PBO fabric
  • PBO fabric,PBO fabric
  • Tecido PBO
  • Tecido PBO
  • Tecido Zylon® PBO
  • tecido de fibra PBO
  • tecido de polibenzoxazol (PBO)
  • PBO fabric,PBO fabric
  • Tecido PBO
  • Tecido PBO
  • Tecido Zylon® PBO
  • tecido de fibra PBO
  • tecido de polibenzoxazol (PBO)

PBO fabric

No.SHPB-007
Material: PBO fiber

Properties:It features ultra-high strength and modulus, excellent heat resistance (up to 650℃), flame retardancy (LOI 68), low density, and strong chemical, friction, and impact resistance.

Application: Widely used in aerospace, defense, protective gear, industrial heat protection, ropes, cables, and sports equipment, with future potential in new energy vehicles and construction reinforcement.
  • PBO fabric,PBO fabric
  • Tecido PBO
  • Tecido PBO
  • Tecido Zylon® PBO
  • tecido de fibra PBO
  • tecido de polibenzoxazol (PBO)

Descrição

1.What is PBO Fiber and Woven Fabric?

PBO fiber is a super fiber made from poly(p-phenylene-2,6-benzobisoxazole) polymer through a dry-jet wet spinning process. Its molecular structure possesses high rigidity and orientation, which endows it with unparalleled mechanical properties and thermal stability. PBO fibers are mainly divided into two types: one is as-spun (AS type), obtained directly through spinning; the other is high-modulus (HM type), which is the as-spun fiber after heat treatment, possessing a higher modulus.

Weaving refers to the traditional process of interlacing two sets of yarns (warp and weft) at right angles to form a fabric. PBO woven fabric is a fabric produced using PBO fiber as the raw material through the weaving process. It usually adopts a plain weave structure, the simplest interlacing method where each weft yarn alternately passes over and under the warp yarns, providing good structural stability and mechanical properties.


2.Manufacturing Process of PBO Woven Fabric

The production of PBO woven fabric is a precise process, mainly including three major steps: fiber preparation, yarn preparation, and weaving.

2.1 Fiber Preparation

PBO polymer is synthesized through a polycondensation reaction between terephthalic acid or terephthaloyl chloride and 4,6-diamino-1,3-benzenediol hydrochloride (DAR) in a solvent such as polyphosphoric acid (PPA). The resulting polymer solution is spun into fibers via a dry-jet wet spinning (air-gap spinning) process. In this process, the liquid crystal solution is extruded from the spinneret, first passes through an air layer (dry section) where high orientation and stretching occur, and then enters a coagulation bath (wet section) for solidification. This process minimizes defects on the fiber surface, thereby enhancing its mechanical properties.


2.2 Yarn Preparation and Weaving

The yarn preparation before weaving PBO fabric and the weaving itself have specific requirements:

  • Warp Yarn Treatment: To facilitate weaving and increase the abrasion resistance of the warp yarns, PBO filament yarns are usually subjected to a twisting process, for example, with a twist level controlled at about 230 twists per meter.
  • Weft Yarn Treatment: The weft yarn is usually untwisted and directly wound onto pirms suitable for the shuttle size of a shuttle loom.
  • Weaving Process: Shuttle looms or other types of looms are used for interlacing according to the plain weave pattern. The entire weaving process requires precise control of parameters such as warp tension, shed clarity, and beating force to ensure the uniformity and compactness of the fabric structure.

Key steps include:

  • Winding: Drawing off the yarn from the cheese and winding it parallelly onto the beam of the warping machine to form a warp beam.
  • Adjusting Weft Density and Width: Changing the weft density and width by adjusting gears.
  • Parameter Control: Adjusting shedding, weft insertion, beating speed, and maintaining stable warp tension.

The following is a schematic diagram of the PBO woven fabric manufacturing process:


3. Main Technical Parameters of PBO Woven Fabric

The performance of PBO woven fabric is exceptional. Its main technical parameters are shown in the table below:

Property Parameter Indicators Comparative Reference (e.g., Para-aramid)
Fiber Linear Density Various specifications from 100D - 1500D Similar common specifications
Tensile Strength 30 - 38 cN/dtex About twice that of para-aramid
Tensile Modulus 140 - 280 GPa About twice that of para-aramid
Elongation at Break 2% - 4% Relatively low
Density 1.54 - 1.56 g/cm³ Much lighter than steel wire (~7.8 g/cm³)
Heat Resistance Thermal decomposition temperature ~650℃
Isothermal mass loss in air at 400℃ <5%
About 100℃ higher than aramid
Limiting Oxygen Index (LOI) 68 Extremely high (aramid is about 29)
Long-Term Heat Resistance Plastic deformation <0.03% after 100 hours under 50% of breaking load Excellent
Chemical Stability Resistant to most organic solvents and alkalis
Easily dissolved by strong acids like conc. sulfuric acid, methanesulfonic acid
Better than aramid (aramid is sensitive to bleach)


Besides the above parameters, PBO fiber also possesses excellent impact resistance, fatigue resistance, friction resistance, and dimensional stability (coefficient of thermal expansion is -6×10⁻⁶/℃). Its dielectric constant is low, offering good wave transmission properties, making it suitable for electromagnetic window applications like radomes.



4. Application Fields of PBO Woven Fabric

Thanks to its outstanding performance, the applications of PBO woven fabric are mainly concentrated in high-tech and high-end industrial fields:

Aerospace and National Defense Military Industry

  • Rocket Motor Cases: Used as reinforcement for composite materials, where light weight and high strength significantly improve transport efficiency.
  • Aircraft Structural Components and Airship Skins: Used in parts requiring high specific strength and specific modulus.
  • Ballistic and Impact Protection: Used in bulletproof vests, armored vehicle protection armor, ballistic helmets, etc.
  • Radomes: Its excellent wave transmission properties make it an ideal material for manufacturing radomes.

High-Performance Protective Equipment

  • Firefighter Turnout Gear, Rescue Suits: Exceptional high-temperature resistance and flame retardancy provide ultimate thermal protection.
  • Industrial Heat Protection: Protective clothing, heat insulation blankets, and curtains for high-temperature conditions.
  • Cut-Resistant Gloves and Clothing: Suitable for manufacturing high-grade cut-resistant PPE.

High-End Industrial and Sports Equipment
  • High-Strength Ropes and Cables: Used for deep-sea exploration, ship mooring, climbing ropes, rescue ropes, etc.
  • Fiber Optic and Cable Reinforcement: Tensile reinforcement elements for fiber optic cables.
  • High-Speed Train Braking Systems, High-Temperature Filtration Materials, etc.
  • Sports Equipment: High-end tennis rackets, badminton rackets, racing boats, sailcloth, bicycle frames, etc.



5. Summary and Outlook

PBO woven fabric represents the pinnacle of modern textile materials and technology. Its comprehensive performance far exceeds that of traditional high-performance fibers like aramid and ultra-high molecular weight polyethylene. Manufactured through sophisticated processes of polymerization, dry-jet wet spinning, twisting, and weaving, it possesses unparalleled strength, modulus, heat resistance, and flame retardancy.

Although the current cost of PBO fiber is high and its stability in strong acid environments is insufficient, its application value in fields such as aerospace, national defense, fire protection, and high-end industry is irreplaceable. With the continuous maturation of production technology and expansion of production capacity, the cost of PBO materials is expected to gradually decrease, and its application fields will further expand. It is anticipated to play a significant role in more areas such as new energy vehicles and special building reinforcement in the future.

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