| Код ТН ВЭД | 481960 |
Как аккредитованный завод DruckWege TYPE D GINGIVA Functional UV Resin For Dental Modeling, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
DruckWege TYPE D GINGIVA Functional UV Resin For Dental Modeling is a photopolymerizable methacrylate-based material for 385 nm and 405 nm DLP/LCD dental model printers. The uncured resin is supplied at a representative viscosity of 450–650 mPa·s at 25 °C, which supports recoat cycles on 50 µm platforms; actual viscosity should be re-measured after storage and before large build jobs. Cured specimens post-cured at 40 °C for 5 min per side using 405 nm LED emission at 60 mW/cm² typically fall between Shore A 65 and 80 when measured on 6.0 mm stacked slabs. These values are starting points for dental laboratory validation, because printer optics, layer thickness, wash duration, and post-cure geometry alter final mechanical properties. The cured resin is intended for extraoral dental modeling applications and is not indicated for long-term intraoral mucosa contact; finished devices must be assessed under applicable market regulations such as EU MDR 2017/745 or FDA 21 CFR Part 820 Quality System Regulation where applicable. Amine-based accelerators or additives should not be mixed with the uncured resin because they can reduce pot life and promote premature thermal crosslinking in storage.
| Standard | Title / Scope | Test condition | Application boundary |
|---|---|---|---|
| ISO 10993-5:2009 | Biological evaluation of medical devices — in vitro cytotoxicity | L929 MEM elution, 24 h extraction | Establishes non-cytotoxic cured resin for dental laboratory handling |
| ISO 10993-10:2021 | Sensitization and skin irritation | Guinea pig maximisation or LLNA; patch testing for handlers | Supports safe contact during repeated laboratory manipulation only |
| ISO 13485:2016 | Medical devices — QMS | Clause 7.5.2 production process control | Batch traceability and process documentation in dental lab printing lines |
| ISO 20795-2:2013 | Dentistry — base polymers — orthodontic base polymers | Flexural modulus, water sorption | Reference for orthodontic model substrate performance, not as final base polymer |
| ISO 527-2:2012 | Plastics — tensile properties | Type 5A, 5 mm/min | Mechanical characterisation for research and quality control |
Implant planning workflows impose specific constraints on soft tissue replica materials because the removable gingiva mask must be seated and removed over rigid implant osteotomy models without tearing thin margins around analogue sites. The resin is processed at 100 wt% in a dedicated build tray; for lower Shore A hardness, a starting blend of 20–30 wt% GINGIVA with a rigid aliphatic urethane methacrylate model resin is used, producing a representative Shore A range of 68–84 after full post-cure. Blend homogeneity should be verified at 25 °C for 24 h because phase separation in mixed methacrylate systems can generate tacky surfaces and local Shore A variation. The production process uses a 405 nm DLP printer with 50 µm layer thickness; exposure time is set between 2.0 s and 3.5 s per layer to achieve interlayer overcure of 1.2–1.5× for adequate tear resistance at thin margins. Printed parts are washed in two-stage 99.9% isopropanol; the first bath runs for 3 min and the second for 2 min in a 40 kHz ultrasonic cleaner. Air drying follows for 30 min at 23 ± 2 °C. In multi-printer dental laboratory environments, ambient relative humidity above 60% during drying has been observed to produce surface haze on thin masks; forced-air drying at 30 °C reduces this condition. Post-curing is conducted with a 405 nm LED flood unit at 60 mW/cm² and 40 °C for 5 min per side, with the part immersed in glycerin to suppress oxygen-inhibited surface layers. Cytotoxicity is assessed according to ISO 10993-5:2009 L929 MEM elution, and skin sensitization according to ISO 10993-10:2021. The terminal product type is an implant surgical planning model with removable simulated gingiva for drill position verification and screw access channel inspection.
In crown and bridge model production, the resin is printed as a removable soft tissue collar that surrounds prepared dies. The collar is processed at 100 wt%; no reactive diluent is recommended because viscosity at 25 °C, typically 450–650 mPa·s, allows stable recoat cycles of 2.0–4.0 s on 50 µm LCD/DLP platforms. Resin trays left idle for more than 24 h in the printer should be re-homogenized and checked for viscosity drift because surface oxygen inhibition can create a boundary layer that reduces first-layer cure. For collar walls below 0.5 mm, a blend containing 10–15 wt% rigid dental model resin improves green strength during ultrasonic washing but may raise Shore A by 5–8 units, so tensile characterization per ISO 527-2:2012 Type 5A is required after each batch change. The CAD workflow segments the prepared die and soft tissue contour, hollows the collar to 1.0–1.5 mm wall thickness, and sets support placement away from finish lines. Printing is performed at 50 µm or 35 µm z-resolution depending on margin-definition requirements. Washing uses two-stage 99.9% isopropanol: 3 min in the first ultrasonic bath at 40 kHz, 2 min in the second, then 30 min forced-air drying at 23 ± 2 °C. Post-curing at 405 nm and 60 mW/cm² is applied for 4–6 min per surface. Because the cured collar is an extraoral model component, biocompatibility is limited to laboratory handling per ISO 10993-5:2009; production records follow ISO 13485:2016 Clause 7.5.2 for process control and batch traceability. The terminal product type is a crown and bridge working model with removable dies and a flexible gingiva collar for margin access.
Dimensional stability becomes the controlling variable when orthodontic models are used as thermoforming substrates for clear aligner shells. The resin is processed at 100 wt% for the gingival mask portion; where a higher flexural modulus is needed for thin model bases, a blend of 15 wt% rigid model resin is a validated starting point. In production-scale dental laboratories, batch-to-batch viscosity variation of ±50 mPa·s at 25 °C can alter recoat thickness and dimensional output; inline viscosity measurement is recommended before each build session, especially when multiple 405 nm DLP/LCD printers run in parallel. The production process includes hollowing the model base to 2.0 mm wall thickness, printing at 50 µm layer thickness with 1.2× overcure, two-stage 99.9% isopropanol washing, and 45 min drying at 23 ± 2 °C. Post-curing runs for 5 min per side at 40–60 °C under a 405 nm LED array at 60 mW/cm²; this stabilizes shrinkage to the dimensional window required for model accuracy. The material is assessed against ISO 20795-2:2013 as a reference for orthodontic model substrate behavior, not as a final base polymer; cytotoxicity testing per ISO 10993-5:2009 is also required for laboratory handling. The terminal product type is a thermoforming model with simulated gingiva base used for aligner fabrication. Repeated exposure to thermoforming temperatures above 70 °C may soften the flexible mask; published data for this specific configuration is limited, so process validation is required before high-temperature sheet adaptation.
Periodontal defect and surgical training models require elastic recovery without permanent deformation when thin defect walls are manipulated during flap simulation. The resin is printed at 100 wt% for full soft tissue models; for defect walls below 1.0 mm, a 5–10 wt% addition of rigid model resin reduces tear propagation by increasing tear strength, but raised Shore A must be verified against the desired haptic response. Careful removal of supports before post-cure prevents tearing of thin defect walls; this is a common failure mode on training models with wall thickness at or below 0.5 mm. The production route begins with CBCT or intraoral scan segmentation, retaining voxel-based defect morphology by printing at 35 µm z-resolution with 1.3–1.5× overcure. Equipment requires a 405 nm DLP printer with a 37 µm pixel size; printed parts are washed in two-stage 99.9% isopropanol for 3 min per stage in a 40 kHz ultrasonic bath. Post-curing is carried out under glycerin in a 405 nm LED unit at 60 mW/cm² and 40 °C for 6 min per side to minimize oxygen-inhibited residual tack. Compliance for these training models includes ISO 10993-5:2009 for cytotoxicity and ISO 10993-10:2021 for skin sensitization during repeated manipulation. Because the parts remain extraoral, no long-term intraoral biocompatibility claim is made. The terminal product type is a periodontal pathology teaching model or flap surgery trainer with removable soft tissue replicas.
When a diagnostic wax-up is transferred between laboratory and clinic, the soft tissue mask is repeatedly seated and removed from a stone or rigid printed cast. The resin is printed at 100 wt% for the gingival mask; when harder handling is required, a starting blend of 25 wt% rigid methacrylate model resin produces a representative Shore A hardness of 65–75 after 5 min dual-side post-cure at 40 °C. The production process includes designing a uniform soft tissue shell of 0.8–1.2 mm thickness with internal retention features, printing at 50 µm z-resolution on a 405 nm LCD printer, two-stage 99.9% isopropanol washing for 2–3 min per stage, and post-curing under 405 nm LED at 60 mW/cm² for 5 min per side. The mask is fitted to the diagnostic wax-up model; repeated removal cycles should be validated by measuring Shore A retention and tearing after 100 cycles because published data for this specific configuration is limited. Storing the post-cured mask in dry conditions below 50% RH slows hygroscopic dimensional change. Standards include ISO 10993-5:2009 for elution cytotoxicity, ISO 10993-10:2021 for sensitization, and ISO 527-2:2012 for tensile property documentation. The terminal product type is a diagnostic wax-up verification model with removable soft tissue contour used for patient communication and prosthetic planning.
Конкурентоспособные DruckWege TYPE D GINGIVA Functional UV Resin For Dental Modeling цены, 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!
DruckWege TYPE D GINGIVA Functional UV Resin For Dental Modeling is a photopolymerizable vat-resin system intended for additive fabrication of gingival analogue surfaces on dental models. The TYPE D designation identifies a product grade within the manufacturer’s series; it is not a durometer scale and should not be read as Shore D hardness. Published batch-specific compositional data for this proprietary formulation is limited, so process parameters must be validated against the certificate of analysis and the specific 405 nm LED/LCD engine in use.
In 405 nm vat photopolymerization, the working curve of the resin should be determined with a dedicated exposure test matrix before production. For pigmented gingiva-type formulations, light attenuation from dispersed pigments reduces penetration depth relative to clear model resins, requiring lower layer thickness or higher exposure energy. The Jacobs equation, Cd = Dp ln(E/Ec), is applied to derive penetration depth and critical energy; layer thickness should not exceed approximately 0.8 Dp for reliable interlayer adhesion. Build-platform temperature is maintained between 20 °C and 28 °C, with resin viscosity conditioned to the printer manufacturer’s recommended range.
Viscosity at 25 °C is process-critical. Class-level values for flexible dental modeling resins commonly fall between 500 mPa·s and 900 mPa·s, and may be higher when inorganic thixotropic fillers are present. If the resin falls below 20 °C, viscosity rise slows recoating and can generate pit defects on large full-arch cross-sections. Above 30 °C, dark polymerization risk increases and the working curve shifts. A conditioned build chamber set to 25 ± 2 °C is preferable for extended build areas, particularly when the printer has no jacketed vat.
Green-state tensile integrity at thin gingival collar sections is the principal process constraint. Class-typical exposure windows for flexible dental modeling resins on LCD/DLP platforms are reported as 2.0–4.0 s per 50 µm layer at 4.0 mW/cm²; however, published data for this specific configuration is limited, and batch variations in photoinitiator content can shift the optimum exposure by ±0.5 s or more. A validation grid should print wall thicknesses of 0.4 mm, 0.6 mm, 0.8 mm, and 1.0 mm, with the lowest acceptable value determined by intact support removal and absence of delamination.
Underexposure produces interlayer separation and poor basal plate adhesion, while overexposure increases lateral polymerization, enlarges XY dimensions, and fills fine gingival sulcular detail. For this resin class, dimensional error in occlusal and cervical regions can exceed 0.15 mm on a 60 mm arch span when exposure is not optimized. Layer separation at the build platform can be reduced by using a raft with a base exposure of 2–3× the nominal layer exposure; raft removal must occur before post-cure to avoid brittle fracture of the cured base.
On LCD printers with a collimated light source, large flat cross-sections of a full-arch gingival base generate high separation forces. Failure modes observed on production-scale equipment include partial raft delamination, mid-arch layer separation, and resin vat film deformation at peel velocities above 120 mm/min. Reducing peel velocity to 60–90 mm/min and optimizing build angles reduces these failures. A transition zone of 3–5 layers between raft and model is used to gradually lower exposure; abrupt exposure changes can leave a weak interfacial plane.
Post-cure protocols for this class of gingival analogue resin typically use a rotating 405 nm LED chamber delivering a total radiant exposure of 8–12 J/cm². Insufficient post-cure leaves residual monomer, reduces Shore A hardness, and compromises tear strength per ISO 34-1. Extended post-cure beyond the upper exposure threshold raises crosslink density, increases hardness, and reduces elongation at break, shifting the material away from its functional gingival response. Specimens should be conditioned at 23 ± 2 °C and 50 ± 5 % RH for at least 24 h per ISO 291:2008 before destructive testing.
Post-cure exotherm can raise the local temperature of thick models above 60 °C when multiple models are loaded into a high-intensity LED chamber. Thermal excursion during post-cure distorts thin labial and buccal gingival walls. A staged post-cure cycle consisting of 5–10 min at low irradiance, followed by a higher-irradiance completion step, is recommended for full-arch models with wall thicknesses below 1.2 mm. If the chamber surface temperature exceeds 50 °C, irradiance or chamber load should be reduced.
In implant model workflows, the gingival analogue must permit removal and reinsertion of a simulated soft-tissue mask around implant analogs without plastic deformation. That requirement differentiates TYPE D GINGIVA from rigid acrylic or epoxy model bases. The functional resin should exhibit sufficient tear strength to resist splitting at thin interdental papillae. Tear resistance is evaluated under ISO 34-1:2015 using trouser or crescent specimens; comparative interpretation requires noting that geometric stiffness in the printed model, not resin hardness alone, controls insertion and withdrawal forces.
Mechanical acceptance criteria should include Shore A hardness under ISO 7619-1:2010, tensile strength and elongation at break under ISO 37:2017, and flexural modulus under ISO 178:2019. Class-level flexible dental modeling resins commonly fall within Shore A 60–80. Values below this range may show excessive deflection on unsupported arch spans, while values above this range reduce tactile tissue simulation. Published product-specific data is limited, so batch certificates and representative printed bars should be used for incoming inspection.
| Property or endpoint | Method or standard | Status for DruckWege TYPE D GINGIVA |
|---|---|---|
| Shore A hardness | ISO 7619-1:2010 | Class-level data for flexible gingival resins commonly sits at 60–80; supplier certificate required for exact grade. |
| Tensile strength and elongation | ISO 37:2017 | Published product-specific data limited; printed test specimens should be used for incoming inspection. |
| Tear strength | ISO 34-1:2015 | Relevant to thin interdental papillae; product-specific data not stated in public documentation. |
| Flexural modulus | ISO 178:2019 | Not published; determine on conditioned bar specimens. |
| Cytotoxicity | ISO 10993-5:2009 | Not stated; request supplier certificate for extraoral model handling or any tissue contact. |
| Water absorption | ISO 62:2008 | Not specified; moisture uptake alters Shore A and dimensional stability. |
Build orientation introduces anisotropy. Tensile specimens printed with their long axis parallel to the build plate show higher elongation and lower modulus than vertically printed specimens because of interlayer boundary effects and direction-dependent conversion. When the gingival analogue is printed in multiple orientations across a full-arch model, the effective modulus can vary by 20–40 % between anterior and posterior regions. This variance should be considered when measuring passive fit of implant-supported frameworks on the printed model.
Volumetric shrinkage in methacrylate photopolymers of this class is typically 2–4 % after full conversion. Linear shrinkage on printed dental arches is not uniform because constrained cure at interfaces, layer orientation, and filler content modify the resultant strain. For a full-arch model of 60 mm posterior span, linear shrinkage error can reach 0.1–0.3 mm if the model is not scaled in the build-preparation software. Die and implant analog positions should be compensated from measured arch error on a printed calibration standard rather than from nominal resin data alone.
Cleaning protocols must avoid solvent-induced swelling. Residual resin is removed in a two-stage 99 % isopropanol bath under ultrasonic agitation, with a typical first-stage dwell of 2–5 min. Prolonged immersion beyond 10 min in isopropanol can plasticize the partially cured network, swell fine margin details, and reduce Shore A hardness. After washing, models are air-dried with filtered compressed air at 1.5–2.0 bar and post-cured. Acetone, ethyl acetate, and chlorinated solvents are incompatible because they can induce stress cracking in methacrylate networks. Water exposure before post-cure should be minimized; residual water in the network can reduce final crosslink density.
When TYPE D GINGIVA is combined with rigid printed model bases, the interface between the rigid and flexible regions must be designed as a mechanical interlock or a butt joint with sufficient thickness, because chemical bonding across different photopolymer networks cannot be assumed. A dovetail or perforated interlocking zone of 1.5–2.0 mm depth reduces shear failure at the material transition. Differential polymerization shrinkage between rigid and flexible layers can cause interfacial distortion during post-cure; the post-cure cycle should therefore be staged, with an initial low-irradiance step to allow stress relaxation.
The principal difference from conventional rigid dental model resins is the lower flexural modulus and higher elastic recovery, which allows the printed gingival mask to be removed and reseated. Compared with hand-applied silicone gingival masks, the printed photopolymer route eliminates manual flasking and provides digitally repeatable anatomy, but it may not match the tear resistance and elongation of high-performance platinum-cure RTV silicone elastomers. Compared with general-purpose flexible photopolymer resins, a gingiva-specific material should provide shade consistency under D65 dental operatory lighting and reduced filler settling; the degree to which TYPE D GINGIVA achieves this must be verified with batch-level spectrophotometric records.
As a functional UV resin, the formulation may combine acrylate and methacrylate functional groups; such mixed functionality can increase overall conversion but also introduces a faster initial polymerization rate, shrinking the exposure window at higher irradiance. The presence of red-shade pigments and opacifying agents such as titanium dioxide can absorb significant energy in the 385–405 nm range, reducing cure depth and requiring longer exposure than clear orthodontic model resins. An exposure test matrix should therefore cover 1.5 s to 6.0 s at 50 µm nominal layer thickness in 0.5 s increments. Overcure is identified by blanching of the gingival shade, loss of sulcular surface detail, and positive dimensional error on a calibrated arch reference standard.
Oxygen inhibition at the resin surface reduces conversion of methacrylate double bonds and can leave a tacky surface. In vat photopolymerization, the oxygen concentration at the build interface may be lower than in open coating, but the post-cure surface can still show a conversion gradient. Post-curing under an inert atmosphere or in a glycerin bath improves surface hardness and reduces residual monomer; if a glycerin immersion protocol is used, the model must be thoroughly washed and dried before implant analog placement or gypsum contact.
Residual monomer content after post-cure should be verified if the model will contact implant analogs, dies, or gypsum products. Methacrylate monomers can act as plasticizers and may soften adjacent gypsum or contaminate implant surfaces. Extraction studies under ISO 10993-12:2012 and gas chromatography may be required for laboratory accreditation; published data for this product is limited. In practice, models with a greasy or persistent monomeric odor after post-cure have not reached sufficient conversion and should be returned to the post-cure chamber or rejected.
Operational boundaries include storage in sealed opaque containers at 15–28 °C, recirculation before use because gingival pigments and inorganic fillers settle, and exclusion of amine-based additives or tin-catalyzed condensation systems that may accelerate premature polymerization. Humidity above 60 % RH during open-vat processing can introduce water into the resin, altering viscosity and final Shore A. The material is intended for extraoral dental laboratory modeling; intraoral or long-term tissue contact would require additional biocompatibility evaluation under ISO 10993-1:2018 and local medical device regulations.
The material has an unopened shelf life typically stated as 12 months from date of manufacture when stored at 15–28 °C in the original opaque container. Once opened, the resin should be protected from ambient light below 500 nm, because stray near-UV and blue light can initiate polymerization. The vat should be covered when not in use, and returned resin should pass through a 190 µm filter to remove partially cured debris. In tropical environments, a desiccant-conditioned storage cabinet reduces moisture uptake and batch-to-batch hardness drift. Final process qualification should include a full-arch calibration print, implant analog passivity check, and Shore A measurement on a representative post-cured gingival margin to confirm that the selected exposure, cleaning, and post-cure sequence remains within the functional specification.