Surface haze in EMS-Grivory Grilamid TR 90 injection-moulded spectacle frames originates less from resin variability than from a residual moisture threshold that sits at
0.08 % by weight. When desiccant drying with a dew point of
−40 °C or lower is not maintained, equilibrium moisture in the amorphous polyamide rises above that threshold within approximately
30 minutes of pellet exposure at
50 % relative humidity, producing hydrolysis during plastication and visible splay on polished temple surfaces. Moulders running
16-cavity eyewear tools on electric injection machines with
25 mm diameter screws and
20:1 L/D report haze defects whenever dryer return-air temperature drifts above the setpoint. The material is processed between
250 °C and
280 °C, but the practical clarity window for wall thickness below
1.4 mm is
265 °C to
270 °C. Below
255 °C, knit-line strength around the hinge lug does not reliably pass lens-retention and flexural durability clauses of
ISO 12870:2016; above
278 °C, optical transmittance at
2 mm declines below
90 % under
ISO 13468-2:2021. Cavity transducers are used to hold packing pressure between
600 bar and
900 bar to prevent sink marks at the hinge boss, while mould temperature is maintained at
60 °C to
80 °C. Mould temperatures below
55 °C freeze in amorphous-phase orientation that appears as birefringence under crossed polarizers; temperatures above
85 °C extend cycle time without a corresponding transmittance gain. Running
100 % virgin resin is standard for transparent optics; validated dry sprues are limited to
0.5 wt% maximum and only when batch moisture is confirmed below
0.06 %. Bulk tinting is performed at
0.5 wt% to
2.0 wt% masterbatch for transparent colours and
2.0 wt% to
4.0 wt% for opaque frame formulations. Terminal parts include prescription fronts, sunglass frames, and child-safe frames subjected to
ISO 12870:2016 mechanical testing, including dimensional stability at
55 °C, lens retention, and repeated flexural fatigue.
How Does Shear Heating Close the Optical Clarity Window in Medical Device Housings?
Transparent infusion pump housings, luer-activated valve bodies, and dental handpiece shells use Grilamid TR 90 because the material tolerates repeated exposure to quaternary ammonium disinfectants and lipid-based cleaning agents without environmental stress cracking. Medical moulding is typically performed under
ISO 14644-1 class
8 or better, with diamond-polished tool surfaces to
SPI/SPE A1 and ejector-pin clearances below
0.005 mm to minimize particulate entrapment. The dominant process conflict is shear heating: with a barrel setpoint of
270 °C and local shear rate above
100 000 s-1, melt-front temperature can exceed
285 °C, producing a yellow shift and reducing transmission from
92 % to below
88 % at
1 mm wall thickness. Fill simulations are therefore required to keep shear-induced temperature rise below
10 °C, and cavity-wall temperature is held at
70 °C to
80 °C for low residual stress. Regrind is excluded from medical lots unless the specific lot has been validated through
ISO 10993-5:2009 cytotoxicity and
ISO 10993-10:2010 irritation or skin sensitization protocols. Colour masterbatch is restricted to
0.3 wt% maximum and must be medical-grade with full change control. Sterilization is a defining boundary condition. Ethylene oxide cycles at
55 °C with
400 mg/L EO for
3 h do not deform these transparent housings, whereas
121 °C saturated steam can approach or exceed the practical load-bearing use temperature for unfilled PAMACM12. Gamma irradiation at
25 kGy is validated for select grades but introduces a yellow shift that must be accepted in colour specifications or compensated with low-level blue toner. Published data for
50 kGy gamma exposure on this exact MACM12 grade is limited; dose-response testing per
ISO 11137-2 is required for each device geometry and wall thickness. Terminal components include transparent pump housings, fluid couplings, syringe inspection windows, and needle-retaining bodies sterilized by ethylene oxide or gamma radiation, with residual ethylene oxide controlled under
ISO 10993-7:2008.
Process and ratio matrix for EMS-Grivory Grilamid TR 90 across selected downstream segments| Downstream segment | Drying requirement | Melt temperature | Mould temperature | Virgin/regrind allowance | Additive masterbatch ratio |
|---|
| Ophthalmic frames | 80 °C for 4–12 h, dew point ≤ −40 °C | 250 °C–280 °C | 60 °C–80 °C | 100 % virgin; validated dry sprue ≤ 0.5 wt% | 0.5–2.0 wt% for transparent tints |
| Medical device housings | 80 °C for 6 h, residual ≤ 0.08 % | 260 °C–275 °C | 70 °C–80 °C | 100 % virgin | ≤ 0.3 wt% medical-grade masterbatch |
| Cosmetic packaging | 80 °C for 4 h | 250 °C–270 °C | 40 °C–60 °C | 15 % clean regrind for opaque outer shells only | 0.5–1.0 wt% colour |
| Automotive sensor windows | 80 °C for 6 h | 260 °C–275 °C | 70 °C | 100 % virgin | 0.3–0.8 wt% UV masterbatch |
| Industrial sight glasses | 80 °C for 4–8 h | 250 °C–280 °C | 50 °C–70 °C | < 10 % same-lot regrind if clarity is non-critical | none for natural transparency |
| Wearable shells | 80 °C for 4 h | 260 °C–275 °C | 60 °C–80 °C | 100 % virgin | 1.0 wt% colour |
Cosmetic dispensing closures, transparent actuator buttons, and overcap bodies require resistance to ester-based emollients, silicone oils, and ethanol-water formulations. In chemical resistance tests conducted under
ISO 175:2010 using
50 % ethanol at
23 °C for
7 days, Grilamid TR 90 maintains dimensional stability better than polycarbonate in many packaging-relevant fluids, though water absorption of approximately
1.5 % at
23 °C and
50 % RH must be accounted for in thread-diameter calculations. Transparent caps use
100 % virgin resin; opaque outer shells may contain
15 % clean regrind by weight. Brand-specific colours are metered at
0.5 wt% to
1.0 wt% masterbatch. Mould temperature is set at
40 °C to
60 °C for high-gloss surfaces; lower temperatures reduce cycle time but increase visible opacity at thick sections. Gate placement is positioned at the closure knurl rather than the thread root to prevent fatigue cracking when the part is screwed onto glass or metal threads. Finished package components are drop-tested under internal cosmetic-industry protocols; the notched Charpy impact of
10 kJ/m² at
23 °C under
ISO 179/1eA provides a comparator for material selection. Terminal parts include transparent pump housings, snap-fit overcap shells, lipstick bases, dropper bulbs, and fragrance actuator yokes.
When PAMACM12 Replaces Polycarbonate in Automotive Sensor Windows
Replacement of polycarbonate in automotive sensor windows is driven by stress-cracking resistance to plasticizers and cleaning agents, but the substitution is not seamless. Grilamid TR 90 is an amorphous polyamide with a Vicat softening temperature B/50 of
140 °C under
ISO 306; dash-surface temperatures at
100 °C under
1.8 MPa can produce creep in snap-fit geometries unless the part is designed with ribbed reinforcement or metal support. Interior sensor covers are moulded at melt temperatures of
260 °C to
275 °C and mould temperature of
70 °C. UV absorber masterbatch is added at
0.3 wt% to
0.8 wt% for parts exposed to direct sunlight through the windscreen. Fogging performance is evaluated according to
ISO 6452:2021 under
100 °C,
16 h conditions; low-molecular siloxane release agents and external lubricants are eliminated to pass condensate limits. In laser transmission welding, the natural grade is used as the transmitting part and a black PA12 or black Grilamid TR grade as the absorbing component; lap shear strength depends on weld-rib geometry, laser power, and collapse distance rather than resin alone. Thermal cycling from
−40 °C to
85 °C is run under
ISO 16750-4 to confirm snap-fit retention and optical clarity after
1 000 h of heat ageing per
ISO 188 at
90 °C. Terminal parts include ambient-light sensor windows, ADAS camera mounting brackets with transparent lens covers, HVAC panel bezels, and steering-wheel switch lenses.
Industrial Sight-Glass Retainers and Flow-Meter Bodies Demand a Controlled Freeze-Off Layer
Transparent filter bowls, variable-area flow-meter tubes, and seal-carrier windows made from Grilamid TR 90 are specified for water-glycol circuits and petroleum-based hydraulic oil monitoring at continuous service temperatures below
60 °C. The polymer is resistant to aliphatic hydrocarbons, diesel, and mineral oil but is not suitable for concentrated acids, chlorinated solvents, phenols, or strong oxidizing media. Thick-wall sections above
4 mm develop a rapid freeze-off layer because the amorphous melt cools quickly at the mould-wall interface; reducing mould temperature to
40 °C shortens cycle time but introduces internal voids, warpage, and birefringence. Preferred processing uses a
70 °C mould, back pressure of
20 bar to
30 bar, and a profiled injection speed that fills
90 % of the cavity before switching to holding pressure at
400 bar to
600 bar. Post-mould annealing at
80 °C for
2 h is applied to lower moulded-in stress before machining NPT or BSP threads. Stress-crack resistance in mineral oil is assessed by
ISO 175:2010 immersion for
7 days at
23 °C, while surface hardness is batch-checked by
ISO 2039-1. Natural transparency requires
100 % virgin resin for critical sight-glass uses; same-lot regrind below
10 % is accepted only when optical transmission is non-critical. Terminal parts include transparent filter housings, flow-tube bodies, level-indicator windows, and seal-carrier guards.Transparent headset frames and behind-the-ear hearing aid shells are machined from extruded Grilamid TR 90 sheet or injection-moulded in multi-cavity hot-runner tools. The downstream conflict is dimensional after CNC machining and polishing: heat generated during milling can raise local material temperature above
120 °C when feed rate and tool speed are not controlled, producing surface crazing and loss of clarity. Machining shops use carbide tooling with
0.1 mm depth of cut and water-based coolant to hold the part below
60 °C; glass transition temperature measured by DSC is
155 °C under
ISO 11357-2, but localized frictional heating at the cut zone is the practical limit. Injection-moulded wearable shells are produced from
100 % virgin resin with
1.0 wt% colour masterbatch for dark tortoise or crystal tones. Terminal products include augmented-reality spectacle bodies, hearing-aid faceplates, and action-camera protective lens rims, where enclosure strength is evaluated under
IEC 62368-1 and skin-contact irritation under
ISO 10993-5. Ultrasonic welding is used for joining shell halves at
20 kHz with approximately
0.25 mm joint collapse for
1.2 mm wall thickness. Published data for ultrasonic weld strength on this specific PAMACM12 grade is limited; weld-fixture validation per internal protocols is required for each shell geometry.
EMS-Grivory Grilamid TR 90 is an amorphous transparent polyamide designated PA MACM12 under ISO 1043-1, polymerized from bis(3-methyl-4-aminocyclohexyl)methane and dodecanedioic acid. The grade is supplied as natural or colorable granules with a density of 1.00 g/cm³. Injection-molded parts retain non-crystalline optical clarity while exhibiting lower moisture uptake than PA66 and higher impact retention at low temperatures than many amorphous optical polymers. The material is specified for transparent components that must withstand cleaning agents, cosmetic formulations, aliphatic hydrocarbons, and humid service environments without stress cracking. Typical converted forms include spectacle frames, face shields, sensor covers, transparent medical device housings, and optical alignment parts.
| Property | Unit | Typical value | Test method |
| Density | g/cm³ | 1.00 | ISO 1183-1 |
| Tensile modulus, dry | MPa | 1600 | ISO 527-1/-2 |
| Tensile stress at yield, dry | MPa | 60 | ISO 527-1/-2 |
| Tensile elongation at break, dry | % | >50 | ISO 527-1/-2 |
| Charpy notched impact strength, 23 °C | kJ/m² | 9 | ISO 179/1eA |
| Glass transition temperature | °C | 155 | ISO 11357-1/-2 |
| Heat deflection temperature HDT/A, 1.8 MPa | °C | 120 | ISO 75-1/-2 |
| Light transmission, 2 mm | % | 92 | ISO 13468-1 |
| Water absorption, saturation in water at 23 °C | % | 2.5 | ISO 62 |
| Mold shrinkage | % | 0.6–0.9 | ISO 294-4 |
How Does the MACM12 Backbone Influence Processing and Moisture Uptake?
The cycloaliphatic diamine residue in the PA MACM12 chain inhibits crystallization, producing an amorphous morphology with no melting point and a glass transition at 155 °C. The amorphous structure permits visible-light transmission but also bounds the continuous-use temperature below the heat deflection value of 120 °C at 1.8 MPa. Moisture ingress follows an equilibrium-driven diffusion process; saturation in water at 23 °C is approximately 2.5 % by mass under ISO 62, whereas PA66 typically absorbs 8–9 % under equivalent conditions. Absorbed water acts as a plasticizer, lowering dry tensile modulus from 1600 MPa and increasing notched impact at room temperature. Melt processing therefore requires removal of absorbed moisture before plastification. Granules exposed to ambient air above 60 % relative humidity are pre-dried at 80 °C for 4–8 h in a dehumidified-air dryer to a residual moisture content below 0.06 %.
In the melt, the grade is shear-thinning and pseudoplastic. Barrel temperatures from feed to nozzle are set between 230 °C and 260 °C, with a mold temperature of 60–80 °C. Melt temperatures above 280 °C or residence times beyond approximately 10 min accelerate thermal-oxidative chain scission, producing yellowing, gas splay, and loss of elongation. A three-zone screw with L/D 20–25 and a check-ring non-return valve is suitable for screw recovery. Back pressure is normally held at 5–15 bar to homogenize melt temperature without excessive shear heating. The material is not compatible with prolonged hot-water service above 80 °C or with strong acid and polar aromatic solvent exposure; published data for specific concentrations and immersion durations is limited.
Optical Transmission, Refractive Index, and Surface Quality
Light transmission through a 2 mm injection-molded plaque is 92 % according to ISO 13468-1, with haze dependent on mold-surface replication and melt-front weld quality. The refractive index at 589 nm is approximately 1.51. Because PAMACM12 is amorphous, optical anisotropy is lower than in semicrystalline polyamides; however, high molded-in orientation from cold mold walls, undersized gates, or abrupt flow-channel changes produces birefringence visible under polarized light. Mold temperatures at the upper end of the 60–80 °C window improve surface polish transfer and reduce orientation, but extend cycle time and increase cooling energy demand.
For transparent parts with wall thickness below 1.2 mm, cavity filling pressures commonly reach 80–120 MPa. Venting channels of 0.01–0.03 mm depth at the flow front are required to prevent diesel effects and burn marks. Weld lines in multi-gate optical parts are a critical defect source; the material does not completely erase flow-front boundaries, so gate placement must place weld lines outside the optical axis. Surface defects caused by moisture, including silver streaks and micro-voids, are controlled by the pre-drying protocol rather than by raising melt temperature, which would broaden thermal history and increase yellowing.
In production of spectacle frames and transparent housings on multicavity molds, cavity-pressure calculations based on 30–40 MPa mean cavity pressure provide clamp-force estimation. A four-cavity frame mold with 120 cm² total projected area therefore requires approximately 400–500 tonnes of clamp force. Hot-runner systems with externally heated manifolds are used for high-cavitation production, but melt residence in hot runners above 270 °C must be minimized because stagnation zones create color shifts and weak knit regions. Batch-to-batch variation in melt volume-flow rate is observed on production lines; processors should request lot-specific melt flow certificates and adjust first-stage injection speed and holding-pressure decay profiles accordingly.
When PC and PMMA Are Replaced by PAMACM12 in Transparent Load-Bearing Components
Compared with bisphenol-A polycarbonate, Grilamid TR 90 has a lower density of 1.00 g/cm³ versus 1.20 g/cm³ and improved resistance to isopropanol, plasticizers, and aliphatic hydrocarbons. The trade-off is lower tensile modulus: 1600 MPa for PAMACM12 versus approximately 2400 MPa for unfilled polycarbonate. For equal bending stiffness, section thickness must be enlarged or ribbing introduced, which can reduce optical clarity if rib sink marks appear on visible surfaces. Against PMMA, the polyamide has lower surface hardness and lower modulus, but higher elongation at break and substantially better environmental stress-cracking resistance to cleaning agents and cosmetic formulations. PC and PMMA may be preferred where surface scratch resistance or high-temperature load-bearing is dominant; PAMACM12 is selected where low density, chemical resistance, and impact retention in thin-wall geometries are the controlling requirements.
Within the Grilamid transparent polyamide range, TR 90 is positioned for higher thermal resistance and lower moisture sensitivity than lower-viscosity transparent polyamides used for thin-wall moulding. Published direct comparison data against Grilamid TR 55 is available from the supplier for melt-flow-limited geometries, but processors should validate specific dimensional and optical outcomes on their own tooling because gate geometry, cooling rate, and hot-runner shear history influence final part performance. Compared with semicrystalline PA12, PAMACM12 provides optical transparency but lower resistance to some hot-oil and fuel environments; the amorphous phase also produces a sharper yield behavior in tensile loading.
Regulatory and application-specific compliance must be verified against the exact product variant and color formulation. The base polymer can be evaluated under ISO 10993-5 for cytotoxicity and ISO 10993-10 for irritation in medical device screening; however, finished-component responsibility remains with the device manufacturer. For automotive sensor covers and face shields, the material is applied only where continuous service remains below the 120 °C HDT/A limit and where optical path requirements tolerate the refractive index of 1.51. For skin-contact eyewear and wearables, the material is used after component-specific risk assessment under applicable regional regulations. In such applications, production-scale experience indicates that mold temperature control is the strongest process variable affecting dimensional stability, residual stress, and optical appearance.