| HS Code | 119243 |
| Density | 0.954 g/cm³ |
| Melt Flow Index | 0.35 g/10 min (190°C/2.16 kg) |
| Tensile Strength At Yield | 26 MPa |
| Tensile Strength At Break | 30 MPa |
| Elongation At Break | >600% |
| Flexural Modulus | 1000 MPa |
| Notched Izod Impact Strength | 20 kJ/m² (23°C) |
| Shore D Hardness | 66 |
| Vicat Softening Temperature | 125°C |
| Melting Temperature | 133°C |
| Brittleness Temperature | < -70°C |
| Environmental Stress Crack Resistance | >1000 h |
As an accredited Lotte Chemical HDPE HIVOREX 8301B factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 25 kg multiwall paper bags, 40 bags per pallet (1,000 kg net). |
| Container Loading (20′ FCL) | 20′ FCL loading: Lotte Chemical HDPE HIVOREX 8301B, 25 kg bags, palletized, 800 bags, 20 MT net per container. |
| Shipping | Lotte Chemical HDPE HIVOREX 8301B is shipped as non-hazardous polyethylene pellets in 25 kg bags, 1,000 kg jumbo bags, or bulk trucks/containers. Store in a cool, dry, ventilated area away from direct sunlight, heat, moisture, and contaminants. Handle carefully to prevent bag damage and spillage. |
| Storage | Store Lotte Chemical HDPE HIVOREX 8301B in a cool, dry, well-ventilated indoor area, away from direct sunlight, heat, sparks, flames, and oxidizing agents. Keep original packaging closed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and excessive stacking. Follow local regulations and the manufacturer’s SDS for safe handling and storage. Use FIFO stock rotation. |
| Shelf Life | Shelf life is typically 12 months from production when stored in original, unopened packaging under cool, dry, ventilated conditions, away from direct sunlight. |
Lotte Chemical HDPE HIVOREX 8301B is an injection-molding high-density polyethylene positioned within a melt-flow band that supports high-speed filling of thin-section multicavity tools. Incoming lot release should be controlled by ISO 1133-1:2022 at 190 °C/2.16 kg for melt flow rate, ISO 1183-1:2019 method A for density, ISO 527-2:2012 type 1A at 50 mm/min for tensile yield stress and elongation at yield, ISO 178:2019 at 2 mm/min for flexural modulus, ISO 180:2019/A at 23 °C for notched Izod impact, and ISO 294-4:2018 for molded-shrinkage characterization. Because HDPE is hydrophobic, drying is not routinely required at ambient humidity below 60 % RH; however, condensation during cold-weather transport or silo storage can introduce surface moisture that produces splay and gas marks, so hopper drying at 60–80 °C for 1–2 h is advised when granulate temperature is below dew point or when visible moisture is present. Where a specific datasheet value for HIVOREX 8301B is not publicly available, the process settings in this profile are bounded by high-flow injection-molding HDPE class behavior and should not be interpreted as a substitution for lot-specific QA data. The grade is not intended for continuous immersion in strong oxidizing acids, aromatic hydrocarbons, or ketones at elevated temperature. The scenarios below are restricted to commercially established injection-molding routes for HDPE; no additive recommendation is included beyond conventional masterbatch dosage ranges that must be confirmed by the masterbatch supplier under final conversion conditions.
| Compliance Reference | Scope | Threshold or Test Condition |
|---|---|---|
| FDA 21 CFR 177.1520(c) 3.1a | Olefin polymer food-contact use | Density specification for HDPE; extraction limits per regulation |
| EU 10/2011 | Plastic food-contact materials | Overall migration below 10 mg/dm² under Annex III simulants |
| EU Directive 94/62/EC | Packaging heavy metals | Sum of Pb, Cd, Hg, Cr(VI) below 100 ppm |
| REACH Regulation (EC) No 1907/2006 | SVHC communication | Article 33 threshold 0.1 wt% per article |
| RoHS Directive 2011/65/EU | Electrical appliance housings | Pb <0.1 wt%, Cd <0.01 wt%, Hg <0.1 wt%, Cr(VI) <0.1 wt% |
| ASTM D1693 | Environmental stress crack resistance | Condition B, 10 % Igepal CO-630, 50 °C |
| ISO 4892-2:2013 | Accelerated weathering | Cycle 1 exposure intervals of 250 h |
In thin-wall dairy and deli packaging, high-cavitation tools with wall sections of 0.6–1.5 mm require a narrow-viscosity HDPE to fill consistently without gate blush, flow hesitation, or excessive clamp force. Food-contact compliance for the finished article is evaluated under FDA 21 CFR 177.1520(c) 3.1a for olefin polymers and under Commission Regulation (EU) No 10/2011, with overall migration below 10 mg/dm² using aqueous food simulants designated in Annex III; processors should request migration testing from masterbatch suppliers when any colorant concentrate exceeds 0.5 wt% loading. The standard addition ratio is 2.0–3.5 wt% white TiO₂ masterbatch of 35–60 % pigment content, with 0.5–1.5 wt% silica-based antiblocking concentrate added only where nesting friction or release torque is observed on the production line; post-industrial regrind may be incorporated at 10–25 wt% if generated from a closed food-grade loop and revalidated under EU 10/2011 for overall migration and organoleptic neutrality. Production on accumulator-assisted hydraulic or electric toggle presses with screw L/D ≥ 20:1 and compression ratio 2.5:1–3.0:1 uses melt temperatures of 210–235 °C, mold temperatures of 10–30 °C, injection speeds of 180–350 mm/s, holding pressures of 35–60 MPa, and back pressures below 1.5 MPa to prevent shear-induced temperature rise and gate blush; valve-gated hot runners are preferred over cold sprues because the narrow gate vestige reduces post-molding trim and improves stackability. Linear mold shrinkage should be monitored by ISO 294-4:2018 on a standard plaque and compensated in tool design; typical HDPE class shrinkage of 1.5–2.5 % in flow and 1.0–2.0 % in transverse directions creates a risk of ovality in round tubs if cooling channels are not symmetrically placed. Terminal finished products include 200–1000 mL dairy tubs, deli containers, portion cups, and margarine packs; processing failures observed in production include short shots at mold temperatures below 10 °C, warpage after nested stacking, and pin-gate cold slug defects from undersized sprue bushings.
Because returnable logistics crates and nestable distribution totes are molded with wall thicknesses of 2.0–3.5 mm, the process must balance melt flow length, impact resistance at chilled distribution temperatures, and dimensional stability after repeated washing cycles. Compliance for the material component should be verified against ASTM D4976-21 for polyethylene molding and extrusion materials, EU Directive 94/62/EC heavy metal packaging limits with total lead, cadmium, mercury, and hexavalent chromium below 100 ppm, and REACH Regulation (EC) No 1907/2006 Article 33 for substances of very high concern; where crates are intended for direct food contact in produce-handling operations, FDA 21 CFR 177.1520(c) 3.1a and EU 10/2011 apply regardless of the returnable logistics function. Addition of colour masterbatch is typically 1.5–3.0 wt%, with UV stabilizer masterbatch at 1.0–2.5 wt% when outdoor yard exposure exceeds 500 h accelerated weathering under ISO 4892-2:2013 cycle 1; clean post-industrial regrind from trimmed gates and rejected crates may be loaded at 20–35 wt% provided the melt flow rate shift is held within ±2 g/10 min of virgin lot by ISO 1133-1:2022. Processing is performed on hydraulic toggle presses with clamp force between 350–1,200 t depending on crate footprint, using barrel profile 180/200/215/225/230 °C from feed to nozzle, mold temperature 15–30 °C, injection pressure 70–110 MPa, hold pressure 50–70 MPa, and hold time tied to gate freeze rather than fixed timer; multiple valve gates should be opened sequentially to displace weld lines from high-stress corner ribs, and venting depths of 0.02–0.03 mm are required to prevent burn marks at the last-fill areas around handle openings. Terminal finished products include stack-only and nest-plus-stack crates for beverage bottles, bread trays, dairy delivery crates, agricultural picking totes, and ventilated produce boxes; field failures are generally associated with brittle fracture at weld lines after cold impact or with buckling from uneven wall thickness caused by core shift, so mold alignment must be checked with pressure-sensitive film during tryouts.
High-cavitation closure molding for non-carbonated beverage caps, detergent closures, and flip-top dispensing fitments places a disproportionate stress on lot-to-lot viscosity stability because the melt passes through valve gates with diameters of 0.6–1.2 mm at extremely high shear rates, making the process sensitive to contamination, moisture, and regrind-driven molecular weight reduction. Regulatory compliance for food-grade closures is evaluated under FDA 21 CFR 177.1520(c) 3.1a and EU 10/2011, while detergent and agrochemical closures may require certification of the complete closure system under the ADR/RID/IMDG Code Chapter 6.1 for dangerous goods packaging when the finished container is UN-certified; environmental stress crack resistance should be measured by ASTM D1693, condition B in 10 % Igepal CO-630 at 50 °C, because the closure tamper band hinge and thread area sustain hoop stress during application. The formulation addition ratio in a 48–96 cavity hot-runner tool is 2.0–4.0 wt% colour masterbatch for opaque caps, 0.3–1.0 wt% slip masterbatch only for non-food detergent closures to assist unscrewing torque, and 10–20 wt% clean regrind; regrind above 20 wt% should be rejected unless the processor verifies that closure removal torque after capping remains within specification and that ESCR failure time does not drop below the customer-defined threshold. Production uses injection speeds of 120–300 mm/s, melt temperatures of 205–230 °C, mold temperatures of 8–18 °C, holding pressures of 40–70 MPa, and cooling times of 2.5–5.0 s per cavity in closures with wall sections of 0.9–1.8 mm; the screw must have low-shear mixing elements and a non-return valve with compression ratio 2.5:1 to prevent melt-pressure variation at shot sizes below 25 % of barrel capacity. Terminal finished products include screw caps for still and lightly carbonated beverages, tamper-evident detergent caps, child-resistant closures tested to ASTM D3475-20, and flip-top dispensing fitments; published data for this specific configuration is limited regarding organoleptic carryover into fat-containing foods, so food applications with fat simulant D2 require additional migration work.
Across household storage boxes, drawer units, and small appliance housings, wall thicknesses of 1.8–3.0 mm require a combination of flatness, low sink-mark visibility over rib intersections, and consistent surface appearance after colour masterbatch addition. Compliance for these articles is typically governed by REACH Regulation (EC) No 1907/2006 Article 33, RoHS Directive 2011/65/EU Annex II with lead <0.1 wt%, cadmium <0.01 wt%, and other restricted substances at defined limits, and UL 94 HB thickness testing for appliance housing polymers; if the part contains no electrical components and is marketed as a general household item, food contact and toy standards are not automatically applicable unless the distribution channel imposes them. The addition ratio for colour concentrates is 1.0–3.0 wt%, with 0.5–2.0 wt% antistatic masterbatch where dust attraction on storage surfaces is a rejection criterion, and regrind from sprues and rejected parts up to 30 wt%; ratio variations beyond this range can cause visible flow lines because the lower-viscosity regrind component preferentially fills thin rib sections. Amine-based antistatic additives should be avoided in food-contact or potable-water adjacent applications due to organoleptic migration, and halogenated flame retardants are not compatible with standard HDPE recycling streams. Injection molding is performed on standard hydraulic toggle presses with screw L/D of 20:1–24:1, melt temperatures of 190–220 °C, mold temperatures of 20–40 °C, injection pressures of 70–100 MPa, and holding pressures of 35–60 MPa; for flat drawer fronts, sequential gating or film gates are used instead of multiple pin gates to reduce knit lines, and post-mold cooling fixtures may be required when flatness tolerances are below 0.8 mm over 300 mm length. Terminal finished products include stacking storage bins, drawer organizer trays, appliance housing covers, vacuum cleaner components, and iron stand shells; the main production defects are sink marks above ribs, warpage on flat panels due to asymmetric cooling, and gloss variation caused by mold temperature drift, so cavity pressure sensors are recommended for long runs to detect viscosity shifts before dimensional rejects accumulate.
When alkaline detergent exposure is assessed for pail and open-head drum molding, the finished container may be exposed to alkaline solutions, stacking loads in hot warehouses, and low-temperature impact, so processing integrity must be matched to end-use chemical resistance. Compliance for food-grade pails is evaluated under FDA 21 CFR 177.1520(c) and EU 10/2011; for dangerous goods packaging, the pail body and lid system must pass the UN performance tests for drop, leakproofness, hydrostatic pressure, and stacking described in the UN Model Regulations Chapter 6.1, but the raw resin alone does not confer UN certification, which depends on wall thickness, closure design, and processing integrity. The standard addition ratio is 1.5–3.5 wt% colour masterbatch with carbon black content up to 40 % for UV-resistant exterior pails, 0.5–1.0 wt% antioxidant masterbatch only when prolonged hot-fill service above 60 °C is specified, and 15–30 wt% clean post-industrial regrind with melt flow shift limited to ±1.5 g/10 min; because large flat bottom sections are prone to edge-channelling, the regrind fraction should be evenly blended by gravimetric dosing rather than added as a single batch. Processing uses melt temperatures of 210–240 °C, mold temperatures of 15–35 °C, injection pressures of 80–120 MPa, holding pressures of 50–75 MPa, and cooling times of 12–30 s depending on wall thickness from 2.0–4.0 mm; the gate should be a central sprue or valve-gated hot drop with diameter sufficient to avoid freeze-off before hold completion, and the mold should be cooled with bubblers near the handle and sealing rim to minimize differential shrinkage. Terminal finished products include 5 L, 10 L, and 20 L pails, open-head drums with removable lids, tear-band lids, and tamper-evident pail plugs; process failures observed in production include gate blush on the pail base, stress cracking at the handle hinge after alkaline detergent contact, and lid seal ovality from uneven mold cooling.
For horticultural containers, nursery trays, and propagation pots, the injection-molded parts are thin-section articles with drainage hole grids that demand particularly high-flow melt to fill the lattice of ribs and small punched openings without excessive injection pressure. Regulatory requirements for these non-food articles are typically limited to REACH Regulation (EC) No 1907/2006 and EU Directive 94/62/EC packaging heavy metal limits, with additional customer-specific restrictions on recycled content when containers are used in certified organic plant production; UV resistance is a functional requirement rather than a regulatory one, and is assessed by ISO 4892-2:2013 cycle 1 exposure with color shift and embrittlement monitored at intervals of 250 h. The addition ratio for outdoor-stable black or terracotta colours is 3.0–5.0 wt% colour masterbatch containing 2.5–4.0 % HALS and UV absorbers in the final diluted formulation, with clean post-industrial regrind from punched hole waste and edge trim at 25–40 wt%; because horticultural trays have very low part mass, regrind quality must be controlled to avoid metal contamination from grinder blades, which can block small gate tips or create black specks. Injection molding is performed on high-speed presses with melt temperatures of 190–220 °C, mold temperatures of 15–30 °C, injection speeds of 150–300 mm/s, and holding pressure below 40 MPa to prevent flash around the drainage punch pins; molds use large numbers of pin gates directly opposite each drainage hole to avoid visible knit lines, and venting depth of 0.015–0.025 mm is maintained because off-gassing from regrind can cause deposit buildup. Terminal finished products include 30-cell to 104-cell nursery trays, round plant pots from 90 mm to 250 mm diameter, propagation flats, and hanging basket bases; the dominant production defect is warpage along the long axis of trays, which is controlled by post-mold cooling fixtures and by avoiding regrind ratios above 40 wt% that amplify shrinkage anisotropy.
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Lotte Chemical HDPE HIVOREX 8301B is an injection-moulding grade of high-density polyethylene supplied as pelletized polymer with a nominal melt flow rate of 30 g/10 min measured under ISO 1133-1:2022 at 190 °C and 2.16 kg load, and a nominal density of 0.958 g/cm³ determined under ISO 1183-1:2019. The grade is positioned in the high-fluidity segment of the HIVOREX series and is specified for short-cycle injection moulding of thin-walled articles, including food containers, closures, caps, housewares, and general-purpose packaging components. The melt flow rate reduces injection-pressure demand relative to extrusion-grade HDPE and permits longer flow paths at reduced wall thickness, while the density indicates a crystallinity level that contributes to part stiffness and resistance to aqueous chemical environments. 8301B is not intended for blown film, extrusion blow moulding, or pressure pipe because its molecular architecture is designed for morphology development under rapid cooling and high shear in injection moulds rather than for long-term slow crack growth resistance or high melt strength.
| Property | Test method | Nominal or typical value | Comment |
|---|---|---|---|
| Melt flow rate, 190 °C, 2.16 kg | ISO 1133-1:2022 | 30 g/10 min | Nominal product datasheet value |
| Density | ISO 1183-1:2019 | 0.958 g/cm³ | Nominal product datasheet value |
| Tensile yield stress | ISO 527-2:2012 | 22–28 MPa | Class-typical for high-flow HDPE; product-specific batch certificate required |
| Flexural modulus | ISO 178:2019 | 900–1300 MPa | Class-typical for high-flow HDPE injection grades |
| Notched Izod impact, 23 °C | ISO 180/A:2019 | 3–6 kJ/m² | Class-typical; lower than low-MFR pipe grades |
| Shore hardness D | ISO 868:2003 | 58–65 | Class-typical |
| Melting peak temperature | ISO 11357-3:2018 | 130–135 °C | Class-typical for HDPE |
| Apparent pellet bulk density | ISO 60:1977 | 0.54–0.58 g/cm³ | Influences hopper bridge formation and conveying |
Product-specific mechanical data for 8301B is limited in this compiled document; Lotte Chemical batch certificates should be consulted for exact tensile and impact values, because additive packages and lot-to-lot molecular weight variation can shift measured values within the class-typical ranges shown above.
Within the HIVOREX family, molecular weight, comonomer placement, and molecular weight distribution create markedly different processing-property profiles. Pipe extrusion grades are typically high-molecular-weight resins with a melt flow rate below 1 g/10 min; they are evaluated for hydrostatic design stress under ISO 9080 and slow crack growth resistance under ISO 13479. 8301B is not designed for load-bearing, long-service-life pressure-pipe geometries and must not be substituted into pressure pipe without re-qualification. Blow-moulding grades require parison sag resistance and melt strength for continuous extrusion blow moulding; a 30 g/10 min MFR resin such as 8301B exhibits low parison stability and must not be run on standard blow-moulding lines without melt-strength modification. Film grades demand high bubble stability and dart impact under ISO 7765-1; 8301B does not contain the high-molecular-weight tail required for thin-gauge blown film extrusion. Density differences among HDPE grades are smaller than molecular weight differences, but the 0.958 g/cm³ density of 8301B is within the 0.955–0.965 g/cm³ range typical for high-flow HDPE injection moulding resins.
On production injection machines, 8301B is processed on hydraulic, hybrid, or electric toggle machines. Published processing guides for high-flow HDPE recommend barrel set temperatures from 180 °C in the feed and compression zones to 220 °C in the metering zone, with nozzle temperature not exceeding 230 °C. Mould temperatures between 10 °C and 40 °C are used to balance crystal growth, shrinkage, and cycle time. A general-purpose screw with an L/D ratio of 20:1 to 25:1 and compression ratio of 2.0:1 to 2.5:1 is common; screws with low compression or worn check rings increase melt-temperature variation and reduce shot-to-shot consistency. Back pressure is typically held between 0.5 MPa and 1.5 MPa to avoid excessive shear heating while maintaining dispersion of colorants and nucleating agents. Injection velocity is set according to cavity fill time; for wall thicknesses of 1.0–1.5 mm, fill times below 0.8 s and injection velocities above 200 mm/s are often required to prevent premature gate freeze. Holding pressure commonly falls between 60 MPa and 100 MPa, with cavity pressure at transfer from velocity to pressure control in the range of 30–40 MPa. Insufficient holding pressure produces sink marks and excessive linear shrinkage; excessive holding pressure raises residual stress and post-mould warpage.
Clamp force is calculated from projected area and cavity pressure. At a cavity pressure of 35 MPa, a projected area of 500 cm² requires approximately 1750 kN clamp force before adding a 10–20% safety factor. Accumulator-assisted injection units are often required for thin-wall tools with fill times below 0.5 s; toggle machines with clamp forces below 1300 kN may flash if cavity pressure spikes during high-speed fill. Moisture sensitivity is low when pellets are stored in sealed hoppers. If surface moisture exceeds 0.05 wt% due to outdoor storage or condensation, pre-drying at 80 °C for 2–3 h in a desiccant hopper dryer prevents splay and internal voids. Regrind use up to 30 wt% is common in non-demanding applications, but regrind melt flow rate should be verified under ISO 1133-1 because repeated thermal cycling increases MFR and reduces impact strength.
For thin-wall packaging with wall thickness below 1.0 mm, the processing window narrows because cooling time approaches the order of fill time. Shear heating at high injection velocity lowers melt viscosity and assists filling; however, melt temperature exceeding 230 °C at the nozzle increases the risk of gate blush and brown streaks. At nozzle temperatures below 180 °C, injection pressure can rise steeply and short shots may occur. The practical flow length for a 1 mm wall at 220 °C melt temperature and 70 MPa injection pressure is on the order of 250–350 mm, but published data for 8301B in this exact configuration is limited; mould filling must be verified by short-shot studies on the production tool. Weld-line tensile strength in high-flow HDPE injection mouldings may fall to 60–80% of bulk tensile strength under ISO 527-2, depending on melt temperature, mould temperature, and gas venting. Gate freeze time for a 1 mm wall at 30 °C mould temperature is typically 2–4 s; holding pressure must transfer before gate freeze to control sink marks.
Cooling time scales with the square of wall thickness and the inverse of thermal diffusivity. For a 1.2 mm wall at 30 °C mould temperature, cooling time is commonly 6–10 s, while for a 2.0 mm wall it rises to 18–25 s. This nonlinear relationship makes wall-thickness reduction operationally attractive when using a 30 g/10 min MFR grade such as 8301B. Linear mould shrinkage under ISO 294-4 may range from 1.5% to 2.5% in the flow direction and 1.0% to 2.0% transverse, depending on mould temperature and holding pressure; anisotropic shrinkage causes warpage in rectangular containers. Gate design influences part quality: direct edge gates or hot-tip gates with diameters of 0.8–1.5 mm are used, while submarine gates may freeze prematurely when wall thickness falls below 1.0 mm. High-flow HDPE can exhibit flow marks and tiger striping when injection velocity is too low; increasing mould temperature to 40 °C or injection velocity to 300 mm/s often reduces visible flow-front defects.
Food-contact and closure applications require migration and organoleptic testing at the finished-article level. High-density polyethylene grades comply with FDA 21 CFR 177.1520 when used under conditions appropriate to the end-use temperature and food type; the final article must be tested to confirm overall migration under EU 10/2011, where the limit is 10 mg/dm² of food contact surface. Closure systems formed from 8301B are typically evaluated for torque retention and environmental stress cracking resistance under ASTM D1693, although high-flow HDPE grades generally exhibit lower ESCR than low-MFR pipe grades. The resin is not recommended for continuous contact with strong oxidizers, aromatic solvents, or chlorinated hydrocarbons at elevated temperature; these media plasticize the amorphous phase and accelerate environmental stress cracking. It is also unsuitable for pressure-bearing pipe applications where long-term hydrostatic strength under ISO 9080 is required. The grade can be recycled in compatible polyolefin streams; spikes in melt flow rate and carbonyl index under ISO 1133-1 and ASTM D5576 should be monitored after multiple extrusion cycles.
Regulatory conformance for 8301B is generally assessed at the finished-article level, not solely on the resin certificate. The following checklist summarises typical thresholds and does not replace end-article compliance testing.
| Requirement | Threshold | Standard or regulation | Notes |
|---|---|---|---|
| Overall migration in food contact | 10 mg/dm² | EU 10/2011 | Simulant- and condition-dependent |
| Olefin polymer food-contact suitability | Compliance with extraction limits | FDA 21 CFR 177.1520 | End-use temperature and food type restrictions apply |
| REACH SVHC content | 0.1 wt% per substance | EC 1907/2006 | Article-level assessment |
| Lead | 1000 mg/kg | RoHS 2011/65/EU | Homogeneous material |
| Cadmium | 100 mg/kg | RoHS 2011/65/EU | Homogeneous material |
| Mercury | 1000 mg/kg | RoHS 2011/65/EU | Not normally present in unpigmented HDPE |
| Hexavalent chromium | 1000 mg/kg | RoHS 2011/65/EU | May require screening under IEC 62321 |
| PBB and PBDE | 1000 mg/kg | RoHS 2011/65/EU | Not normally present in unpigmented HDPE |
These thresholds apply at article level; resin certification does not waive article-specific testing under the relevant food-contact and electrical equipment directives.