PTFE Composite Bearings Cold Flow: Causes, Prevention, and Buying Guide
Introduction
PTFE composite bearings are widely specified for dry-running and low-maintenance applications across construction machinery, agricultural equipment, hydraulic systems, and general industry. They offer low friction, corrosion resistance, and reduced maintenance requirements compared with traditional lubricated bearing solutions. However, one long-term issue is often underestimated during bearing selection: cold flow under sustained load.
Initial dimensions do not guarantee long-term dimensional stability. A bearing that fits correctly at installation may develop increased clearance or reduced positioning accuracy after months of continuous service. Considering cold flow during bearing selection helps prevent clearance growth, accuracy loss, and unexpected replacement.
This article focuses on the factors that cause PTFE cold flow and the checks procurement teams should complete before selecting a bearing.
What Is Cold Flow in PTFE Composite Bearings?
Cold flow is a time-dependent deformation process. When PTFE-based materials are subjected to sustained compressive load within normal service temperature ranges, they undergo slow deformation that can result in permanent dimensional change.
In engineering discussions, cold flow is often associated with creep because both describe time-dependent deformation under sustained stress. Cold flow is a gradual dimensional change caused by sustained mechanical stress over time, rather than sudden failure.

Typical Symptoms After Installation
| Symptom | Possible Cause |
|---|---|
| Increased clearance between shaft and bearing | PTFE layer deformation under sustained load |
| Higher vibration or noise | Loss of bearing support due to dimensional change |
| Reduced positioning accuracy | Dimensional drift in the bearing ID |
| Loose fit over time | Reduced effective wall thickness from cold flow |
| Early wear patterns | Load redistribution due to changed clearance |
These symptoms are often misdiagnosed as "bearing wear" when the root cause is cold flow deformation. The distinction matters: wear is addressed by changing material grade; cold flow is addressed by changing bearing structure and reinforcement.
Why PTFE Composite Bearings Experience Creep and Cold Flow
PTFE provides excellent chemical resistance and low friction performance. However, its relatively low stiffness compared with metallic materials makes it more sensitive to long-term deformation under sustained mechanical stress. For applications involving continuous loads, reinforcement or composite design is often preferred to improve dimensional stability.
Different composite structures offer different levels of resistance to creep deformation. MG-1 carbon steel self-lubricating bearings use a low-carbon steel backing, sintered porous bronze interlayer, and PTFE/fibre compound surface. This structure provides good self-lubrication, low wear, and low friction.
| Structure Type | Relative Resistance to Creep Deformation | Suitable Application |
|---|---|---|
| Steel backing + sintered porous bronze interlayer + PTFE/fibre | Moderate to higher | General industrial applications with moderate continuous load |
| Steel/stainless steel backing with woven PTFE fibre fabric | Higher | High-load or high-misalignment applications requiring improved dimensional stability |
| Steel backing + bronze-based self-lubricating liner | Higher (application dependent) | Heavy-duty, low-speed, high-load applications |
| No reinforcement (pure PTFE) | Lower | Low-load applications where creep resistance is less critical |
For PTFE composite bearings, structure selection is often more important than PTFE content alone. The composite structure determines long-term dimensional stability.
Note: The resistance levels shown above are general tendencies. Actual creep resistance depends on PTFE formulation, reinforcement type, thickness ratio, and manufacturing process.
How Operating Conditions Accelerate PTFE Bearing Cold Flow
Cold flow is influenced by three key operating conditions:
Continuous Load — Sustained static loads are more problematic than intermittent or impact loads. Applications with constant pressure — such as hydraulic cylinder mounts, press fixtures, or structural pivots — carry higher cold flow risk.
Temperature — Temperature acts as an acceleration factor. When PTFE composites operate continuously at elevated temperatures, creep deformation increases faster than under room-temperature conditions. Always verify the bearing assembly's temperature rating — not just the PTFE layer.
Pressure Distribution — Misalignment or shaft deflection can create edge loading, increasing local stress and accelerating deformation. PV conditions should also be evaluated because excessive pressure increases mechanical stress, while higher temperature accelerates creep behavior.
How to Evaluate and Select PTFE Composite Bearings
When selecting PTFE composite bearings for applications with sustained load or elevated temperature, procurement engineers should work through the following steps. This process combines application assessment, supplier verification, and risk reduction into a single workflow.
Step 1: Define the Application Profile
Start by gathering accurate operating data:
Load profile — Is the load continuous or intermittent? Continuous high loads carry significantly higher cold flow risk than varying loads. Verify this with actual operating data, not nameplate ratings.
Temperature range — Temperature accelerates creep. Confirm the actual operating temperature range of the application.
Motion type — Identify whether the bearing will experience rotation, oscillation, or reciprocating motion.
Alignment conditions — Misalignment or shaft deflection creates localized pressure that accelerates deformation. Check whether the application allows proper alignment.
Step 2: Evaluate Bearing Structure Options
Based on the application profile, evaluate which bearing structure matches the requirements:
| Selection Factor | What to Check | Why It Matters |
|---|---|---|
| Composite structure | Backing material, interlayer, and PTFE layer composition | Structure determines cold flow resistance more than PTFE content alone |
| Reinforcement type | Bronze interlayer, woven fabric, or bimetal construction | Reinforced designs provide better dimensional stability under sustained load |
| Wall thickness | PTFE layer thickness and overall bearing wall | Thicker walls may offer more material to distribute load |
Step 3: Verify Supplier Capability and Data
Before purchasing, verify these points with your supplier:
Composite structure details — Request the full layer construction. This is the most critical factor for cold flow resistance.
Continuous load capability — Do not rely on peak load ratings alone. Request static load capacity and verify this against your application's sustained load.
Temperature rating — Confirm the rating for the specific bearing assembly, not just the PTFE layer.
PV limit — Refer to the supplier's PV rating for continuous operation and ensure the application remains within recommended limits.
Dimensional stability data — Ask whether the supplier has tested dimensional change under sustained load at your operating temperature. This may include long-term compression testing under representative conditions.
Step 4: Define Installation and Operating Conditions
Cold flow risk is also influenced by how the bearing is installed and operated:
Alignment — Verify shaft alignment and housing bore tolerance to prevent edge loading.
Shaft surface finish — Ensure shaft finish meets the bearing supplier's recommended range.
Shaft hardness — Adequate shaft hardness supports long-term dimensional stability.
Step 5: Selection Checklist
Use this checklist to assess whether cold flow should be treated as a key selection factor:
| Check Item | High Risk | Lower Risk |
|---|---|---|
| Load type | Continuous high load | Intermittent or varying load |
| Bearing structure | Pure PTFE or lightly reinforced | Reinforced composite (bronze-backed, fabric, bronze-based) |
| Operating temperature | High temperature continuous | Moderate or intermittent temperature |
| Alignment | Misalignment or shaft deflection present | Proper alignment verified |
| Supplier data | No dimensional stability or creep data available | Validated creep test data provided |
How Cold Flow Affects Bearing Performance
Cold flow causes gradual performance degradation:
Increased Clearance and Reduced Accuracy — As the PTFE layer undergoes creep deformation, the effective clearance between the shaft and bearing may increase. This leads to vibration, noise, and reduced positioning accuracy.
Loss of Support and Load Redistribution — In applications where the bearing provides structural support, cold flow reduces that support over time. When PTFE creep changes bearing geometry, load redistributes to other areas — often to edges or high spots — creating a feedback loop that accelerates wear.
Shortened Service Life — The cumulative effect is increased maintenance frequency and earlier replacement. Cold flow is usually not an immediate failure mode, but a gradual degradation mechanism caused by dimensional change over time.
Cold Flow vs Wear: How to Identify the Difference
These two failure modes are often confused in the field. Correct diagnosis is essential for selecting the right solution.
| Factor | Cold Flow | Wear |
|---|---|---|
| Primary cause | Sustained compressive load over time | Friction between sliding surfaces |
| Visible symptoms | Dimensional change (ID increase, wall thickness reduction) | Surface material loss, scoring, grooves |
| Shaft condition | Shaft surface usually unaffected | Shaft may show scoring or transfer |
| Solution | Change bearing structure (reinforcement, backing) | Change material grade or lubrication |
| Prevention focus | Structure design, load distribution, PV control | Surface finish, PV limits, run-in, contamination control |

Key diagnostic question: Is the shaft surface still in good condition but the bearing clearance increased? → Likely cold flow. Is the shaft scored and the bearing surface worn? → Likely wear.
Misdiagnosis is common: specifying a harder material for a cold flow problem — or a reinforced structure for a wear problem — wastes time and cost without solving the root cause.
Conclusion
Cold flow in PTFE composite bearings is not a material defect — it is a system design consideration. It occurs when sustained load, temperature, or pressure distribution exceeds what the bearing's composite structure can support over time.
Specifying the right PTFE content is not enough. The composite structure — backing material, interlayer, and PTFE reinforcement — determines long-term dimensional stability.
Before finalizing selection, verify:
Composite structure
Continuous load capacity (not just peak)
Operating temperature within validated assembly range
PV within continuous limits
Alignment and load distribution
Evaluating cold flow risk before purchase allows engineers to select a bearing structure that matches the actual operating conditions.
For applications requiring technical support in material selection, load verification, or application evaluation, Marginal Bearing offers engineering consultation to help identify the most suitable composite structure for specific operating conditions.
FAQs
Q: What is cold flow in PTFE bearings?
A: Gradual, time-dependent deformation of PTFE-based materials under sustained compressive load within normal service temperature ranges.
Q: What causes PTFE bearing creep?
A: PTFE bearing creep is mainly caused by sustained compressive load, elevated temperature, localized pressure concentration, and insufficient reinforcement in the composite structure.
Q: Can PTFE composite bearings be used for static load applications?
A: Yes, but continuous static loads require careful evaluation of creep resistance, bearing structure, and allowable pressure. Reinforced composite designs with bronze backing or woven fabric construction offer better dimensional stability under sustained static loads than unfilled PTFE.
Q: Does higher PTFE content reduce cold flow?
A: Not necessarily. Cold flow resistance depends more on the composite structure, reinforcement method, backing material, and load conditions than PTFE content alone. A bearing with stronger reinforcement and better structural support may provide better dimensional stability than a bearing that relies primarily on PTFE content without sufficient mechanical support.
Q: Can PTFE composite bearings eliminate cold flow completely?
A: Cold flow cannot be completely eliminated under practical service conditions, but proper composite design and load control can significantly reduce dimensional change.
Q: How can I prevent PTFE bearing creep?
A: Preventing PTFE bearing creep requires selecting the correct composite structure, controlling continuous load, verifying PV conditions, and avoiding localized stress caused by misalignment.
Q: How do I identify cold flow vs wear?
A: Cold flow shows dimensional change with the shaft surface usually unaffected; wear shows surface material loss, scoring, or grooves on both bearing and shaft surfaces.
Q: Which bearing designs best resist cold flow?
A: Designs with mechanical reinforcement — sintered porous bronze interlayers, woven PTFE fibre fabric, or bronze-based self-lubricating constructions.






































