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HS Code |
578078 |
| Chemical Name | N,N'-Bis(2-Hydroxyethyl)Oxamide |
| Molecular Formula | C6H12N2O4 |
| Molecular Weight | 176.17 g/mol |
| Cas Number | 6032-40-6 |
| Appearance | White to off-white solid |
| Melting Point | 200-205°C |
| Solubility In Water | Soluble |
| Boiling Point | Decomposes before boiling |
| Density | 1.38 g/cm³ (estimated) |
| Purity | Typically ≥98% |
As an accredited N,N'-Bis(2-Hydroxyethyl)Oxamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 100g package features a sealed, amber glass bottle with a tamper-evident cap and a label displaying chemical name and hazard warnings. |
| Shipping | N,N'-Bis(2-Hydroxyethyl)Oxamide should be shipped in tightly sealed containers, protected from moisture and direct sunlight. The chemical is typically transported as a solid at ambient temperature. Ensure appropriate labeling and documentation, and follow relevant regulations for non-hazardous chemicals. Handle with standard precautions to avoid inhalation, ingestion, or skin contact during shipping. |
| Storage | **N,N'-Bis(2-Hydroxyethyl)Oxamide** should be stored in a tightly sealed container in a cool, dry, and well-ventilated area. Keep away from sources of heat, ignition, and incompatible substances such as strong oxidizing agents. Protect from moisture and direct sunlight. Ensure appropriate labeling and use personal protective equipment when handling. Store chemical containers out of reach of unauthorized personnel. |
Applications of N,N'-Bis(2-Hydroxyethyl)Oxamide in Industrial ManufacturingAs a distinguished producer of N,N'-Bis(2-Hydroxyethyl)Oxamide, we support select manufacturers in key specialty chemical sectors with reliable integration in downstream processes. Our material consistently meets stringent technical and regulatory requirements, ensuring both performance and compliance in targeted industrial applications described below. 1. Thermosetting Resin Curing ModifiersN,N'-Bis(2-Hydroxyethyl)Oxamide functions as an effective curing retarder in the formulation of thermosetting epoxy and phenolic resins. The material’s specific hydroxamic structure delays gelation, providing precise working times favored by composite molding and electrical encapsulation processes. Manufacturers value the additive's ability to fine-tune dielectric properties and mechanical performance by moderating the resin crosslinking stage. Industry compliance standards
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2. Polyurethane Foam Process RegulatorsIn the production of polyurethane flexible and rigid foams, this compound functions as a foam cell stabilizer and polymerization modulator. It helps minimize open cell formation, supporting consistent density and mechanical resilience. The additive’s amide moiety interacts with isocyanate chemistry, improving finished material life-cycle performance, especially in automotive and thermal insulation industries. Industry compliance standards
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3. Wet-End Additives for Specialty Paper ManufacturingUsed as a specialty dispersant and anti-static agent in the wet-end of paper and fiberboard manufacturing lines, N,N'-Bis(2-Hydroxyethyl)Oxamide enables better pulp fiber dispersion and retention of functional fillers. Its hydrophilic groups reduce static buildup and maintain sheet formation uniformity, advancing paper properties critical for high-grade printing substrates and specialty packaging. Industry compliance standards
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4. Lubricant Formulations for Metal FormingWithin the formulation of high-performance water-miscible metalworking lubricants, N,N'-Bis(2-Hydroxyethyl)Oxamide acts as a chelating and anti-scuff additive. It manages metallic soap precipitation while improving boundary lubrication under pressure, reducing tool wear during cold forming, stamping, and wire drawing operations for non-ferrous metals. Industry compliance standards
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5. High-Performance Textile Fiber FinishesIn textile production, particularly for polyester and polyamide fibers, this diamide serves as a finishing agent improving antistatic properties and fiber lubrication before spinning and weaving. It supports stable yarn tension and reduces breakage rates, critical for manufacturers seeking improved throughput in continuous filament processes and consistent finishing quality for technical textiles. Industry compliance standards
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Years spent in chemical production have led to deep familiarity with N,N'-Bis(2-Hydroxyethyl)Oxamide—often described in the industry as a versatile intermediate with a unique dipolar molecular structure. Our daily operations revolve around producing this compound with a focus on consistency and reliability, which remain at the forefront of what our customers expect and what downstream processes demand. The chemistry behind N,N'-Bis(2-Hydroxyethyl)Oxamide stands out for several technical reasons, marking clear differences from similar compounds used in polymer, textile, and engineering applications.
The model most frequently manufactured in our facilities features a molar mass of 204.23 g/mol and a melting range between 129°C and 134°C. The crystalline solid presents itself as an off-white powder, which lets producers spot subtle color variations that might hint at process deviations. We hold purity targets above 99%, driven less by paperwork and more by production realities—impurities complicate both synthesis and downstream use. N,N'-Bis(2-Hydroxyethyl)Oxamide incorporates two hydroxyethyl groups per molecule, increasing both hydrophilicity and hydrogen bonding capacity. From direct handling, we confirm that the material readily dissolves in warm polar solvents, such as water and assorted glycols, and resists most organic nonpolar solvents, simplifying clean-up and transfer operations on the production floor.
There’s a clear advantage to manufacturing this material in-house. Control over raw material quality, reaction atmosphere, and purification steps minimizes batch variability and eliminates surprises for our long-term clients. Our teams apply HPLC and GC-MS regularly to monitor byproduct profiles, and every operator in our plant knows the value of a true-to-spec batch: fewer returns, smoother application, and enhanced customer relationships. During crystallization and drying, subtle adjustments to temperature or anti-solvent addition change the outcome far more than any technical bulletin will admit. These refinements, shaped by years of empirical know-how, keep us ahead.
The list of industrial uses for N,N'-Bis(2-Hydroxyethyl)Oxamide runs long, but trends in commercial orders accentuate a few priority fields. In fiber manufacturing, the compound acts as a modifier for polyester resins, introducing controlled flexibility and hydrophilicity changes. Customers in the coatings sector request specific particle size ranges that avoid clogging in metering feeds, emphasizing the downstream process advantage realized only from tight batch controls. In the realm of high-performance polymers, formulators value the secondary amide linkages for introducing cross-link points, tuning the mechanical strength and hydrolysis resistance of finished plastics. Analytical labs sometimes employ our product as a matrix agent for sample stabilization, a reflection of its consistent chemical inertness under test conditions. At every stage, close contact with our partners sharpens feedback loops that refine production details and keep specifications grounded in application, rather than abstract marketing descriptions.
As manufacturers, we often field questions about differences between N,N'-Bis(2-Hydroxyethyl)Oxamide and better-known materials like urea derivatives, oxalic acid diamides, or other bis-hydroxyethyl compounds. The key distinction emerges in the dual hydroxyethyl arms, which introduce higher polarity and greater compatibility in aqueous formulations. Process engineers appreciate the increased solubility, which simplifies blending steps and widens compatibility with hydrophilic polymer systems. Amide backbone rigidity, absent in many other bis-hydroxyethyl compounds, enhances physical stability. Compared to direct esterification products, N,N'-Bis(2-Hydroxyethyl)Oxamide resists thermal breakdown and maintains structural integrity during high-temperature resin curing—crucial for producing long-lifetime coatings or engineering plastics. No two customers use it the exact same way, but these chemical features generate practical advantages across sectors.
Experience has shown that more than any data sheet, end-users rely on consistency. Variations in color, particle size, or trace impurity profile can trigger faulty polymerization, uneven film formation, or even unnecessary stoppages in fabrication lines. By maintaining single-source raw materials and adjusting synthesis parameters based on real-time analytics, we enable smoother transitions between lots and reduce troubleshooting efforts downstream. Customers returning to reorder routinely cite this steadiness as a reason for sticking with us, rather than chasing marginal cost savings in low-transparency commodity markets. The discussion often centers around what worked last time, not theory, and our engineers remain ready to navigate practical tweaks on the fly.
Manufacturers everywhere shoulder environmental stewardship. For N,N'-Bis(2-Hydroxyethyl)Oxamide, we minimize residual impurities and volatile organic outputs at every stage, not just for compliance but for safe handling and waste disposal reasons that affect our facility, our teams, and our customers’ reputations. Plant-level audits confirm that solvent recycling and closed system loading reduce emissions, while our detailed lab logs show the beneficial effect of minimal byproduct formation on both product reliability and downstream compatibility. Manufacturers using our oxamide can streamline their own VOC reporting, and the ease of residue wash-off means reduced water usage in cleaning cycles. Every lab test and production meeting brings feedback on how tighter specs make the workday easier, reduce compliance paperwork, and improve personal safety in real operational settings.
During transfer, dissolution, or mixing, N,N'-Bis(2-Hydroxyethyl)Oxamide’s granular, low-dust characteristics reduce airborne loss and enhance worker safety—an improvement over more powdery, cling-prone glycols and amides. Plant operators benefit from its stable flow properties, reducing manual scraping and downtime due to clogging. In formulation work, rapid solubility in heated aqueous phases—without the gelation or unwanted foam typical of certain other oxamide derivatives—lets technicians focus on process optimization rather than clean-up. Drums and totes exit our warehouses calibrated for easy decanting, and years of transport feedback have led to packaging improvements that hold up through winter freeze-thaw cycles and humid warehouse conditions.
Buyers sometimes narrow focus to price per kilogram, but real-world manufacturing reality plays out differently. Cost-of-use analyses show that eliminating process upsets, increasing throughput, and reducing corrective maintenance delivers better bottom-line impact than chasing the lowest price. Because our production lines rarely face downtime from contaminated or poorly milled raw material, users downstream benefit from fewer unplanned shutdowns and scrap loss. Feedback from application chemists often points toward improved reproducibility in final product testing, less time spent retesting, and a drop in off-spec complaints. These outcomes trace back to the care invested at our plant, recorded in daily batch logs and echoed in long-term supply contracts.
From time to time, the industry discussion circles around misconceptions. One recurring issue equates N,N'-Bis(2-Hydroxyethyl)Oxamide with lower-priced bis-hydroxyethyl substitutes or higher molecular weight oxamides. The subtle difference in chemical backbone—namely the amide linkage paired with two hydroxyethyl groups—expresses itself in application: easier water-dilution, stronger hydrogen bonding for cross-linking, and higher compatibility with heat-cured resins. Where polymer formulators once worried about unwanted side reactions or thermal off-gassing, they now see the stability in large-scale runs. Users switching from alternatives report fewer problems with haze formation and less yellowing during curing. These details matter on the factory floor, not just in academic reviews.
We notice pattern changes in order sheets as customers try new polymer systems, shift away from legacy solvents, or begin pilot runs of novel textile finishes. The core physical and chemical profile of our product—stable amide, high purity, granular morphology—covers most initial requirements. Yet, years of fielding customer inquiries have taught us the importance of quick adaptation. Sometimes this calls for adjusting sieve parameters for a finer powder blend, other times for confirming a lower water content when used in sensitive curing protocols. By staying close to the action at the manufacturing level, we catch specification drift early and prevent small changes from becoming production headaches downstream. Direct experience tells us that flexibility plus open lines of communication deliver better results than rigid, one-size-fits-all paperwork ever could.
Our technical desk sits above the same plant floor where batches run, so responses reflect actual experience, not abstract support. When a coatings chemist calls on a Friday afternoon with a pigment dispersion issue, odds are we’ve encountered something similar during hands-on trials. We walk clients through temperature ramp rates, agitation speeds, or anti-caking agent tweaks, drawing notes from the production logs or troubleshooting records. This immediacy speeds up final line release and lets the downstream user avoid costly lab-scale guesswork. Over time, mutual trust grows, and feedback from buyers shapes procedural improvements back at our plant. It isn’t just about responding to issues: ongoing supplier-user collaboration results in stronger product performance, less waste, and shared innovations.
Production consistency and quality assurance aren’t static. As environmental policies evolve and market needs shift, we continually invest in both plant infrastructure and personnel knowledge. During the roll-out of automation upgrades, field-tested learnings informed sensor placement and software thresholds. These efforts lowered the risk of out-of-spec production events and freed up skilled operators to focus on process refinement. Our labs remain involved in trials to assess the impact of recycled feedstock, improved mixing regimes, or alternative secondary packaging. Through these steps, our product adapts, but the focus stays fixed on real-world utility—measured by ease of use, reliability during application, and reduction of costly process headaches for end users.
Engagement with downstream users doesn’t end after shipment. Sometimes, the most valuable improvements arise from what customers observe during full-scale production. Reports about residue build-up, flow inconsistencies, or unexpected color change prompt joint investigations. By collaborating with buyers to perform root cause analyses—pulling material from retained lots, running new analytical profiles, or tracking supplier changes in real time—we have repeatedly traced and solved performance snags that eluded early-stage lab tests. Not every partnership prompts a headline, but these hands-on feedback loops improve both our process and the value delivered to customers in every shipment.
Years invested in producing N,N'-Bis(2-Hydroxyethyl)Oxamide have yielded more than just a reliable product: they have built a foundation of technical experience rooted in daily operational challenges and long-term relationships. The material’s strong position in polymer modification, coatings stability, and specialty chemical synthesis stems from both its chemical profile and the manufacturing discipline behind each batch. For every new application, we draw from past learnings—constantly adapting production and quality protocols to match what buyers actually encounter in their plants. The future of N,N'-Bis(2-Hydroxyethyl)Oxamide rests on a simple but enduring truth: close attention to process, real dialogue with users, and a willingness to improve year after year delivers results that data sheets alone can’t match.