| Код ТН ВЭД | 656477 |
Как аккредитованный BigRep BVOH Butenediol винилового спирта кополимер, фабрика Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | BigRep BVOH Butenediol vinyl alcohol copolymer filament, 500 g, vacuum-sealed on spool with desiccant in labeled moisture-barrier bag and box. |
| Погрузка контейнера (20-футовый контейнер) | BigRep BVOH butenediol vinyl alcohol copolymer filament, palletized spools, loaded into 20′ FCL dry container, moisture-protected and secured. |
| Доставка | Transport as a non-hazardous solid polymer filament. Not regulated for DOT, IMDG, IATA, or ADR. Ship in sealed moisture-barrier packaging on spools. Protect from heat, humidity, and direct sunlight. No special ventilation required. Store at ambient temperature. Avoid crushing or puncturing packaging. |
| Хранение | Store BigRep BVOH Butenediol vinyl alcohol copolymer filament in a cool, dry, well-ventilated area away from heat, sparks, flames, and direct sunlight. Keep in its original sealed packaging or an airtight container with desiccant to prevent moisture absorption. Protect from oxidizers and contamination. Maintain stable room temperature; avoid prolonged exposure to humid air. Follow supplier instructions. |
| Срок годности | Stable under normal storage; keep sealed with desiccant in a cool, dry place. Typical shelf life: about 12 months. |
BigRep BVOH butenediol vinyl alcohol copolymer filament is used as a sacrificial support medium in dual-extrusion fused filament fabrication where the primary build material must remain dimensionally stable during prolonged water exposure and where enclosed internal channels, undercut bosses, or living-hinge relief pockets exclude mechanical support removal. The support material is processed through a dedicated hardened steel nozzle with a diameter of 0.4 mm; layer heights between 0.15 mm and 0.25 mm are selected so that the support-to-part interface maintains a zero horizontal offset. A positive offset above 0.25 mm generates shelf-like witness lines on downward-facing surfaces, while a negative offset below 0.05 mm increases adhesion enough to require extended dissolution and mechanical agitation. The filament must be pre-dried at 60 °C for 4–6 h when storage humidity exceeds 60 % RH, because absorbed water hydrolyzes the vinyl alcohol sequences during extrusion and produces steam voids, irregular ooze, and nozzle deposits. On production machines with a chamber temperature above 65 °C, the BVOH support softens at the base, causing loss of first-layer adhesion and collision with the second hot end; batch-to-batch ovality above 0.05 mm can alter the interface offset and produce support strands that either peel too early or bond too aggressively. In automotive fluid-handling prototype production, BVOH is laid into internal manifold geometries as a solid breakaway core; after printing, the part is transferred to a temperature-controlled recirculating water bath at 30–45 °C. Dissolution is governed by convective mass transfer at the water-polymer interface, not merely by polymer solubility. Low-flow or static immersion leaves a gel layer that can blind off 2.0–4.0 mm internal channels; a recirculating pump or ultrasonic bath is required to shear the boundary layer and expose fresh solvent. Primary part validation after support removal follows ISO 527-2 for tensile modulus and ISO 62 for water absorption.
| Parameter | Working range | Boundary condition |
|---|---|---|
| Pre-drying | 60 °C for 4–6 h | Required when storage RH exceeds 60 % |
| Nozzle setpoint | 190–210 °C | Excursions beyond ±5 °C cause thermal degradation or poor interlayer fusion |
| Build plate / chamber | 45–60 °C | Above 65 °C softens the support and causes first-layer detachment |
| Water bath temperature | 30–45 °C | Above 50 °C risks softening low-temperature primary polymers; below 25 °C removal becomes impractical |
| Support layer height / offset | 0.15–0.25 mm / 0.00 mm | Positive offset greater than 0.25 mm or negative offset below 0.05 mm alters surface finish or bond strength |
BVOH washout mandrels are used in composite duct manufacturing only when the resin cure cycle remains below the heat distortion threshold of the support. A wet layup or vacuum-bag-only epoxy system with a cure temperature not exceeding 40 °C can be laid directly over a dense BVOH mandrel printed with a rectilinear infill of 60–80 %; lower infill accelerates water ingress after cure but increases mandrel deflection under bag pressure. During cure, resin exotherm must be controlled because a localized temperature excursion above 60 °C can plasticize the mandrel and shift duct wall thickness outside the part tolerance band. Published data for autoclave-cured BVOH mandrels is limited; the operational boundary is set by the glass transition of water-saturated BVOH, which falls below 40 °C in wet service. Consequently, the method is restricted to low-temperature prepregs, room-temperature wet layup, or epoxy systems with a maximum exotherm below 45 °C. After cure, washout is performed by injecting water into the mandrel through printed access ports; a recirculating pump rated at 2.0 L/min through a 6.0 mm port is representative of bench-scale washout rigs, but published data for this specific configuration is limited. Dissolved BVOH must be prevented from contaminating open laminate edges; the composite duct is then dried and inspected for residual vinyl alcohol by mass change after 24 h in a desiccator. Laminate void content on witness panels is checked per ASTM D2734.
In medical training models with hollow vascular networks, the same solubility mechanism is used under more restrictive contamination-control requirements. The primary transparent part, typically a rigid polyester or copolyester material, is printed with a BVOH internal channel support that leaves a lumen after washout. In one configuration, a 3.0 mm internal diameter vessel path is printed with a 0.2 mm layer height and a 1.0 mm minimum wall thickness; the printed model is then flushed with a syringe pump at 50 mL/min using water at 37 °C to mimic physiologic temperature without exceeding the heat deflection temperature of the transparent housing. Complete removal of the support from a branched 3.0 mm to 2.0 mm vessel tree takes longer than the nominal bath time because the reduction in channel diameter reduces local Reynolds number at a constant flow rate; periodic alternating forward and reverse flow is used to disrupt dead zones at bifurcations. Because the model is not a finished medical device, ISO 10993-1 biocompatibility evaluation is not triggered for the sacrificial support; the use of non-medical-grade BVOH is restricted to external training phantoms and containerized fluid loops, not to implantable or mucosal-contact parts.
Under room-temperature vulcanization conditions, platinum-cure and condensation-cure silicone overmolding processes use BVOH as a disposable core when the part requires an internal void, bellows convolution, or integrated air passage that cannot be tooled with a rigid metal insert. The core is printed, lightly wiped with a water-dampened cloth, and placed into the mold; silicone is then injected or poured at 20–25 °C and allowed to vulcanize for the schedule specified by the silicone supplier, commonly 16–24 h at 23 °C and 50 % RH. BVOH is selected only when the silicone cure system does not require an oven post-cure above 50 °C, because elevated post-cure can soften the core before demolding and collapse internal cavities. After demolding, the core is dissolved through a 2.0 mm access hole using a water jet or ultrasonic bath. Complete core removal from a convoluted bellows with localized volume of 8 cm³ may require 4–12 h in a recirculating bath at 35 °C; published data for this specific configuration is limited, and qualification is performed gravimetrically by weighing the molded part before and after a 24 h desiccant dry. Residual BVOH is considered absent when rinse water pH change remains below 0.1 pH units after the part reaches constant mass. Silicone mechanical properties are validated separately per ISO 37 using witness plaques, because the washout core does not contribute to final part strength.
| Verification target | Method / standard | Unacceptable boundary |
|---|---|---|
| Primary rigid part tensile modulus | ISO 527-2 | Deviation from primary material datasheet after 24 h water immersion |
| Primary part water absorption | ISO 62 | Mass increase above datasheet limit at 23 °C / 24 h |
| Composite laminate void content | ASTM D2734 | Void content above project specification on witness panel |
| Silicone tensile / elongation | ISO 37 | Loss of specified elongation at break after washout sequence |
| TPU Shore A hardness | ISO 7619-1 | Hardness shift outside compound specification after 24 h water contact |
| TPU compression set | ISO 815 | Set above specified limit at 23 °C / 70 h |
Within footwear lattice midsoles and midsole prototypes printed from thermoplastic polyurethane, BVOH support is used inside auxetic and columnar lattice voids where mechanical support removal would tear thin cell walls. The primary TPU is printed at its recommended nozzle setpoint, while the BVOH support is printed at 190–210 °C. The support must be printed with a dense interface floor at 0.2 mm layer height to prevent TPU sag into the lattice openings; a sparse internal support fill of 20–40 % is sufficient for stability and reduces washout time. After printing, the midsole is placed in a water bath at 30–40 °C with intermittent mechanical flexing. Long immersion of TPU in water can produce a hardness shift; the part is therefore conditioned and tested after washout according to ISO 7619-1 Shore A durometer and ISO 815 compression set using a 6 mm thick specimen. If the TPU compound has a Shore A hardness below 85 A, support dissolution must not exceed 24 h because water-induced plastication may temporarily alter the measured hardness beyond the compound specification.
For architectural massing models with cantilevered slabs and open atrium soffits, BVOH supports are printed under unvented overhangs and dissolved in cool water at 20–25 °C to avoid distortion of the thin PLA or PETG shell. No further process control is required beyond the standard pre-drying and interface offset settings used for general BVOH support work.
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BigRep BVOH is a water-soluble support filament based on butenediol vinyl alcohol copolymer. The product is supplied as a natural translucent monofilament with a nominal diameter of 2.85 mm and a diameter tolerance of ±0.05 mm, packaged in net spool masses of 0.75 kg, 2.3 kg, and 4.5 kg. Its primary function is the construction of sacrificial support geometry in large-format fused filament fabrication systems equipped with dual extrusion. After printing, the support lattice is removed by immersion in water, leaving the interface on the build material without the mechanical load or solvent exposure required by breakaway or solvent-soluble support classes.
The butenediol comonomer in BigRep BVOH introduces an unsaturated diol unit into the vinyl alcohol polymer chain. This structural feature disrupts the regular hydroxyl spacing found in fully hydrolysed polyvinyl alcohol, reducing interchain hydrogen bonding and crystallinity. The lower crystallinity increases water penetration into the support lattice and is responsible for faster dissolution relative to many PVA homo-polymer grades. Because the material remains water-sensitive, its melt processing and storage conditions must be controlled more tightly than water-insoluble support polymers.
BigRep BVOH is specified for direct-drive, large-format extrusion heads accepting 2.85 mm filament. The manufacturer-defined extrusion temperature range is 190–210 °C. Build platform temperature is specified at 40–60 °C to maintain adhesion of the first support layer without requiring a heated chamber. Nozzle diameters from 0.8 mm to 1.2 mm are typical in large-format applications; the material’s shear-thinning behaviour under extrusion allows deposition across this diameter range, provided the hotend control loop remains stable within the specified temperature window. Pre-drying at 60 °C for a minimum of 4 h in a forced-air dryer or vacuum oven is specified before processing. Operators should verify that drying equipment maintains temperature uniformity across the spool, because thermal gradients can cause localized softening of the filament windings.
| Parameter | Specified range/value | Condition or method |
|---|---|---|
| Filament diameter | 2.85 mm ± 0.05 mm | Laser micrometer, room temperature |
| Net spool masses | 0.75 kg, 2.3 kg, 4.5 kg | Vacuum-sealed spool |
| Extrusion temperature | 190–210 °C | Direct-drive dual extruder, 0.8–1.2 mm nozzle |
| Build platform temperature | 40–60 °C | Borosilicate, PEI, or polyimide surface |
| Pre-drying | 60 °C for 4 h | Forced-air dryer or vacuum oven |
| Support removal medium | Water, 20–40 °C | Agitated bath or ultrasonic tank |
The upper temperature limit is process-critical. Residence time above 210 °C promotes chain scission, yellowing, and carbonaceous residue accumulation in large-format heated nozzles. Conversely, extrusion below 190 °C increases melt viscosity and may raise motor torque on direct-drive extruders, causing skipped steps and uneven support bead width. Melt flow rate measurement for incoming lot validation can be performed under ISO 1133-1:2022, but the sample must be dried before testing to prevent hydrolysis artefacts.
Unlike polyvinyl alcohol, which is a homo-polymer of vinyl alcohol units, BVOH carries an unsaturated butenediol co-unit that reduces the degree of interchain hydrogen bonding. The practical effect is a lower tendency to retain water at room humidity and a shorter dissolution time in an agitated water bath. This does not mean the material can be exposed to ambient humidity without consequence; its processing limit is shifted relative to PVA. In contrast, high-impact polystyrene support demands a terpene solvent such as D-limonene. Water is the only removal medium required for BVOH. That replacement removes flammable or odorous solvent handling from the post-processing line and reduces volatile organic waste streams.
Published quantitative side-by-side comparisons of BigRep BVOH and a specific PVA grade are limited. Differences in support lattice density, water temperature, agitation, and dissolved solids loading dominate the total removal cycle. Process transfer from a PVA recipe should therefore include a dissolution-rate verification using the actual part geometry and bath configuration, not merely a material substitution.
Storage and drying limits are not advisory. The spool is vacuum-sealed at packaging. Once opened, it should remain in a desiccant-charged dry box above the printer or be returned to a vacuum chamber during idle periods. Prolonged exposure to relative humidity above 50 % causes the monofilament to absorb water, which hydrolyses during melt processing. The resulting steam produces voids in the extruded support bead, reduces melt strength, and can delaminate the support interface. Large-format machines with heated build volumes above 35 °C accelerate the effect of residual moisture. For builds longer than 8 h, active drying or a sealed dry-box feed is a practical requirement. Drying should be carried out at 60 °C; drying above 70 °C may soften adjacent windings and cause spool feed failure. Moisture uptake under controlled humidity can be measured according to ISO 62:2008; the resulting isotherm is useful for determining maximum open-spool time in a specific production environment.
In a dual-extrusion sequence, BigRep BVOH is deposited from the support extruder against a build material such as PLA or PETG. The interface must survive the shear forces generated by the moving print head and the shrinkage of adjacent build layers; it must then release under water without leaving residue. The specified platform temperature range of 40–60 °C supports this balance. At lower platform temperatures, the first support layer can lift from the bed, particularly on dense support rafts. At temperatures above 60 °C, dimensional distortion of thin support walls can occur before the build material is printed.
Layer-to-layer bonding of the support bead is governed by interdiffusion of molten polymer at the contact line. If the support extruder temperature is set too low, the bead becomes matte and brittle, and the interface may fail during the build. If the temperature is set too high within the window, the support surface remains glossy but can string excessively between support columns. A starting extrusion setting of 195 °C for 1.0 mm nozzles provides a reference point; the exact value is adjusted according to print speed and layer height. For large-format deposition with layer heights above 0.4 mm, the nozzle temperature should be moved toward the lower half of the specified range to reduce thermal degradation during long residence times.
Because the support polymer contains hydroxyl groups, it forms hydrogen bonds with polar build materials such as PLA and PETG. For nonpolar build materials, adhesion is primarily mechanical rather than polar, so support raft density and pillar diameter must be increased to prevent premature release. In large-format parts with long unsupported spans, a sacrificial raft layer improves edge retention during cooling and reduces warpage-induced support separation.
Support removal is conducted by immersion in water at 20–40 °C. Agitation shortens the cycle; ultrasonic tanks can further accelerate removal but may damage thin-walled build sections under 1.0 mm thickness. Warm water above 40 °C is not necessary and may soften amorphous build materials. The bath should be replaced or filtered when polymer concentration rises, because saturated support solution slows dissolution and can deposit a film on re-immersed parts. In blind channels, periodic flushing with a syringe or peristaltic pump is more effective than static immersion because it removes dissolved polymer from the cavity.
Dissolution rate is not a single material parameter. It is a function of water temperature, agitation, dissolved solids concentration, support surface area-to-volume ratio, and channel geometry. Experimental quantification can be performed by printing a reference lattice of known mass, immersing it in a temperature-controlled water bath, and recording mass loss over time. The resulting curve is specific to the bath geometry and should be used only for process control on that line. Mechanical test coupons printed with BigRep BVOH can be evaluated according to ISO 527-2:2012 or ASTM D638-14, but test values depend on drying state, print orientation, and raster angle.
Incoming lot checks often include diameter measurement with laser micrometer and melt flow rate under ISO 1133-1:2022. Diameter variation outside ±0.05 mm can create inconsistent feed rates and over-extrusion or under-extrusion at the support interface; closed-loop extrusion control is otherwise required to keep support bead width within tight limits. Support feed failure is a significant process risk because a jam may not be immediately visible at the nozzle, so a filament run-out or jam sensor on the support extruder is recommended for long production runs.
Regulatory documentation for BigRep BVOH is supplied through a safety data sheet prepared under Annex II of Regulation (EC) No 1907/2006. The product is not certified for food-contact use. Wastewater discharge containing dissolved support polymer should be reviewed against local limits for total suspended solids and biochemical oxygen demand. The user is responsible for verifying that the final end-use article meets applicable end-product directives, such as Directive 2011/65/EU as amended by (EU) 2015/863 for restricted substances; support material removed before end-use does not automatically confer compliance on the build material.
| Standard or regulation | Designation | Application and constraint |
|---|---|---|
| Registration, Evaluation, Authorisation and Restriction of Chemicals | Regulation (EC) No 1907/2006, Annex II | Safety data sheet preparation for importing and downstream use |
| Classification, labelling and packaging | Regulation (EC) No 1272/2008 | Hazard communication for the supplied spooled filament |
| Restriction of hazardous substances | Directive 2011/65/EU as amended by (EU) 2015/863 | Relevance limited to the finished article after support removal |
| Tensile properties of plastics | ISO 527-2:2012 | Printed coupon testing; orientation and moisture must be controlled |
| Standard test method for tensile properties of plastics | ASTM D638-14 | Alternative tensile evaluation for batch comparison |
| Melt flow rate of thermoplastics | ISO 1133-1:2022 | Lot-to-lot viscosity verification after pre-drying |
| Water absorption of plastics | ISO 62:2008 | Moisture uptake measurement for storage optimisation |
One production scenario that exploits the water solubility of BVOH is the fabrication of sacrificial internal cores for hollow castings or composite layups. The core is printed on a large-format dual-extrusion system, then the surrounding tooling material is applied or laid up, and the core is washed out after cure. This process can remove the need for machined collapsible cores and reduces extraction damage in enclosed channels. Published data for this specific configuration with BigRep BVOH is limited, so qualification should include a cure-temperature study because residual moisture in the support core can create voids in thermoset overlays. For such applications, a pre-overcoating drying step at 60 °C is used before resin application.