Felt is the layer in a jacket that nobody sees and everybody notices when it fails: a collar that stops rolling, a lapel edge that ripples after the second dry-clean, a sleeve head that dimples.
Key takeaways
- Durability in garment felt means resilience, dimensional stability and roll-to-roll consistency, not tensile strength alone.
- Weight (g/m²) tells you little without thickness. Divide one by the other to get bulk density, then compare felts on that basis.
- More needling is not always better. There is an optimum, and over-needling can cut fibres and weaken the fabric.
- Test felt inside an assembled swatch (shell fabric, fusing and felt together), because the felt's behaviour depends on what surrounds it.
What "durable" means for a garment felt
A durable needle punch felt does three things over the life of a garment. It recovers: after pressing, wearing and hanging, it springs back instead of packing down. It holds its dimensions: steam, washing or dry-cleaning does not make it shrink, twist or delaminate. And it is consistent: weight and thickness stay within a narrow band from roll to roll and across the roll width.
The third point is the one buyers underestimate. A felt can be strong on a lab report and still cause rejects if one roll is a little thinner than the last, because the cutting room sees that variation as a change in collar roll or lapel body. When you compare suppliers, ask how they control variation, not only what the nominal figures are.
How needle punching builds durability
Needle-punched nonwovens are made from a fibre web, usually carded, that is consolidated when barbed needles repeatedly pass through it. The barbs drag fibres through the thickness of the web so they interlock through entanglement and friction, with no weaving, knitting or chemical binder required.[1][2] Research groups the controllable variables into three categories: material parameters (fibre and web), needle parameters (type, shape and barbs) and machine parameters (penetration depth, stroke frequency and punch density).[1]
Table 1 turns those variables into questions you can put to a supplier.
| Variable | Effect on the felt | What to ask or check |
|---|---|---|
| Fibre type and fineness | Fibre fineness influences weight, texture and flexibility.[2] Finer fibres tend to pack into a more compact structure.[3] | Fibre composition and whether blends are fixed or variable between lots. |
| Needle penetration depth | Deeper penetration produces more fibre interlocking and a denser structure.[2][3] | Resistance to flattening and delamination, balanced against a firmer hand. |
| Punch density (punches per cm²) | More punches concentrate the entanglement and raise density. Too many can cut fibres; one patent on filament nonwovens treats roughly 400 punches/cm² as the point where cutting starts to reduce strength for that material.[4] | There is an optimum for each fibre. Treat any single "ideal" number with caution. |
| Needle type (barb size, spacing, cross-section) | Affects entanglement efficiency, uniformity and surface properties.[2] | Surface smoothness against the shell fabric, and strength uniformity. |
| Finishing (for example heat setting or calendering) | Needled media are often finished by hot calendering to modify their characteristics further.[3] | Whether the felt is heat-set, and how it behaves under your pressing temperature. |
The practical consequence: ask for thickness and, where the supplier will share it, a description of needling intensity, not just weight. Two rolls that both weigh 200 g/m² can behave very differently in a collar.
Reading weight and thickness together
Most felt specifications lead with weight in g/m². That is useful for costing, but it does not describe how firm or how compressible the felt is. A better single number is bulk density: weight in g/m² divided by thickness in mm, which gives kg/m³. Low values indicate a lofty, compressible felt; high values indicate a compact, firmer one.
| Example | Weight (g/m²) | Thickness (mm) | Bulk density (kg/m³) | Likely behaviour |
|---|---|---|---|---|
| A | 180 | 1.0 | 180 | Compact and lean |
| B | 180 | 2.0 | 90 | Same weight as A but lofty; more compressible |
| C | 300 | 1.5 | 200 | Firm, medium body |
| D | 400 | 2.0 | 200 | Same density as C, more padding depth |
Examples A and B show why weight alone misleads: identical weight, half the density. B will usually feel softer and may pack down sooner under a hot press, while A stays leaner. Examples C and D show the reverse: different weights, but the same density, so they should feel similar in firmness and differ mainly in how much body they add. These are general relationships to guide your first selection; confirm them by handling and recovery testing on your own fabrics.
One caution: thickness is only comparable when it is measured under a stated pressure. The ISO 9073-2 method defines thickness as the distance between a reference plate and a parallel presser foot applying a specified pressure.[5] If two suppliers quote thickness without saying how it was measured, their numbers may not be directly comparable.
Choosing the fibre
Needle punch felt for garments is commonly made from polyester, wool, viscose or blends. Table 3 summarises general trade-offs. These are broad textile principles rather than guarantees for any specific lot, so treat them as a starting point for sample testing.
| Fibre | Typical strengths | Points to watch |
|---|---|---|
| Polyester | Dimensional stability, resilience, consistent supply, cost-effective | Behaviour under heat depends on how the felt was set; avoid pressing conditions that compress the fibres |
| Wool | Natural resilience, good response to steam shaping, soft feel | Higher cost, more lot-to-lot variation, shrinkage behaviour needs checking |
| Viscose | Soft handle, useful in blends | Cellulosic fibres generally lose more strength when wet; verify on wash-care garments |
| Blends | Balance of body, softness and cost | Confirm the blend ratio is fixed and stated on the specification sheet |
A rule that saves time: match the felt to the garment's care label first, and to the hand-feel second. A washable garment and a dry-clean-only garment place very different demands on the same felt.
UBL felt range at a glance
Our durable needle punch felt line covers four garment applications. Table 4 lists the standard codes as published on each product page at the time of writing. The wider needle punch felt category page also lists customisable ranges: thickness 0.5 mm to 2.0 mm, density 150 to 400 g/m², widths from 90 cm to 150 cm, and a standard roll length of 50 m. Specifications can be updated, so confirm the current sheet with our team before you place an order.
| Application | Code and type | Weight (g/m²) | Width (cm) | Composition |
|---|---|---|---|---|
| Under collar and lapel felt | FL-01, single layer | 180 | 90 | 100% polyester |
| Under collar and lapel felt | FH-2, laminated | 230 | 90 | 100% polyester |
| Chest felt and pads | FZ-1, needle punch nonwoven | 40 to 160 | 100 | 100% polyester |
| Chest felt and pads | FS-2, coated nonwoven felt | 140 | 100 or 150 | 100% polyester |
| Sleeve heads | FT-7/-8 | 140 | 100 | 100% polyester |
| Sleeve heads | FT-3/-9 | 140 | 150 | 100% polyester |
| Sleeve heads | FT-4/-5 | 120 | 100 | 100% polyester |
| Sleeve heads | FT-6/-10 | 130 | 150 | 100% polyester |
| General-purpose and moulded felt | FM-2 | 260 | 100 | 100% polyester |
The product pages also describe wool, viscose and blended options for several of these families. If your garment needs a specific fibre, say so when you request a sample so it can be quoted against a defined composition.
Testing a sample before bulk
The ISO 9073 series, "Textiles: test methods for nonwovens", covers the basic measurements: mass per unit area (Part 1), thickness (Part 2), tensile strength and elongation (Part 3), tear resistance (Part 4), bursting stress (Part 5) and bending length (Part 7), among others.[5] Standards are revised over time; for example, the 1989 edition of Part 1 has been replaced by a 2023 edition,[6] so check which edition your buyer or lab specifies.
| Test | What it tells you | Method or approach |
|---|---|---|
| Mass per unit area | Whether the delivered weight matches the specification | ISO 9073-1; sample across the full roll width, not just one edge |
| Thickness | Loft and, with weight, bulk density | ISO 9073-2; record the test pressure |
| Tensile and tear | Structural integrity and any difference between machine and cross direction | ISO 9073-3 and 9073-4; compare both directions |
| Bending length | A numeric proxy for stiffness | ISO 9073-7 |
| Press recovery | Whether thickness returns after your factory's pressing cycle | In-house: measure thickness before and after a set steam and press cycle |
| Care-cycle stability | Shrinkage, distortion and delamination after wash or dry-clean | In-house or third-party lab, on assembled swatches, using your care label |
A five-step sample protocol
- Measure and log weight and thickness on at least ten pieces cut from different positions on the roll.
- Build assembled swatches with your actual shell fabric, fusing and felt, cut in a consistent orientation.
- Run your normal steam and press cycle, then re-measure thickness and note any ridging or shine-through.
- Put a second set through the care cycle printed on the garment label and compare against an untreated control.
- Approve one retained "golden sample" and use it as the reference for incoming inspection on bulk deliveries.
Orientation matters more than many teams expect. Needle-punched fabrics can differ in strength between the machine direction and the cross direction, and nonwoven test methods routinely report the ratio between the two.[5] Cutting collar and lapel pieces in one consistent direction avoids a hidden source of variation.
Garment positions and common faults
Each position asks something different of the felt. Under collar and lapel felt supports the roll line and edge. Chest felt builds a smooth chest panel. Sleeve heads support the sleeve cap so it does not collapse or cling to the arm. Our own usage notes are consistent across these products: cut the felt slightly oversize and trim after shaping, shape with gentle pressing and steaming, secure it with even tension or tack points, and avoid excessive heat that compresses the fibres.
| Symptom | Common causes to check | First action |
|---|---|---|
| Collar or lapel loses its roll after cleaning | Low bulk density, poor recovery, or a felt that shrinks differently from the shell | Run a care-cycle test on assembled swatches |
| Ridge or outline shows through the shell | Felt too thick or too dense for a light shell; hard cut edge | Try a lighter weight or a tapered edge |
| Sleeve cap dimples or collapses | Insufficient resilience, or the sleeve head shifted because it was not tacked | Check recovery, then check the tack points |
| Garments from the same style feel different | Weight or thickness variation between rolls or across width | Compare incoming rolls with the golden sample |
| Felt looks thin or flat after pressing | Excessive press temperature or pressure | Lower the heat and re-test thickness recovery |
For the wider garment context, see how felt sits alongside other structural layers in our suit interlinings, overcoat interlinings and trench coat interlinings solution pages, or compare it with hair canvas interlining for traditional chest construction.
About the manufacturer
Jiaxing Rainbow (UBL) Interlining Co., Ltd. was established in 1995 and develops and produces garment interlinings. Its published company history records milestones including double-dot coating technology in 2005, the Jiashan factory in Zhejiang in 2014, the Wannian factory in Jiangxi in 2019, and an integrated production chain by 2022. You can read the full timeline on the company history page.
The company reports the following figures on its Company page. They describe the business as a whole, not felt alone, and they are company-reported rather than independently audited:
- A technical team of more than 50 people and sales in more than 30 countries and regions.
- Monthly output of about 6 million metres of double-dot interlinings and annual capacity above 70 million metres.
- A product defect rate maintained below 0.3%, supported by an integrated CRM, ERP and MES digital platform.
For how inspection, production flow and delivery are organised, see the quality assurance and production process sections of the Advantage page. If you want to see how felt relates to the rest of our portfolio, start at the product overview or the non-woven interlining range.
Frequently asked questions
What weight of felt suits a lapel?
It depends mainly on the shell fabric. A lighter shell usually needs a leaner felt so the lapel does not show a ridge; a heavier shell can carry more body. As a reference, our under collar and lapel range lists a 180 g/m² single-layer felt and a 230 g/m² laminated felt. Always confirm on an assembled swatch.
Will needle punch felt survive dry-cleaning?
It depends on the fibre, the construction and the cleaning process. Because behaviour varies, the reliable approach is to put assembled swatches through the cycle on your care label and compare thickness, shape and delamination against an untreated control.
Can the felt be customised?
Yes. The needle punch felt category page lists customisable thickness, density, width, colour and composition. Send your garment type, target weight and fibre requirement through the contact form and our team can respond with a sample and specification.
How does needle punch felt differ from pressed wool felt?
Needle punch felt is consolidated mechanically by barbed needles, which interlock the fibres. Traditional pressed wool felt is formed with heat, moisture and pressure. Our category page describes needle punch felt as a cost-saving nonwoven alternative to pressed wool felt, made from carded wool with varying percentages of synthetic fibre or from fully synthetic fibre. For a deeper comparison, read What Is Needle-Punched Wool Felt?
More answers are collected on our FAQ page.

