Panel de puerta de cámara fría

Cold room door panels close off the access opening in a refrigerated enclosure while holding the temperature gradient across the leaf. A rigid polyurethane (PUR) or polyisocyanurate (PIR) foam core is bonded between stainless steel or galvanized steel facings, giving the door leaf enough rigidity to carry heavy hardware without flexing or losing its seal.

The leaf is built around the hardware a cold room door depends on: heavy-duty hinges, a cam-lock tongue-and-groove edge, and a perimeter gasket that compresses against the frame. For freezer duty, the frame accepts a heating cable so the gasket cannot freeze to the jamb, and the leaf can carry a pressure-release vent, a viewing window, or an internal escape handle.

Common leaf thicknesses of 100mm and 150mm match the adjacent wall panels, with widths of 960mm, 1000mm, or 1120mm. Surface finishes and RAL colors let the door match the surrounding room, and food-safe facings support the wash-down routines required in food storage, pharmaceutical, and distribution facilities.

Your Trusted Manufacturer for Energy-Efficient Cold Room Doors

RaxPanel, a cold storage panel manufacturer based in Hebei, China, produces cold room door panels built around the hardware that keeps a door sealing and working. Each leaf bonds a polyurethane core between stainless or galvanized steel facings, sized to carry heavy hinges, latches, and a perimeter gasket without flexing.

The details are what make a cold room door hold up: a cam-lock tongue-and-groove edge, a gasket that compresses evenly against the frame, and—on freezer doors—a heated frame track so the seal cannot freeze shut. Leaves can be fitted with pressure-relief vents, viewing windows, and internal escape hardware, and matched in thickness and finish to the adjacent wall panels.

We work directly with cold-chain operators and contractors to specify leaf size, hardware set, and gasket type for the door’s operating temperature and traffic. Contact RaxPanel for cold room door panels that close tight and keep working shift after shift.

Parámetro Valor
Material del Núcleo Espuma rígida de poliuretano (PUR) o polisisocianurato (PIR), libre de CFC
Densidad del núcleo 40 – 50 kg/m³
Material de revestimiento Stainless steel or galvanized steel (meets EC/USDA hygiene standards); optional embossed aluminum or fiber-reinforced plastic (FRP)
Grosor del revestimiento 0.4 – 1.0 mm
Espesor del panel 50 mm, 75 mm, 100 mm, 120 mm, 150 mm, 200 mm
Ancho del panel 960 mm, 1000 mm, 1120 mm (customizable)
Longitud del panel Customizable from 0.5 m to 18 m
Conductividad Térmica (valor λ) 0.020 – 0.024 W/mK (PIR: 0.020-0.022 W/mK, PUR: 0.022-0.024 W/mK)
Rango de Temperatura de Operación -40°C to +10°C
Resistencia al fuego B1 (PIR) or B2 (PUR)
Sistema de Junta Tongue-and-groove with internal cam-lock fasteners
Resistencia a la Compresión ≥ 160 kPa
Surface Finish Options Polyester, PVDF, Plastisol, PVC coatings; RAL color chart available
Certificaciones CE, FM, FDA, USDA, EN14509
Installation Orientation Vertical or horizontal
Hygiene Properties Food-safe, resistant to oils and chemicals, inhibits fungal growth





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    Cold Room Door Panel Engineering Guide & FAQ

    A cold room door is the weakest thermal link in an otherwise continuous insulated envelope. Every time the leaf opens, warm ambient air floods the opening; every time it closes, the gasket must re-establish a vapor-tight seal against a frame that may be frosting over. The engineering challenge is not just insulation thickness — it is managing the thermal break at the frame, keeping the gasket pliable at -40°C, surviving hundreds of daily open-close cycles, and providing safe egress if someone is trapped inside. RaxPanel builds each door leaf around these constraints, matching hardware rating, heater capacity, and seal geometry to the room’s temperature and traffic profile.

    💡 Pro Tip: The Frame Matters More Than the Leaf
    A 150mm PIR door leaf achieves U ≈ 0.14 W/m²K across its face — but the perimeter frame junction accounts for up to 40% of total door heat loss. RaxPanel frames incorporate a polyamide thermal break between the inner and outer frame profiles, reducing linear thermal transmittance (ψ-value) at the jamb to below 0.05 W/m·K and eliminating the condensation line that plagues single-metal frames.

    1. Door Type Selection: Sliding vs Hinged vs Bi-Fold for Cold Room Applications

    The choice between sliding, hinged, and bi-fold configurations is driven by traffic volume, available wall space beside the opening, and whether the doorway must accommodate powered equipment.

    Door Type Best For Clear Opening Limitations
    Sliding (single-leaf) High-traffic rooms, forklift access, automated conveyors Up to 3000mm wide × 3500mm high Requires clear wall run beside opening equal to leaf width + 200mm
    Hinged (single or double) Personnel doors, small chiller rooms, pharmaceutical access 800mm – 2000mm wide × 2200mm high Swing arc consumes interior or exterior floor space
    Bi-fold (two-leaf folding) Wide openings where sliding track space is unavailable Up to 4000mm wide × 3000mm high More hardware pivot points; higher maintenance frequency

    For rooms with more than 80 openings per shift or regular pallet-jack traffic, sliding doors dominate because they seal on a camming track rather than relying on hinge-side gasket compression. Hinged doors remain the standard for personnel-only access below 1200mm width, where their simpler hardware and lower cost outweigh the swing-space penalty.

    2. Heated Frame Design and Anti-Freeze Systems

    At room temperatures below -5°C, moisture in ambient air condenses on the cold frame surface and freezes, bonding the gasket to the jamb. A heated frame prevents this by maintaining the seal contact zone above 0°C regardless of the interior temperature.

    🔌 Heated Frame Specifications (RaxPanel Freezer Doors):

    • Heater element: Self-regulating PTC cable, 15–25 W per linear metre of frame perimeter, embedded in an aluminium channel beneath the gasket seat.
    • Control: Capillary thermostat set to +3°C ± 2°C, wired to the room’s electrical panel. No separate BMS integration required for single-door installations.
    • Energy consumption: A typical 2200mm × 1200mm hinged freezer door draws 35–55 W continuously when the room is at -25°C — roughly 0.8–1.3 kWh per day.
    • Failure mode: If the heater circuit fails, the gasket freezes to the frame within 2–4 hours at -25°C. Doors should be fitted with a heater-failure alarm contact that triggers a maintenance alert before the seal locks.

    Chiller doors operating above 0°C do not require frame heating. For rooms between 0°C and -5°C, a low-wattage (10 W/m) trace cable is sufficient to prevent intermittent frost without continuous energy draw.

    3. Gasket Selection and Compression Seal Design

    The perimeter gasket is the single most replaced component on a cold room door. It must remain flexible at the room’s lowest operating temperature, recover its shape after thousands of compression cycles, and resist the cleaning chemicals used in food-processing environments.

    Gasket Material Temperature Range Compression Set (72h / 70°C) Best Application
    EPDM (dual-bulb) -50°C to +120°C ≤ 20% (ISO 815) Standard freezer and chiller doors; general cold storage
    Silicone (dual-bulb) -60°C to +200°C ≤ 15% (ISO 815) Pharmaceutical rooms with aggressive chemical washdown
    PVC (single-lip) -20°C to +60°C ≤ 35% (ISO 815) Budget chiller doors above 0°C only

    RaxPanel freezer doors use a dual-bulb EPDM profile: the outer bulb provides the primary air seal, while the inner bulb creates a secondary dead-air cavity that reduces thermal bridging across the gasket cross-section. The profile clips into a dovetail channel on the leaf edge — no adhesive — so replacement takes under 15 minutes per door without removing the leaf from its hinges.

    4. Traffic Cycle Durability: Hardware Rating and Maintenance Scheduling

    A cold room door opened 200 times per day accumulates over 73,000 cycles per year. Hardware that is not rated for this duty will develop play in hinges, wear in roller tracks, and latch misalignment within 12–18 months, compromising the seal and increasing energy consumption.

    ⚙️ Hardware Durability Ratings and Maintenance Intervals:

    • Hinged door hinges: Stainless steel 304 pivot hinges rated to 200,000+ cycles. Lubricate pivot pins every 3 months with low-temperature synthetic grease (NLGI Grade 1, -40°C rated).
    • Sliding door rollers: Nylon-on-steel V-groove rollers on a galvanized track, rated to 500,000 cycles. Inspect track for debris monthly; replace rollers at 250,000 cycles or when lateral play exceeds 2mm.
    • Cam-action latch: Adjustable camming latch draws the leaf 6mm into the frame gasket. Check engagement depth quarterly; re-adjust if the leaf drops more than 1.5mm on its hinges.
    • Full door cycle testing: RaxPanel validates each hardware set to 100,000 cycles minimum under load (leaf weight + 20% safety factor) before release to production.

    For automated sliding doors driven by electric operators, specify a duty cycle rating that matches peak traffic. A motor rated for 120 cycles/hour will overheat and trip on thermal overload in a distribution dock running 200+ cycles/hour during peak receiving.

    5. Pressure Relief and Safety: Escape Releases, Vision Panels, and Internal Opening

    When a cold room door closes, the refrigeration system continues to cool the trapped air, creating a negative pressure differential that can reach -30 Pa to -50 Pa. At this differential, a 2m² hinged door requires over 100 N of pull force to open from inside — enough to trap a worker. Every RaxPanel cold room door addresses this with engineered safety features:

    🚨 Internal Safety Escape Release

    A glow-in-the-dark push handle on the interior face mechanically overrides the external latch and cam-lock. Operates with less than 25 N of force regardless of room pressure differential. Mandatory on all walk-in freezers per EN 378 and OSHA cold-storage guidelines.

    🪟 Vision Panel and Pressure Relief Vent

    A 400mm × 600mm double-glazed polycarbonate window (anti-fog heated option) allows visual confirmation of occupancy. A spring-loaded pressure relief vent (100mm diameter) equalizes pressure to ±5 Pa, preventing door slam and reducing the force needed to reopen after closure.

    Sliding doors incorporate a secondary internal track release: lifting the leaf 10mm disengages the bottom guide, allowing the door to be pushed open even if the main track is iced. All escape hardware is tested at -40°C to confirm that ice formation on the mechanism does not prevent operation.

    Preguntas Frecuentes (FAQ)

    1. What door type is best for a high-traffic cold room with forklift access?
    A single-leaf sliding door is the standard choice for forklift traffic. It seals on a camming track rather than relying on hinge-side gasket compression, handles openings up to 3000mm wide, and does not require swing clearance inside or outside the room. For automated operation, pair the sliding leaf with an electric operator rated to match peak cycle frequency — typically 120–200 cycles/hour for a busy distribution dock. Hinged doors are limited to personnel access below 1200mm width and are not suitable for powered equipment.
    2. Why do cold room door frames need heating cables and what wattage is typical?
    Below -5°C room temperature, ambient moisture condenses on the cold frame and freezes the gasket to the jamb, making the door impossible to open without damaging the seal. A self-regulating PTC heating cable embedded in the frame channel keeps the gasket contact surface above 0°C. Typical wattage is 15–25 W per linear metre of frame perimeter, controlled by a capillary thermostat set to +3°C. A standard 2200mm × 1200mm freezer door draws approximately 35–55 W continuously, costing roughly 0.8–1.3 kWh per day. Chiller doors above 0°C do not require frame heating.
    3. How often should door gaskets be replaced in a -20°C freezer?
    Under normal traffic (100–200 openings/day), EPDM dual-bulb gaskets at -20°C last 18–36 months before compression set reduces sealing force below the effective threshold. Inspect quarterly: if the gasket does not spring back within 2 seconds after being pressed, or if visible flattening exceeds 30% of the bulb height, replace it. High-traffic doors (300+ cycles/day) or rooms with aggressive chemical washdown may need replacement every 12 months. Silicone gaskets extend intervals by roughly 50% in chemical-exposure environments but cost 2–3× more than EPDM.
    4. What hardware cycle rating is needed for a door opened 200 times per day?
    At 200 openings/day, a door accumulates approximately 73,000 cycles per year. Specify hinges, rollers, and latches rated to a minimum of 200,000 cycles to achieve at least 2.5 years of service before major hardware overhaul. RaxPanel validates each hardware configuration to 100,000 cycles under load (leaf weight plus 20% safety factor) as a production-release minimum; heavy-duty sets are tested to 500,000 cycles. For automated sliding doors, confirm the electric operator’s duty-cycle rating matches peak-hour frequency — an undersized motor will trip on thermal overload during sustained high-traffic periods.
    5. How does the internal safety escape release work on cold room doors?
    A glow-in-the-dark push handle on the interior leaf face connects directly to the external latch mechanism via a through-bolt. Pushing the handle mechanically retracts the cam-lock tongue and latch bolt simultaneously, overriding any external locking. The mechanism is engineered to operate with less than 25 N of force even when the room is at -50 Pa negative pressure. On sliding doors, a secondary internal track release allows the leaf to be lifted 10mm off its bottom guide and pushed open if the main track is iced. All escape hardware is function-tested at -40°C before shipment to confirm ice does not jam the mechanism.
    6. What is the thermal performance difference between a sliding and hinged cold room door?
    Across the leaf face, both types perform identically — a 150mm PIR core gives U ≈ 0.14 W/m²K regardless of door configuration. The difference is at the perimeter seal. A hinged door compresses its gasket uniformly on three sides via cam-action latches, achieving a consistent 30–40% gasket compression. A sliding door seals on a camming track that pulls the leaf laterally into a channel gasket; the seal is effective but the top and bottom tracks create slightly higher linear thermal transmittance (ψ ≈ 0.06 W/m·K vs ψ ≈ 0.04 W/m·K for a well-adjusted hinged frame). In practice, the larger heat-loss factor for sliding doors is air infiltration during the longer open time needed for the leaf to travel — specifying fast-acting operators or strip curtains reduces this penalty significantly.



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