corrugator belt

A double facer belt (also called a corrugator belt or double backer belt) is a specialized endless conveyor belt used in the double facer section of a corrugator line.
Its main job is to press and convey the combined corrugated board over heated plates so that the bottom liner bonds firmly to the fluted medium (and top liner, in multi-wall boards).
It must provide uniform pressure, stable transport, and efficient heat/moisture transfer to ensure strong bonding, flatness, and consistent board quality.

Common Types

  1. Standard Double Facer Belts – Balanced performance for most board grades.
  2. High-Permeability Belts – For faster moisture release, ideal for high-speed lines.
  3. Aramid-Reinforced Belts – For heavy board grades and high tension applications.
  4. PTFE-Coated Belts – For reduced starch build-up and easier cleaning.
  5. Quick-Splice Belts – For faster installation and reduced downtime.

Construction Features

Base Fabric

Multi-layer woven structure from polyester, aramid (Kevlar®), or blends for high tensile strength and dimensional stability.

Surface Treatment

PTFE (Teflon) coating offers superior heat resistance and low friction, while resin or rubber treatments improve grip and wear resi

Air Permeability

Engineered airflow allows steam to escape during bonding, reducing blister formation and improving board

Edge Reinforcement

Special reinforced edges minimize fraying and extend belt service life under continuous ope

Heat Resistance

Designed for continuous use at temperatures of 180–200°C in the hot plat

Thickness & Density

Optimized construction ensures efficient heat transfer, cushioning, and excellent finished board q

Endless Splice

A seamless endless joint provides smooth running, uniform pressure distribution, and reliable long-term performan

 Key Selection Factors

When choosing a double facer belt, consider:

  • Machine Width & Length – Must match corrugator’s specifications.
  • Operating Temperature – Belt must withstand hot plate section’s heat profile.
  • Board Grades & Flute Types – Heavy boards may require stronger, less compressible belts.
  • Production Speed – High-speed lines need belts with excellent heat transfer and stability.
  • Moisture Conditions – Steam-heavy environments require high air permeability.
  • Surface Grip – Enough to hold the board without marking it.
  • Splice Type – Endless or mechanical, depending on downtime tolerance.
  • Compatibility with Pressure System – Belt must work with your press shoe, ballast roll, or sandwich system.

 Key Selection Factors

When choosing a double facer belt, consider:

  • Machine Width & Length – Must match corrugator’s specifications.
  • Operating Temperature – Belt must withstand hot plate section’s heat profile.
  • Board Grades & Flute Types – Heavy boards may require stronger, less compressible belts.
  • Production Speed – High-speed lines need belts with excellent heat transfer and stability.
  • Moisture Conditions – Steam-heavy environments require high air permeability.
  • Surface Grip – Enough to hold the board without marking it.
  • Splice Type – Endless or mechanical, depending on downtime tolerance.
  • Compatibility with Pressure System – Belt must work with your press shoe, ballast roll, or sandwich system.
corrugator belt

Maintenance & Care

To maximize belt life and board quality:

  • Regular Cleaning – Remove starch, dust, and paper debris to prevent glazing.
  • Tension Checks – Maintain correct tension to avoid slippage or stretching.
  • Tracking Adjustment – Keep belt centered to prevent edge wear.
  • Avoid Overheating – Monitor hot plate temperatures to stay within belt limits.
  • Edge Protection – Inspect for fraying and repair promptly.
  • Scheduled Rotation – Swap belts between machines/zones if possible to even wear.
  • Proper Storage – Store flat or on large rolls in a dry, cool environment.

Key Parameters to Order

Parameter

Why It Matters

Typical Range / Note

Belt Width

Must match machine width

Machine-specific

Belt Length

Correct fit for tensioning system

Machine-specific

Thickness

Affects heat transfer & cushioning

6–10 mm typical

Heat Resistance

Prevents degradation

180–200 °C continuous

Air Permeability

Allows steam escape

Measured in CFM or L/m²/s

Tensile Strength

Withstands load & tension

High-strength polyester/aramid

Surface Coefficient of Friction

Controls grip

Balanced to avoid marking

Splice Type

Impacts downtime & seam quality

Endless, mechanical, or quick-splice

Edge Reinforcement

Extends life

Woven or coated edges

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