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HS Code |
954386 |
| Chemicalname | 1,2-Epoxy-3-ethoxypropane |
| Synonyms | Glycidyl ethyl ether |
| Casnumber | 7305-67-7 |
| Molecularformula | C5H10O2 |
| Molecularweight | 102.13 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 130-132 °C |
| Density | 0.97 g/cm³ at 20 °C |
| Flashpoint | 38 °C (closed cup) |
| Solubilityinwater | Miscible |
| Refractiveindex | 1.411 at 20 °C |
As an accredited 1,2-Epoxy-3-Ethoxypropane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1,2-Epoxy-3-Ethoxypropane is supplied in a 500 mL amber glass bottle with a secure screw cap and hazard labeling. |
| Shipping | 1,2-Epoxy-3-ethoxypropane should be shipped in tightly sealed containers, away from heat and direct sunlight. Transport in compliance with local and international regulations for hazardous chemicals. Ensure proper labeling as a flammable liquid and irritant. Suitable protective packaging and documentation accompanying the shipment are required to ensure safety during transit. |
| Storage | 1,2-Epoxy-3-Ethoxypropane should be stored in a cool, dry, well-ventilated area away from heat, sparks, and open flames. Keep the container tightly closed and protected from moisture. Store separately from acids, bases, oxidizers, and reducing agents. Use chemical-resistant containers and avoid direct sunlight. Properly label storage areas and containers, and ensure access to spill control materials and eyewash stations. |
Applications of 1,2-Epoxy-3-Ethoxypropane in Industrial ManufacturingAs a direct manufacturer of 1,2-Epoxy-3-Ethoxypropane, we supply this specialty intermediate for a range of established downstream sectors. Our clients incorporate this ether-functional epoxide in precise formulations that demand consistency, regulatory alignment, and technical performance. The following scenarios represent real, documented industrial applications where our material supports value-driven manufacturing workflows. 1. High-Performance Epoxy Resin Systems for Electrical EncapsulationDownstream epoxy formulators rely on 1,2-Epoxy-3-Ethoxypropane to extend pot life, impart flexibility, and fine-tune dielectric strength in electrical encapsulants. This ether-epoxide modifier enables stable crosslinking and improved processability in low-viscosity casting resins, which are widely used for potting sensitive electronic circuits, ignition coils, and transformer modules. The chemical enters blend tanks during primary resin compounding, meeting end-user electrical reliability and insulation requirements for automotive and industrial electronics. Industry compliance standards
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2. Reactive Diluent in UV-Curable CoatingsIndustrial formulators in the surface coatings industry select this epoxide ether as a reactive diluent for UV-curable acrylate and epoxy-acrylate systems. It lowers formulation viscosity for easier substrate wetting, while its epoxide functionality co-polymerizes under UV exposure to deliver balanced hardness and flexibility. The material is dosed directly into the base blend at the premix stage and integrates into the cured network during short-wave UV processing. Coating plants depend on its batch-to-batch consistency for high-speed manufacturing of electronics, wood, and packaging surfaces. Industry compliance standards
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3. Intermediate for Synthesis of Specialty Block CopolymersPolymer manufacturers use 1,2-Epoxy-3-Ethoxypropane as an ether-functional building block in synthesizing segmented block copolymers designed for advanced elastomers and adhesives. The molecule reacts with secondary amines or carboxylic acids to introduce ethoxy side chains, improving flexibility, hydrolytic stability, and compatibility with polyurethane or polyester phases. Precision-controlled feeding in the polycondensation step assures lot-to-lot reproducibility for the performance requirements of automotive, footwear, and construction adhesives. Industry compliance standards
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4. Modifier in Flexible Polyurethane FoamsProducers of flexible slabstock and molded polyurethane foams add 1,2-Epoxy-3-Ethoxypropane as a chain extender and incompatibility reducer for open-cell architectures. Its ether linkage introduces greater resilience and hydrolysis resistance, supporting long-term foam softness in bedding, furniture, and automotive seating. The product is dosed inline with polyol blends prior to reaction with isocyanates, providing controlled cell structure and minimal fogging for sensitive interior applications. Industry compliance standards
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5. Chemical Intermediate for Agrochemical SynthesisAgrochemical manufacturers employ 1,2-Epoxy-3-Ethoxypropane as an intermediate in producing ether-functional pesticide and herbicide actives. Its highly reactive oxirane group enables targeted ring-opening reactions for constructing ether-linked active ingredients used in pre-emergent and foliar spray formulations. Synthesis takes place under GMP conditions, with the compound entering the process at the key functionalization step, supporting strict regulatory requirements for traceability and purity. Industry compliance standards
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Here on the production floor, we work with a substance called 1,2-Epoxy-3-Ethoxypropane, known to many by its CAS number, but familiar to us by its character. Every kilogram that comes off our reactor lines reveals solid engineering behind its synthesis. Chemists and operators watch the process closely, adjusting controls and watching columns to keep quality in line with tightly held standards. Nothing leaves this plant without meeting practical application demands. We keep this chemical tightly controlled for purity, because many people downstream count on our precision.
In our production, we see 1,2-Epoxy-3-Ethoxypropane deliver consistency batch after batch when turned into coatings, resins, specialty adhesives, and intermediate building blocks. This molecule doesn’t attract much attention outside technical circles, but its utility spreads far. Factories making surface coatings rely on its reactive epoxy group and convenient ethoxy handle, seeking out its balance of reactivity and compatibility with other monomers. Small differences in this chemical have ripple effects on processing speeds in composite plants or in the shelf-life of two-part adhesive formulations. Each batch we roll out reflects not only compliance with technical specs, but lessons learned after years of working with high purity epoxides.
On our lines, we monitor for specifications that go beyond typical datasheet promises. A common model manufactured here reaches a purity level above 99 percent by gas chromatography, because even trace contaminants like aldehydes or water sensitize production in many industries. Our operators remove side-products and residual solvents to levels we can measure on modern instrumentation, so clients avoid process upsets from unwanted reactions. Color, odor, and water content all mark out the story of each batch — our best batches shine clear and neutral when poured, with minimal water content, no strong odors, and chemical assay numbers that satisfy the most critical customer. Many of our partners refuse to compromise on these points. After years of seeing how even slight variations derail process lines, we know why.
The packaging we use is not chosen for convenience but built to keep the sensitive oxirane ring stable during storage and transit. Polyethylene-lined steel drums or fluoropolymer containers cut out the risk of unwanted absorption or polymerization. Long experience teaches us to watch out for non-standard packaging materials, which can leak plasticizers or create compatibility issues. No paint, sealant, or composite component maker wants to deal with off odors or sticky residues because a supplier took shortcuts on containers. Our conversations with clients reveal a demand for reliability, and we commit to this at every hand-off point, from the reactor to the warehouse.
People outside chemical engineering rarely realize how a small structural change in an organic molecule shapes everything from cure speed to flexibility and toxicity. We often field calls from process engineers asking how 1,2-Epoxy-3-Ethoxypropane differs from common epoxides. Epichlorohydrin or propylene oxide may be more familiar, but replacing those for certain applications brings results only half as good. The presence of both the epoxide ring and the ethoxy substituent sets this product apart, especially in resin modification. In our regular quality meetings, chemists compare reaction performance, noting that our product’s ethoxy group increases compatibility with many unreactive resins. When polymer scientists want a lower viscosity, faster reacting intermediate, they prefer this over standard aliphatic epoxides. Formulators use it, for instance, to open up options for fluorescence, cross-linking, or to create a less brittle network in specialty coatings.
Its slightly higher molar mass, compared to cheap bulk oxiranes, can also lower volatility and improve occupational safety during mixing and blending. We have seen operators in adhesives and composites appreciate the reduction in flammability and worker exposure, which makes production lines easier to manage. Our safety and analytical staff track air quality in the plant, and they confirm that 1,2-Epoxy-3-Ethoxypropane, with its oxirane but also bulky ethoxy chain, minimizes vapor-phase emissions compared to lower homologues. These details matter out where production never pauses for shift changes, and the safety of workers stays at the top of technical reviews.
Decades experimenting with new applications of reactive intermediates show us which products save time, which create downstream headaches, and which get quietly phased out after disappointing trials. 1,2-Epoxy-3-Ethoxypropane earns its place in the market through stability that holds up under scale-up, not just on paper. Many resin plants appreciate how this material resists yellowing during storage, so product warranties rarely get tested thanks to fading or discoloration. Customers in the electronics sector count on its exceptional electrical insulation performance when used as a modifier in potting resins. Our technical teams keep in touch with customers to follow up over months and even years on product performance.
In practice, using this material sometimes means investments in process adaptation. Lines relying on cheap mono-functional epoxides often require agitation and temperature control tweaks. Noise from mixing gear and changes in worksite ventilation often follow, but process engineers benefit from real production runs, not just literature predictions. Rather than burying surprises under jargon, our team shares operating conditions, from reaction temperatures to timescales for optimal conversion. Our willingness to open plant doors to partners and share process notes over years leads to fewer failures and smarter line upgrades, which ultimately reflects in the longevity of the final goods.
No chemical synthesis plant operates without pushback from both nature and markets. Maintaining consistently high purity in 1,2-Epoxy-3-Ethoxypropane draws on dozens of small improvements—distillation column upgrades, solvent recycling, condenser redesigns—that have accumulated over years. Unlike with commodity solvents, running this process demands maintaining closed systems under controlled oxygen and humidity, as moisture takes out activity from the oxirane ring and shortens shelf life. We even invest in per-batch water determination using Karl Fischer titrations and track the results by operator and reactor.
Seasonal and supplier changes in raw materials also keep us sharp. Feedstock shifts can introduce impurities known only to those with years in the plant, like trace peroxides or higher glycols. Instead of letting these slip past, our assurance teams sample at multiple points in the run, making a record that allows us to backtrack and fix issues early. Customers sometimes ask us about odd data points in their usage, and more often than not, we can track down small changes in feed chemistry as the cause. Only through hundreds of plant trials and by talking directly with partner labs can we stay ahead of such challenges.
In the supply chain, disruptions happen almost out of nowhere—weather events, regulations, or infrastructure breakdowns upend even the best schedules. Customers don’t want to lose contract deadlines because we cannot ship on time. Real-world reliability comes from strategic reserve planning, investments in spare reactor capacity, and willingness to reroute logistics on short notice. Our plant keeps a close eye on secondary routes for truck shipments and maintains in-house emergency stocks when river or port access gets blocked. Head office may see this as a cost, but we know that delivery commitment binds us to our customers’ own production calendars.
The little bit of cushion on-site costs less than resettling long-term contracts. By focusing on regular communication, and offering advance transparency when issues do arise, we maintain trust even during hiccups. Our logistics staff track individual drum lot numbers from synthesis floor to international distribution points. This traceability, built panel-by-panel into our tracking software, sidesteps costly disputes about batch quality or delivery accuracy. Customers see fewer production stops, and their audits run smoother because we keep records open for review at all times.
Regulatory landscapes in coatings, adhesives, and electronics supply chains push us to validate every aspect of our product and its documentation. Countless meetings with compliance officers reinforce that chemical content, trace level impurities, handling recommendations, and environmental impact disclosures need transparency. As active participants in industry consortiums, we contribute chemical know-how to ensure legal documents meet reality in practice. No customer wants surprises in REACH, TSCA, or other compliance checks — we treat this as a point of pride, having staff trained up on current international standards.
Being a manufacturer, we don’t just ship what’s convenient. Many times, customers request support in adapting their blend to new certifications or local regulations. Our technical staff supports these adaptations, sometimes remixing or reprocessing material mid-run for special local restrictions. We invest in thorough certification and batch testing, so product specifications sent from our facility mean something. Over time, customers come to realize that carefully compiled paperwork and consistent batch performance keep their own products and reputations safe.
Some description pages lump all aliphatic epoxides into a single category, but walking through our plant dispels that notion quickly. 1,2-Epoxy-3-Ethoxypropane stands out for its blend of manageable viscosity, chemical reactivity, and storage stability. Unlike crude epichlorohydrin, this molecule carries no trace of chlorine, making it valuable for chlorine-sensitive catalysts, pharmaceuticals, and electronics. The ethoxy substituent brings a moderation in volatility and improved solubility profile in both polar and nonpolar contexts, which is important for blending in many applications.
Our real-world trials show that resin modifiers based on this chemistry can step up the weathering resistance of finished composites, particularly in combination with certain UV-curing agents. Though a robust base chemical, it handles gentle enough for precision electronics encapsulation. Colleagues in downstream R&D often praise its 'clean' handling profile, with minimal by-products under both acid and base catalysis. Not all plant operators want to shift away from lowest-cost raw materials, but conversations with technical teams quickly surface practical advantages—lower batch discard rates, simpler vent treatment, and easier product certification processes. These matter most when scaling from pilot to commercial runs.
Technical differences like flash point, molecular weight, and hydrophilicity don’t always tell the practical story. Staff who have run both propylene oxide and 1,2-Epoxy-3-Ethoxypropane on similar process lines report smoother transitions and lower unexpected downtimes with the latter. We’ve learned to invest more time in initial training with new users, giving them tips from plant note logs that help them optimize their own processes. These collective insights from real manufacturing set apart a specialty intermediate from a bulk commodity in both cost and outcome.
Keeping plant operations sustainable isn’t simply a slogan for us. Every step in the process, from raw materials purchase to effluent treatment, brings responsibility. We report and address process emissions transparently, not just to check a box. Practical plant design means capturing more volatile organic compounds (VOCs) and keeping recycle loops tight. Evaporative losses from even a moderate molecular weight chemical like this add up; covering tanks and lines, and using vacuum or nitrogen-inerted systems, reduce unnecessary exposure. Down the line, customers benefit with less concern for residual emissions and easier local environmental reporting.
Worker safety belongs in the core of everyday business. With 1,2-Epoxy-3-Ethoxypropane, glove compatibility, ventilation rates, and drum handling features all get regular scrutiny. Plant staff receive frequent updated training in emergency procedures, and plant layout adapts to the unique hazards of each step—something never visible from a datasheet description. The aim isn’t just incident reduction, but routine safe handling, so everyone goes home healthy. We update operational protocols as new research appears, extending these lessons to our customers when they visit or call in for advice.
Each new client brings different downstream targets—sometimes demanding reactivity controls, other times searching for just the right flow behavior or blending transparency. As a manufacturer, we keep an open door policy for technical visits, information exchanges, and collaborative troubleshooting. If a run produces atypical results in someone’s plant, our engineers tackle the issue shoulder to shoulder with their teams, whether the answer calls for right-sizing a distillation tower, switching feedstock grades, or fine-tuning a curing schedule. The value of these partnerships grows over the years, as both sides build up knowledge about how minute differences in product or process yield better outcomes.
We also invest in documentation and technical literature that reflects actual plant use, not marketing abstracts. Case studies drawn from real usage, standard operating procedure guidance, and user notes from both failures and successes give customers a head start—saving both materials and time. Joint development projects often yield new recipes or processing methodologies that move from our labs out into full scale commercial runs, keeping everyone on the cutting edge of what 1,2-Epoxy-3-Ethoxypropane can accomplish in the real world.
Walking through years of direct manufacturing, 1,2-Epoxy-3-Ethoxypropane stands as more than a chemical formulation—it's the result of practical experience, persistent innovation, and ongoing collaboration with users. Our batch histories and customer support calls shape each improvement, building a resource tailored to real industry pain points and ambitions. Whether applied in developing high-performance adhesives, improving coating resilience, or supporting breakthrough composites, the substance fulfills targets set by practice, not just by theory.
We find that no substitute delivers quite the same balance of accessible reactivity, process consistency, and user safety profile. The lessons learned on our shop floor over decades carry forward into each drum shipped out, helping partners drive innovation in their own fields. Every improvement we make, every answer we share, plants another stake in the long-term value of direct-from-source materials. Trust built on experience and openness—this sets the path for both our company and all those who use 1,2-Epoxy-3-Ethoxypropane to move their industries forward.