| Код ТН ВЭД | 190802 |
Как аккредитованный завод BASF 3D Ultrafuse BVOH Fused Fillament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
BASF Ultrafuse BVOH functions as a water-soluble sacrificial support filament in fusion filament fabrication, not as a retained functional polymer. The downstream scenarios below are limited to process configurations where the primary model material remains within the thermal and moisture-absorption bounds of an aqueous dissolution step. All stated support fractions are process ratios calculated as BVOH volume relative to total deposited volume in the sliced build, not melt-compounding formula percentages. Compliance obligations are site- and product-specific; the references cited describe the minimum applicable framework.
In low-volume development of consumer air-handling appliances, the primary polymer is typically a PLA or PETG filament with a glass transition below 65 °C, selected to remain dimensionally stable during the final water dissolution step. BASF Ultrafuse BVOH is printed only as a disposable support at a support-to-model volume fraction of 0.12–0.18 in components such as compact air purifier bypass chambers and coffee machine flow diverters. Because the support material is not part of the retained product, compliance is governed by safety data sheet declarations: REACH (EC) No 1907/2006 and RoHS Directive 2011/65/EU Annex II restricted-substance limits. The downstream process uses a dual-extruder FFF station with a 0.4 mm main-material nozzle and a 0.6 mm BVOH nozzle to lower shear-induced hydrolysis. Before printing, the BVOH spool is dried at 60 °C for 4 h to reduce moisture below the manufacturer-specified ceiling; storage beyond 48 h at relative humidity above 40% requires re-drying. After printing, the part is immersed in demineralized water at 20–25 °C in a magnetically stirred bath for 2–6 h; agitation is limited to avoid gel-like re-deposition of BVOH on internal walls. Finished prototypes are then air-dried at 40 °C for 4 h and inspected via borescope. Terminal outputs are non-saleable development parts: user-trial appliance housings, flow-path verification mock-ups, and assembly fit-check units.
Segmenting a cardiovascular or neurovascular tree from DICOM data with luminal diameters down to 2.0 mm requires support volumes in the 0.22–0.35 fraction of total model volume when printing anatomical replicas in translucent PLA. The production operation is not a medical device manufacturing route; BASF Ultrafuse BVOH carries no documented ISO 10993-1:2018 biological evaluation for patient contact, so the terminal model is designated as non-patient-contact medical education and pre-surgical referral tooling under a hospital or service-bureau quality system structured to ISO 13485:2016. After DICOM segmentation and surface reconstruction, the model is printed on a dual-extruder FFF station at a nozzle temperature of 200 °C for BVOH and 210 °C for the model material, with a 0.25 mm model layer height and 0.15 mm support interface layer height to limit interfacial defects. Dissolution is performed in a demineralized water bath at 30 °C ± 2 °C for 6–12 h; the bath is monitored by conductivity and is refreshed when conductivity exceeds 2,000 µS/cm to prevent redeposition of hydrolyzed BVOH onto fine vessel walls. Because some PLA blends used in anatomical models begin to soften above 55 °C per ISO 75-2:2013 Method B, the immersion temperature is not increased to accelerate dissolution. After removal, residual water is evacuated from lumina by vacuum drying at 35 °C for 4 h. Terminal product types are vascular tree study replicas, endovascular device path-planning models, and non-sterile teaching specimens that are disposed after use, not implanted.
Automotive cabin system prototyping uses BVOH only for non-safety, low-temperature fit-for-assembly geometries such as HVAC duct routing mock-ups and washer-fluid reservoir neck trials, because the product is not rated for underhood temperatures above 60 °C and is not used in a retained chemical-contact path. The support fraction in slicing is configured at 0.15–0.22 of build volume for deep undercuts and internal galleries. Compliance is handled under REACH (EC) No 1907/2006 for substance inventories, but prototype parts are typically outside International Material Data System production reporting unless the receiving OEM specifies otherwise. The process uses a sealed single-nozzle multi-material FFF unit with pre-dried BVOH at 60 °C for 4 h, a model-material layer height of 0.2 mm, and an interface separation of 1.0 mm to preserve dimensional accuracy on duct flange faces. If the primary model is PETG, dissolution is carried out at 35 °C for 4–8 h and followed by 40 °C forced-air drying for 2 h. If the primary model is printed in polyamide 6, direct water dissolution is avoided because of dimensional instability from water absorption; in that configuration the BVOH support is mechanically rough-removed before a final short soak, and the polyamide body is reconditioned at 80 °C under vacuum for 6 h. Terminal outputs are HVAC duct assembly-fit check units, washer reservoir neck mock-ups, and wiring-harness clip layout boards.
FDM-printed polymer end-effectors with internal aspiration channels require a sacrificial fill that can be removed after thermoplastic deposition. BVOH is used as a dense soluble fill at a volume fraction of 0.25–0.35 inside channel networks with minimum channel cross-section of 3.0 mm; smaller channels risk unremoved gel plugs. The main body is typically printed from dimensionally stable PETG or PLA/PHA blend, not from polyamide or high-temperature engineering resins, because the BVOH bed-adhesion window is bounded at approximately 60 °C. Compliance for tooling used on manufacturing lines is evaluated under Machinery Directive 2006/42/EC and ISO 12100:2010 for residual risks associated with compressed-air leak paths; the BVOH itself remains subject to REACH (EC) 1907/2006 obligations. After printing, the end-effector is soaked in demineralized water at 23 °C ± 2 °C for 8–14 h; ultrasonic agitation at 34–38 kHz is permitted only for channel diameters above 4.0 mm because cavitation can erode the PETG channel wall after the BVOH core has softened. Cleaned channels are flushed with 0.2 µm filtered compressed air at 2.0 bar and checked with a borescope. Terminal outputs are vacuum gripper soft jaws, robot end-of-arm aspiration plenums, and assembly-bench vacuum clamping fixtures used at room temperature; these are not certified pressure vessels and are not operated above 1.5 bar positive pressure.
| Application scenario | BVOH support fraction | Water-bath process boundary | Compliance framework |
|---|---|---|---|
| Consumer appliance prototype | 0.12–0.18 by build volume | 20–25 °C demineralized water, 2–6 h, no ultrasonic | REACH (EC) 1907/2006; RoHS 2011/65/EU |
| Medical anatomical model | 0.22–0.35 by build volume | 30 °C ± 2 °C, 6–12 h, refreshed at 2,000 µS/cm | ISO 13485:2016 quality system; ISO 10993-1:2018 not claimed |
| Automotive cabin fit mock-up | 0.15–0.22 by build volume | 35 °C for PETG; polyamide reconditioning at 80 °C vacuum | REACH; no IMDS production-material status |
| Polymer end-effector channel core | 0.25–0.35 by build volume | 23 °C ± 2 °C, 8–14 h; ultrasonic only above 4.0 mm channels | Machinery Directive 2006/42/EC; ISO 12100:2010 |
| Dental aligner arch model | 0.10–0.18 by build volume | 30–35 °C, 2–4 h, no ultrasonic | ISO 10993-1:2018 not claimed; dental laboratory quality system |
Clear aligner thermoforming models require a low-residue support removal process that does not leave material in interdental undercuts. The support fraction is limited to 0.10–0.18 of arch model volume; heavier support volumes increase bath solids and risk deposition in the gingival sulcus region. The printed arch is produced from a dental model polymer; BVOH is removed in 30–35 °C demineralized water in a dental stone trimmer bath without ultrasonic cavitation for 2–4 h. The model is then dried at 40 °C for 3 h before thermoforming. BVOH is not a biocompatible material and does not hold an ISO 10993-1:2018 assessment for patient contact; use is confined to disposable study models and thermoform masters under a dental laboratory quality system. Terminal output classes are aligner forming arches, retainer vacuum-form models, and orthodontic case presentation models.
Конкурентоспособные цены BASF 3D Ultrafuse BVOH Fused Fillament, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.
Мы ответим вам как можно скорее.
Телефон: +8618136850665
Электронная почта: admin@ascent-chem.com
Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!
BASF 3D Ultrafuse BVOH fused filament is a water-soluble support material based on a butanediol-vinyl alcohol copolymer. It is intended for dual-extrusion or toolchanger-type fused filament fabrication where sacrificial support structures must be removed without mechanical access, including internal channels, assembly-in-place features, undercuts, and enclosed cavities. The product is not a structural build material; it is a sacrificial interface and support consumable that is removed after printing by immersion in water.
The material is supplied in two standard diameters: 1.75 mm and 2.85 mm, with roundness tolerance controlled to ±0.05 mm. Extrusion is specified between 190 °C and 210 °C, while the build platform is typically maintained between 20 °C and 60 °C. Because removal occurs by dissolution in neutral-pH water, the filament avoids D-limonene, acetone, or solvent-recovery equipment associated with non-water-soluble support grades. The main distinction from conventional PVA lies in its lower moisture uptake, higher extrusion-temperature stability, and faster dissolution behaviour. Relative to HIPS, BVOH is not restricted to ABS/ASA model materials and does not require a heated solvent bath for support removal.
The butanediol-vinyl alcohol copolymer structure provides hydroxyl functionality distributed along the polymer chain, which allows water molecules to penetrate and disrupt interchain hydrogen bonding. Dissolution begins with surface hydration and proceeds through a swollen gel layer; thin support walls dissolve more rapidly than dense support roofs or large cross-sections because the diffusion path for water is shorter. Static water at 20 °C to 30 °C is sufficient for many geometries, but thick support masses require circulation or repeated water changes to prevent the local water phase from becoming saturated with dissolved polymer. This is a practical limitation of any water-soluble support system, not a failure mode specific to BVOH.
Compared with conventional PVA, BVOH shows a lower tendency to form persistent gel films on the model interface after immersion. This reduces the need for aggressive brushing of thin walls or sharp corners. Published quantitative dissolution rates for specific cavity length-to-diameter ratios and water exchange rates are limited; production users typically validate removal time empirically for each part orientation and support density. The absence of solvent swelling means that the surrounding build material is not exposed to limonene, which can soften some amorphous thermoplastics and alter surface gloss.
Under production-scale dual-extrusion conditions, the filament is fed through a direct-drive or Bowden feed path to a 0.4 mm or larger nozzle. The recommended hot-end set point of 190 °C to 210 °C is selected to balance melt viscosity against thermal degradation. Residence time above 210 °C should be minimised because water-soluble vinyl alcohol copolymers can undergo chain scission and cross-linking at elevated temperatures, producing dark residue or nozzle blockage. A hardened steel or stainless steel nozzle with a polished entry cone is preferred over a brass nozzle when long print jobs are processed, because the slightly abrasive nature of filled model materials in adjacent toolheads is not relevant to BVOH, but nozzle wall deposition can occur over extended idle periods.
Moisture uptake during storage or printing is a critical control variable. Spools should remain in sealed barrier packaging with desiccant until loading. If the material is exposed to relative humidity above 50 % for several hours, pre-drying is recommended before use; a forced-air oven at 60 °C for 4 h is commonly applied for PVA-type filaments, although lot-specific mass-loss data should be obtained from the manufacturer. Wet filament produces steam bubbles at the die, rough melt roads, reduced interfacial adhesion to the model material, and audible popping at the nozzle. Because BVOH is less hygroscopic than conventional PVA, it can tolerate brief ambient exposure better, but it is not moisture-insensitive.
In slicing software, a dense support roof of one to three layers and zero vertical separation above the model surface are often used for soluble supports. BVOH permits a 0 mm z-gap at the soluble interface because the support is removed by dissolution rather than by mechanical peeling. Support infill densities of 15 % to 25 % are typical for box-shaped or linear supports, but higher densities may be required for large overhangs where sag under the molten bead must be constrained. Retraction distances should be kept below the threshold at which filament buckling occurs in unconstrained feed paths; on direct-drive systems, values above 5 mm may increase the risk of feed-path deformation because the material softens at relatively low temperatures. Purge towers and wipe moves are adjusted so that BVOH does not remain in the model toolpath during nozzle switching.
Water-bath removal is governed by three variables: water temperature, agitation, and the thickness of the soluble support cross-section. At 20 °C to 30 °C, thin walls dissolve within a comparatively short period, but dense support plugs in internal channels may require several hours. Raising the water temperature above 40 °C accelerates dissolution but can bring the surrounding model material near its glass transition or heat deflection limit, particularly for PLA or amorphous PETG parts. Ultrasonic agitation can damage thin model features and should be introduced only after confirming that the printed part can withstand the applied acoustic energy.
The main failure modes observed during water-bath removal are swelling-induced residual stress, softening of thin model cross-sections, and incomplete dissolution in blind holes. Blind channels with a single opening are less accessible to natural convection than through-channels. For such geometries, forced circulation or periodic flushing of the cavity with fresh water is required. If the support material is not fully removed, residual hydrogel can dry into a hard film that is difficult to detect visually. A final rinse in deionised water and drying at room temperature under forced air reduces the risk of water staining on the finished part. Because BVOH is water-soluble, parts intended for continuous water exposure or high-humidity service are not suitable for long-term use unless the model material itself is resistant to hydrolytic degradation.
Support selection in multi-material fused filament fabrication is determined by the model material, chamber temperature, and post-processing constraints. HIPS is typically paired with ABS or ASA because both materials share a styrenic base and because HIPS requires D-limonene for removal. BVOH replaces HIPS when the production environment cannot accommodate a heated solvent bath or when the model material is vulnerable to limonene attack. PVA is another water-soluble support, but its processing window is generally lower and its moisture sensitivity is higher. BVOH is therefore selected when the support must tolerate a slightly higher extrusion set point or when spool handling conditions are less tightly controlled.
| Support material | Removal medium | Typical extrusion range | Primary model-material compatibility | Moisture sensitivity |
|---|---|---|---|---|
| BASF 3D Ultrafuse BVOH | Neutral-pH water at 20–30 °C | 190–210 °C | PLA, PETG, ABS, TPU | Moderate |
| Conventional PVA | Neutral-pH water at 20–30 °C | 180–200 °C | PLA, PETG | High |
| HIPS | D-limonene at 23–60 °C | 230–250 °C | ABS, ASA | Low |
For compliance documentation, the material should be handled according to the manufacturer’s safety data sheet. Drying and moisture content are assessed by gravimetric methods, while dimensional tolerance of the filament is checked with outside-micrometer or laser calibrator measurements. Mechanical property data for the sacrificial support material are rarely used as design allowables because the support does not remain in the final part. Where downstream documentation requires mechanical values, testing to ISO 527-2 for tensile properties, ISO 178 for flexural stiffness, and ISO 1183-1 for density is performed on conditioned printed specimens. Published lot-specific data for BVOH under these standards are available from the manufacturer; users should not substitute general PVA data for BVOH when preparing quality records.
When BASF 3D Ultrafuse BVOH is used as a sacrificial core in hollow or interlocking part geometries, the most important process boundary is not extrusion temperature but moisture control during storage and water management during dissolution. The material should not be left in an unsealed spool holder for multi-day print campaigns unless the ambient environment is dry. Filament waste from purge towers and transition zones should be kept separate from the main support spool because partially degraded material can reduce flow consistency in the next build. The support waste is water-soluble, but disposal must follow local wastewater regulations; dissolved polymer should not be discharged in high concentration to recirculating cooling systems or drains without dilution.
The product’s use is confined to process support, not to final-part mechanical function. In applications where the printed component must pass ISO 10993-1 biocompatibility testing, water-soluble support residue must be fully removed and validated on the finished surface because residual BVOH would represent an unintended process additive. Published data for this specific configuration are limited, so testing is performed on representative final parts rather than on raw filament alone.