Anhui Parker New Material Co.,Ltd
ISO9001      IATF16949

insulation blanket manufacturer
Blog

Joints de dilatation en tissu vs joints de dilatation métalliques : lequel est le meilleur ?

Aug 30 , 2026

Choisir entre unjoint de dilatation en tissuet unjoint de dilatation métalliqueIl ne s'agit pas simplement de choisir le produit le plus résistant ou le matériau le plus stable à haute température. Le choix optimal dépend du fonctionnement du système, de la pression à laquelle il est soumis, du fluide qui le traverse, du diamètre du conduit ou de la canalisation et de la charge admissible pour les équipements raccordés.

En général, les joints de dilatation en tissu sont très efficaces dans les grands systèmes de conduits à basse pression transportant de l'air chaud, des gaz d'échappement ou des gaz de combustion, tandis que les soufflets métalliques sont couramment choisis pour les tuyauteries sous pression et les systèmes de traitement où le confinement de la pression et la résistance mécanique sont essentiels.

Le tableau comparatif suivant explique les points forts de chaque conception et les facteurs à évaluer avant de spécifier un joint de dilatation.

Décision rapide :

Choisissez unjoint de dilatation en tissulorsque l'application implique de grands conduits, une basse pression, des mouvements latéraux ou combinés importants, des vibrations, des gaz chauds ou des charges de réaction admissibles limitées.

Choisissez unjoint de dilatation métalliquelorsque l'application implique des tuyauteries sous pression, de la vapeur, des liquides, des charges mécaniques plus élevées ou un système spécifiquement conçu autour de soufflets métalliques.

Fabric Expansion Joints

Joint de dilatation en tissu vs joint de dilatation en métal : aperçu

Facteur de sélection Joint de dilatation en tissu Joint de dilatation métallique
Service typique Conduits industriels et milieux gazeux Tuyauterie, cuves et systèmes de procédés techniques
Capacité de pression Applications principalement à basse pression Peut être conçu pour supporter une pression nettement plus élevée.
Grandes dimensions de conduits Très approprié Possible, mais généralement plus complexe sur le plan mécanique
Mouvement axial Excellent lorsqu'il est bien conçu Excellent avec une géométrie de soufflet appropriée
Mouvement latéral Grande capacité de mouvement dans des configurations compactes Nécessite généralement une configuration de soufflet appropriée
Mouvement angulaire Peut accueillir des mouvements combinés Disponible avec des configurations techniques
Isolation des vibrations Très bonne flexibilité dépendant de l'application
Force du ressort Généralement faible Les soufflets génèrent des forces de ressort mesurables
Système de matériaux Tissus composites, membranes et isolants soufflets en alliage métallique
Médias communs air chaud, gaz d'échappement, gaz de combustion, gaz de procédé Vapeur, liquides, gaz et fluides de procédé
Géométrie typique Formes rondes, rectangulaires et grandes formes personnalisées Principalement ronds, mais des modèles rectangulaires sont également disponibles.

Fabric Expansion Joints

La différence la plus importante : système de conduits vs système de tuyauterie

L'une des manières les plus simples d'entamer le processus de sélection consiste à déterminer si le joint de dilatation est installé dans un grand conduit industriel ou dans un système de tuyauterie sous pression.

UNjoint de dilatation en tissu non métalliqueIl est particulièrement adapté aux conduits d'air et de gaz de grande taille. Ces systèmes sont fréquemment utilisés dans les centrales électriques, les cimenteries, les aciéries, les fours industriels, les systèmes de dépoussiérage, les équipements de combustion et les installations d'échappement.

Le fluide de procédé est généralement gazeux, et la pression est souvent relativement faible comparée à celle des tuyauteries de procédé sous pression.

Un joint de dilatation métallique utilise de fines volutes métalliques profilées pour assurer la flexibilité tout en maintenant l'étanchéité. Les soufflets métalliques sont largement utilisés dans les réseaux de vapeur, les tuyauteries industrielles, les industries pétrochimiques et chimiques, ainsi que dans d'autres systèmes techniques où la pression est un critère de conception essentiel.

Cette différence d'environnement d'application explique bon nombre des différences de performances entre les deux technologies.


1. Capacité de pression

La pression est souvent le premier facteur qui distingue un joint de dilatation en tissu d'un soufflet métallique.

Joints de dilatation en tissu

Les joints textiles sont principalement destinés aux conduits basse pression. Leur élément flexible est constitué de tissus enduits, de couches de renforcement, de membranes d'étanchéité et d'isolant, et non d'un soufflet métallique sous pression.

On les trouve couramment dans :

  • conduits de gaz de combustion
  • Systèmes d'air de combustion
  • conduits d'évacuation industriels
  • Systèmes d'entrée et de sortie de ventilateur
  • conduits de fournaise
  • systèmes de dépoussiérage
  • équipement de contrôle de la pollution atmosphérique

Joints de dilatation métalliques

Un soufflet métallique peut être conçu pour résister à une pression interne considérablement plus élevée. Sa paroi métallique sinueuse est conçue pour assurer à la fois flexibilité et confinement de la pression.

Cela rend les joints de dilatation métalliques adaptés à des applications telles que :

  • Tuyauterie de vapeur
  • pipelines de processus
  • Systèmes pétroliers et gaziers
  • traitement chimique
  • Raccordements de l'échangeur de chaleur
  • Systèmes à gaz sous pression

Règle de sélection :Si une pression importante du système doit être contenue, il convient généralement d'évaluer en premier lieu les soufflets métalliques. Les joints de dilatation en tissu ne doivent pas être considérés comme un substitut direct aux soufflets métalliques résistants à la pression.


2. Capacité de mouvement

C’est en mouvement que les motifs textiles deviennent particulièrement attrayants.

Une courroie en tissu peut se déformer sur une surface relativement large. Cela lui permet d'absorber des déplacements axiaux, latéraux et angulaires importants sans avoir recours à de multiples spires métalliques profilées.

Pour les grands systèmes de conduits où la dilatation thermique se produit dans plusieurs directions, cela peut simplifier considérablement la disposition des joints de dilatation.

Types de mouvements typiques

  • Compression axiale
  • Extension axiale
  • Décalage latéral
  • Mouvement angulaire
  • Mouvement multidirectionnel combiné

Les soufflets métalliques peuvent également absorber ces mouvements, mais leur configuration doit être spécifiquement conçue en conséquence.

For example, larger lateral displacement may require a universal metallic expansion joint with multiple bellows and a center pipe rather than a single bellows element.

Therefore, when large lateral or combined movement is required in a low-pressure duct, afabric expansion jointis often the more practical design.


3. Reaction Forces and Spring Rate

This is an important engineering difference that is often overlooked during purchasing.

A metallic bellows behaves like a mechanical spring. When it is compressed, extended or laterally displaced, it generates reaction forces that must be considered in the piping design.

These forces may influence:

  • Anchors
  • Guides
  • Equipment nozzles
  • Pipe supports
  • Duct supports

Fabric expansion joints generally produce much lower spring forces because the flexible textile element is considerably softer than formed metal bellows.

For large duct systems connected to fans, furnaces or lightweight structural components, reducing these reaction loads can be a major advantage.


4. Vibration Isolation

Fans, blowers, turbines and other rotating equipment can transmit vibration into connected ductwork.

A flexible fabric connector can help isolate some of this vibration because the textile belt does not create the same rigid mechanical path as solid ductwork.

This makes fabric expansion joints especially useful around:

  • Industrial fans
  • Blowers
  • Air handling equipment
  • Exhaust systems
  • Large combustion-air ducts

Metal expansion joints can also accommodate vibration, but the movement amplitude, frequency and expected cycle life must be considered carefully in the bellows design.

For high-cycle vibration, neither product should be selected solely from a general product specification. Actual vibration data should be supplied to the manufacturer.


5. Large Rectangular Ducts

Large rectangular ductwork strongly favors fabric construction in many industrial systems.

Consider an exhaust duct measuring several meters across. Producing a metallic flexible element for such a large cross-section requires substantial metal fabrication and careful control of corner stresses.

A rectangular fabric joint can use a flexible belt installed around the perimeter of the duct, making very large dimensions more practical.

This is whyrectangular fabric expansion jointsare frequently seen in:

  • Power station ducting
  • Cement kiln systems
  • Steel plant exhaust lines
  • Large furnace ducts
  • Flue gas treatment equipment

For these applications, size alone can significantly influence the final choice.


6. Temperature: Which One Is Better?

It is incorrect to assume that metal is always better at high temperature or that fabric automatically has a lower usable process temperature.

The two systems manage temperature differently.


Metal Expansion Joint Temperature

Metallic bellows temperature capability is determined primarily by the selected alloy, design pressure, material strength at temperature and expected fatigue life.

Stainless steels and nickel-based alloys can be selected for elevated-temperature service.


Fabric Expansion Joint Temperature

A high-temperature fabric expansion joint may use several thermal layers rather than exposing one flexible membrane directly to the process gas.

A typical construction may include:

  • Hot-face protection
  • Insulation layers
  • Reinforcement fabric
  • Gas sealing membrane
  • Outer protective cover

The insulation package can reduce the temperature reaching the external sealing materials.

Therefore, ahigh temperature fabric expansion jointshould be selected based on the full temperature gradient through the joint, not simply on the temperature rating of one fabric.


7. Flue Gas and Exhaust Applications

Hot flue gas and exhaust systems are among the most common applications for non-metallic designs.

These installations often combine:

  • Large duct dimensions
  • Low internal pressure
  • High operating temperature
  • Thermal cycling
  • Lateral movement
  • Fan vibration

That combination closely matches the strengths of fabric expansion joints.

Typical installations include:

  • Boiler exhaust ducts
  • Industrial furnaces
  • Gas turbine exhaust systems
  • Cement process ducts
  • Incinerator systems
  • Flue gas treatment equipment

For customized designs, BSTFLEX manufacturesNon Metallic Fabric Expansion Jointsfor industrial ducting, hot-air, flue-gas and exhaust applications.


8. Chemical and Corrosive Environments

Corrosion resistance cannot be judged simply by comparing “fabric” with “metal.”

The actual materials must be compared.

A metallic expansion joint may use corrosion-resistant stainless steel or nickel alloy when aggressive media are present.

A fabric expansion joint may use chemical-resistant barrier layers such as PTFE-coated textiles or other compatible membrane systems.

Selection should consider:

  • Gas composition
  • Acid concentration
  • Alkaline components
  • Moisture
  • Condensation
  • Operating temperature
  • Cleaning chemicals

Condensation is particularly important in flue-gas systems because chemical attack may become more severe when corrosive gases condense on cooler joint surfaces.


9. Flow Velocity and Abrasion

Neither fabric nor metallic bellows should necessarily be exposed directly to severe turbulent flow or abrasive particles without protection.

A fabric joint may use:

  • Internal flow liner
  • Baffle
  • Insulation pillow
  • Abrasion-resistant hot-face layer

A metallic bellows may also require an internal liner to prevent erosion, turbulent excitation or direct impingement on the convolutions.

This means gas velocity, dust loading and flow direction should always be included in the expansion joint specification.


10. Installation Space

Available space can strongly affect the decision.

A fabric joint can often absorb considerable lateral movement within a relatively short flexible span.

Metallic systems can also accommodate large displacement, but may require more complex arrangements such as universal joints, hinged joints or gimbal configurations depending on movement direction.

However, there are also piping layouts where a compact metallic bellows is the more appropriate design.

Installation space should therefore be considered together with pressure and movement rather than as an isolated factor.


11. Weight and Structural Loading

Fabric flexible elements are generally lighter than comparable large metallic assemblies.

This difference becomes increasingly important as duct dimensions increase.

Lower component weight can reduce loads during:

  • Transportation
  • Handling
  • Installation
  • Maintenance
  • Replacement

In very large rectangular duct systems, this can be an important practical advantage.


12. Replacement and Maintenance

Fabric expansion joints are often designed with replaceable flexible belts.

If the surrounding steel frames remain serviceable, maintenance may involve replacing the flexible element rather than removing the complete assembly.

This can be useful in large duct installations where removing welded steel frames would create significant shutdown work.

Metal expansion joints generally require replacement or repair of the metallic bellows assembly when the bellows itself becomes damaged.

The actual maintenance cost depends on system design, accessibility, joint size and failure mode.


13. Expected Service Life

There is no meaningful universal statement such as “metal lasts longer than fabric.”

Service life depends on whether the joint was correctly designed for the application.

A fabric joint can fail prematurely because of:

  • Excess temperature
  • Chemical attack
  • Abrasion
  • Incorrect installation
  • Overextension
  • Unexpected movement
  • Condensation

A metal bellows can fail because of:

  • Fatigue
  • Corrosion
  • Stress corrosion cracking
  • Excess pressure
  • Squirm
  • Torsion
  • Excess movement
  • Flow-induced vibration

Correct engineering matters more than simply choosing one material category over another.

Fabric Expansion Joints

Which Expansion Joint Is Better for Different Applications?

Application Usually Preferred Reason
Large Low-Pressure Flue Gas Duct Fabric Expansion Joint Large size, flexibility and multidirectional movement
High-Pressure Steam Pipe Metal Expansion Joint Pressure containment requirement
Large Rectangular Exhaust Duct Fabric Expansion Joint Practical for large custom cross-sections
Fan Connection Fabric Expansion Joint Low reaction forces and vibration isolation
Pressurized Chemical Pipeline Metal Expansion Joint Pressure and mechanical requirements
Cement Kiln Exhaust Duct Fabric Expansion Joint Hot gas, large duct and substantial movement
Process Piping Metal Expansion Joint Engineered for piping pressure and code requirements
Large Boiler Flue Duct Fabric Expansion Joint Low-pressure hot-gas application

Fabric Expansion Joints

When Should You Choose a Fabric Expansion Joint?

Afabric expansion jointshould be seriously considered when most of the following conditions are present:

  • The system is a duct rather than a pressure pipeline.
  • The medium is air, exhaust gas or flue gas.
  • Operating pressure is relatively low.
  • The duct cross-section is large.
  • Significant lateral movement must be absorbed.
  • Several movement directions occur simultaneously.
  • Reaction loads on adjoining equipment should be minimized.
  • Fan or blower vibration is present.
  • A rectangular or irregular geometry is required.

This is the typical application envelope for anon metallic expansion joint.

Fabric Expansion Joints

When Should You Choose a Metal Expansion Joint?

A metallic expansion joint should normally be evaluated first when:

  • The system is pressurized piping.
  • Steam or process fluid is being transported.
  • Pressure containment is critical.
  • The applicable piping design requires metallic construction.
  • High mechanical strength is required.
  • The system is designed according to metallic bellows engineering standards.

Metallic bellows are engineered pressure-containing components and should be designed around system pressure, temperature, movement, material, fatigue life and piping loads.

Non Metallic vs Metallic Expansion Joint: A Better Selection Method

Instead of asking, “Which expansion joint is better?” engineers should ask, “Which expansion joint architecture matches this system?”

Use the following sequence.

Step 1: Identify the System

Is it a large duct or pressurized pipe?

Step 2: Define Pressure

Specify normal pressure, design pressure and whether the system operates under positive or negative pressure.

Step 3: Define Temperature

Provide both continuous operating temperature and maximum excursion temperature.

Step 4: Separate Every Movement

List axial compression, axial extension, lateral displacement and angular movement individually.

Step 5: Identify the Medium

Specify hot air, exhaust gas, flue gas, steam, liquid or process chemical.

Step 6: Check Flow Conditions

Include gas velocity, dust loading, abrasive particles and turbulence.

Step 7: Evaluate Equipment Loads

Determine how much reaction force can safely be transferred to fans, duct supports, equipment nozzles and anchors.

Step 8: Review Installation Geometry

Confirm shape, dimensions, flange arrangement and available face-to-face installation length.


A Practical Example: Large Flue Gas Duct

Consider a large rectangular flue-gas duct installed downstream of industrial combustion equipment.

The system has:

  • Large rectangular dimensions
  • Hot gas
  • Low operating pressure
  • Axial thermal growth
  • Lateral movement
  • Fan vibration

In this situation, a fabric expansion joint is often an efficient choice because it can combine large cross-section capability, multidirectional flexibility and low reaction forces.

Now consider a high-pressure steam line operating at elevated temperature.

Although thermal movement still exists, the system requires reliable pressure containment. A metallic bellows engineered for the piping pressure, temperature and movement is generally the appropriate technology.

These examples demonstrate why the operating system must determine the expansion joint type.

Fabric Expansion Joints

What Information Should Be Sent to the Manufacturer?

For either metallic or fabric designs, the quality of the engineering recommendation depends heavily on the information supplied.

For a custom fabric joint, BSTFLEX recommends providing:

  • Duct width and height or diameter
  • Joint face-to-face length
  • Operating temperature
  • Maximum temperature
  • Positive or negative pressure
  • Process medium
  • Axial compression
  • Axial extension
  • Lateral movement
  • Angular movement
  • Gas velocity
  • Dust or particulate content
  • Chemical composition
  • Existing flange details
  • Drawings or photographs
  • Required quantity


Fabric Expansion Joint Solutions from BSTFLEX

BSTFLEX manufactures custom non-metallic expansion joints for industrial hot-air, exhaust and flue-gas ducting systems.

Depending on operating conditions, flexible constructions can incorporate technical fabrics, coated fiberglass, PTFE-based sealing layers, high-temperature insulation and protective components.

Round, rectangular and application-specific configurations can be manufactured according to customer drawings and operating data.

See theJoint de dilatation en tissu non métallique BSTFLEXpour les options de fabrication sur mesure.

Besoin d'aide pour choisir un joint de dilatation ?

Si votre application utilise un grand conduit industriel transportant de l'air chaud, des gaz d'échappement ou des gaz de combustion, veuillez envoyer à BSTFLEX votre schéma et vos conditions de fonctionnement pour évaluation.

Inclure les dimensions du conduit, la température, la pression, le fluide, le mouvement axial, le mouvement latéral, la longueur face à face et la quantité.

Demander un devis pour un joint de dilatation textile sur mesure

laisser un message

laisser un message

    si vous avez des questions ou des suggestions, n'hésitez pas à nous laisser un message, nous vous répondrons dès que possible!

Accueil

Produits

À propos

contact

Haut