine-tune crosslink density in epoxy systems, making possible a wide range of formulations—each with distinct resistance and mechanical profiles.

    On any given day, batches go out to projects in electrical insulation, flooring, and even tools for composite manufacturing. In electrical varnishes, extra batch cleanliness pays off when customers later test insulation breakdown voltages. For some, it’s the balance between flexibility and strength that Bis (2,3-Epoxypropyl) Ether brings when introduced at specific ratios. The difference shows up in the final cured resin’s durability against thermal and chemical challenges.

    Hands-On: At the Intersection of Production and Application

    Handling this compound in production calls for straightforward respect. Its reactivity offers advantages, especially when a faster reaction makes a line run smoother, but only if the plant’s mixing and transfer remain dry and clean. Careless storage or open-air handling leads to color drift and loss of activity—things we learned not from books, but after reworking off-spec material the hard way.

    We invested in continuous feedback from end users. Over several product cycles, engineers pointed us toward minor process modifications that reduced skin irritation without giving up activity or shelf life. When technical people from coating and composite shops described problems with material yellowing or poor batch reproducibility, we drilled into how our water-washing and distillation steps could be tuned. Each story fed back into practical improvements.

    Standing Apart: What Makes It Different from Other Epoxies

    Customers often come to us comparing Bis (2,3-Epoxypropyl) Ether to typical glycidyl ethers, such as those made from aliphatic or aromatic backbones. The distinction lies in its symmetrical, low-molecular-weight structure, and the absence of large pendant groups. In practice, this means enhanced reactivity, easier incorporation into both polar and nonpolar resin systems, and a predictable viscosity profile.

    Its balance—two active epoxide rings—lets formulators fine-tune crosslink structures, unlike mono-functional glycidyl ethers that dilute network density or di-functional resins built on longer, heavier cores. We’ve seen Bis (2,3-Epoxypropyl) Ether modify pot life and cure characteristics, act as both a toughener and a diluent, and offer a straightforward route to bespoke thermosets. Smaller molecules address viscosity concerns, lowering the energy input or solvent load required for blending.

    Fabrication and Technical Challenges from a Manufacturer’s Viewpoint

    Running a chemical plant means daily engagement with safety, worker training, and environmental compliance. Making Bis (2,3-Epoxypropyl) Ether reliably takes both sturdy equipment and sharp operator attention. Precise temperature and pressure management at the epoxidation step do more than hit yield targets—they keep peroxide risk down and product purity up. Investment in scrubbers, containment, and trace monitoring reduces downtime lost to rework and makes improvements in environmental discharge numbers.

    We constantly recalibrate to cut waste and energy while hitting the same high spec. Many buyers overlook how off-spec batches mean hazardous waste loads and lost raw materials. Our plant set up analytics beyond official standards, not to claim green credits, but to save money on raw materials and lower staff exposure to residues.

    Industry Trends and Shifting Demands

    The downstream market sets ever tighter purity and batch-to-batch reliability benchmarks. End-users face global pressures—sharper regulation on VOCs, scrutiny on chemical traceability, and tougher occupational health criteria. What we see most is the shift toward lighter, stronger, and easier-to-apply materials across the epoxy space. Bis (2,3-Epoxypropyl) Ether feeds this trend with its dual function: thinning epoxies for easier handling without sacrificing mechanical properties in the cured product.

    Epoxy formulators regularly call for low color and low odor, much stricter than before. These requirements travel all the way back to our process controls—from raw material testing, pH adjustment, to storage tank cleanliness. Regular conversations with coatings and electronics customers highlight new sensitivities to even minor by-product residues. We’ve responded with analytical upgrades and trace impurity tracking that goes beyond the standard COA.

    Product Handling, Worker Safety, and Environmental Responsibility

    Safe control of exposure on the plant floor goes hand-in-hand with operational discipline. Bis (2,3-Epoxypropyl) Ether irritates skin and eyes, so our teams wear sealed gloves and full-coverage safety glasses as a rule. We also monitor for airborne concentrations, making sure extraction and personal protective equipment limit unnecessary risks. Training gets revisited with every incident report, so each new worker hears the lessons we learned before.

    Past production incidents steered us toward better containment, improved tank truck seals, and high-visibility signage. Simple routine—such as checking every flange and valve joint with each shift—does more for safety and clean operations than relying on procedural manuals alone. We choose cleaning agents and neutralizers based on years of troubleshooting: fast removal of residue so lines run without batch contamination, without generating excess hazardous waste.

    Supply Chain and Raw Material Pressures

    Raw material cost swings, global supply snags, and regulatory changes shape our reality. Epichlorohydrin, a key starting point, varies widely in price and purity. Reliable sources matter—a low-grade supply causes resin yellowing or variable reactivity, which comes back in customer complaints. We scrutinize every lot with both chemical analysis and practical test blends.

    Shipping hazardous chemicals, especially across borders, needs more than paperwork—packaging integrity, quick logistics responses, and dependable backup storage site all play into planning. International auditors and local inspectors now drop in unexpectedly. Adjusting storage and trucking to ever-tighter rules avoids costly delays and brand risk.

    Sustainability and Regulatory Alignment

    Stronger regulations on VOCs and hazardous substances force rigorous process review. We follow emerging directives on industrial chemicals, especially those impacting worker health or downstream consumer goods. Lowering fugitive emissions and improving waste treatment draws not just regulatory relief, but lower operational costs. Over the past year, changes to our distillation and exhaust controls yielded clear improvements: less off-gas, fewer odor complaints from neighboring factory zones, and safer working conditions.

    Long-running investments in analytical science and traceability build trust—uninterrupted shipment records matter when regulatory bodies check origin or batch history. We learned early that being slow to update compliance procedures only brings more scrutiny and last-minute production stress.

    Collaboration with Downstream Industries

    Most innovations come from open talk with industry partners. Composite molders, electronics shops, and specialty coating formulators keep us up to date on application headaches and processing breakthroughs. We adjust product parameters based on real-world feedback—sometimes a minor change in water content allows downstream users to drop a filtration step or batch rectification.

    Keeping this feedback loop alive helps both sides. We pass on knowledge about optimal storage conditions, dilution methods, and blending strategies for specific sectors. We answer technical inquiries as a habit, long after the shipment leaves the plant. Some partners invite us into their trial runs; we share early insights into potential material incompatibilities or process improvements.

    Research, Development, and the Next Steps

    Our laboratory sits at the boundary between discovery and daily production. Each improvement begins with direct observations: a cloudiness in a distillation cut, a subtle odor in a test blend, or early gel points in a prototype batch. These prompt deeper review—what’s drifting in process controls, what’s changing in our raw material feed?

    New competition from non-epoxy alternatives or advanced modified epoxides keeps us alert. Research in greener, lower-toxicity epoxies impacts how we structure our own development plans. For Bis (2,3-Epoxypropyl) Ether, process improvements target both higher yields and lower environmental burden—breaking down waste streams more cleanly, or using less energy-intensive purification.

    Commitment to Consistent Quality

    Setting up for repeatable results, not just passing standard tests, guides every change. Realizing that just meeting a published purity figure says little about how a product will work on a customer’s assembly line: that comes from attention to trace components, container residuals, and shipping times.

    We built robustness not just into synthetic methods but into bottle-by-bottle inspection. No two runs alike—plant temperature, batch size, and even atmospheric conditions in our region can nudge specs. Continuous learning, daily engagement, and a habit of asking “what did we miss” keep us on track.

    Conclusion: The Real Value in Expertise

    Manufacturing Bis (2,3-Epoxypropyl) Ether ties together technical skill, day-to-day discipline, and industry trust. Beyond what’s on a specification sheet, the reliability and safety of this key chemical come from years spent understanding both its production challenges and unique applications. The work doesn’t end after shipping—each batch is a new test of process improvement, customer dialogue, and practical experience brought to the table.

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