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The Shore Hardness Scale: A Complete Guide

Shore hardness ratings show up on datasheets for rubbers, elastomers and polymers all the time. Without a solid grasp of what they mean and which scale they refer to, though, they can be surprisingly easy to misinterpret.

The Shore hardness scale measures a material's resistance to permanent indentation. The higher the Shore hardness rating, the harder the material. That part is straightforward, but the complication is that Shore hardness is not one scale but a family of them, each covering a different range of materials and hardness levels.

This guide walks through everything you need to understand Shore hardness with confidence. It explains how the test works, what each scale covers, how to interpret the overlap between scales and how to select the right Shore hardness for your application.

 

Contents:

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What is Shore Hardness?

 Imagine, for example, reading a data sheet and seeing both “Shore 70A” and “Shore 60D” used on it. What do they actually mean? Is one material harder than the other and, if so, which?

Shore hardness is a measure of a material’s ability to resist permanent indentation. To test it, a calibrated instrument called a Shore durometer presses a standardized indenter into the material's surface under a defined load, then measures how far it penetrates. The result is a score from 0 to 100. 0 means the indenter passed straight through, 100 means no penetration at all. The indenter itself varies between the different Shore hardness scales, which are denoted by a letter such as Shore A or Shore D. While the different indenters work on the same principle, there are fundamental differences between them and a different one is required to measure for a rating each different scale. We’ll run through what the specific indenter for each scale is in more depth later.

It’s worth knowing also that the test is only for non-metallic materials like thermoplastics, gels, rubbers, elastomers and polymers. It isn’t used for metals, which instead use the Rockwell, Brinell or Vickers hardness tests.

The score given is significant. A material with a rating of Shore 20A would deform significantly under the pressure of a single fingertip, whereas one with a Shore 90A rating would barely dent at all under the same pressure and feel extremely hard to the touch.

While this all sounds easy to understand so far, there are a few caveats. Shore Hardness is an empirical measurement, meaning the score is only relative to other materials on the same scale. There are actually more than just the one scale as part of the Shore hardness scale, so coming back to the earlier examples of Shore 70A and Shore 60D, the two measurements are not directly comparable. We’ll touch on why and what they denote later.

The Shore hardness scale was initially developed by an American, Albert Ferdinand Shore, who created the first durometer in 1915. The scale is named after him but has since been formalized as ASTM D2240 in the USA and ISO 868 in Europe and the rest of the world. Fundamentally, the methodology behind the scale and the nature of the durometer remain the same as Shore’s invention, so next we’ll cover how a durometer is used.

A Flatlay of Accu Components Featuring Elastomer Elements

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The Shore Hardness Scales Explained

 Calling it the Shore hardness scale is perhaps a bit of a misnomer, as there are actually several different scales. For this article we’ll discuss the three main scales that are used: Shore A, Shore 00 and Shore D. They are identified by letter, for example a material that scores 40 on the Shore A scale would have a rating of Shore 40A, which shows anyone who checks a material’s rating which scale it was determined using.

Shore A

The most widely used of the Shore hardness scales and the one engineers are most likely to come into contact with. The Shore A scale is the default for soft to medium-hard elastomers like natural rubber, neoprene and polyurethane. 

The Shore A scale runs from 0 to 100. Materials that score less than 20A tend to be extremely soft, gel-like substances with little to no structural resistance. Those that score from 20A to 40A are soft, flexible rubbers that deform easily and have high elongation. Between 40A and 60A the resistance becomes more meaningful, though the material remains clearly flexible. From 80A to 95A the material is hard and approaching semi-rigid. Above 95A the scale loses reliability and Shore D becomes more appropriate.

The Shore A indenter has a flat circular face 0.79 mm (0.031 in) in diameter, with conical sides angled at 35° from the vertical. The flat tip distributes force over a small area, making the instrument sensitive to softer materials.

For quick reference, here's the full breakdown of categories and example materials across the Shore A scale:

 

Shore A Range

Category

Material Characteristics

Example Materials

0 – 20

Extremely soft

Gel-like consistency, negligible structural resistance, fully deforms under minimal contact pressure, high compliance

Soft silicone gels, low-density sponge rubber, gel cushioning compounds

20 – 40

Soft / highly flexible

Easily deformed by hand, very high elongation before failure, minimal resistance to compression, good conformability

Soft silicone rubber, gum rubber, low-durometer sponge, soft natural rubber

40 – 60

Medium soft

Noticeably flexible but with meaningful resistance; deforms under moderate hand pressure; good elastic recovery

Soft natural rubber, flexible PVC, general-purpose nitrile rubber (NBR), medium-soft EPDM

60 – 80

Medium hard

Tangible stiffness; still flexible but resists deformation noticeably; comparable feel to a car tire tread; good abrasion resistance

Standard neoprene (CR), EPDM seals and gaskets, hard natural rubber, typical automotive O-ring compounds, standard silicone rubber gaskets

80 – 95

Hard

Hard to deform by hand; approaching semi-rigid behavior; high extrusion resistance; reduced flexibility; strong abrasion resistance

Hard nitrile (NBR), FKM / Viton O-rings, rigid EPDM, hard silicone rubber, some flexible TPU grades

95+

Semi-rigid (Shore D overlap zone)

Minimal flexibility; Shore A scale becomes unreliable at this range; materials at this hardness are more usefully expressed using Shore D; behavior approaches rigid plastic

Hard rubber compounds, rigid flexible PVC, stiff TPU grades — typically re-expressed as Shore D 40–50

Note: hardness values are typical ranges for compound families. Actual values vary by formulation, filler content and processing. Always verify against the specific material datasheet. Materials above Shore A 95 are generally tested and reported on the Shore D scale.

Bearings with Blue and Black Elastomer Elements

Shore 00

Shore 00 is designed for very soft materials that fall below the reliable measurement range of Shore A: soft gels, foams, sponge rubbers and highly compliant elastomers. One thing to note about notation: Shore 00 ratings are written with the number before the score, so a reading of 40 appears as Shore 00 40 rather than Shore 40 00.

Below 40 are silicone gels and similar materials used in medical cushioning, prosthetics and vibration-absorbing pads: things very close to fluid in consistency. Above 80 the scale overlaps with the low end of Shore A. Shore 00 materials are not suited to structural or sealing roles; their practical use in engineering is mainly in soft robotics, flexible electronics and specialized medical applications.

The Shore 00 indenter has a hemispherical tip with a 2.38 mm (0.094 in) radius. The larger, rounder geometry prevents it from simply passing through very soft materials that a smaller indenter would.

Here is a breakdown of the material characteristics and example materials from the Shore 00 hardness scale:

Shore 00 Range

Category

Material Characteristics

Example Materials

0 – 20

Ultra-soft / near-fluid

Barely cohesive; flows or spreads under its own weight; negligible resistance to any indentation; maximum compliance; no structural integrity

Ultra-soft medical silicone gels, tissue-simulant materials, very soft prosthetic cushioning compounds

20 – 40

Very soft gel / foam

Highly compliant; deforms completely under light finger pressure; excellent conformability to surface contours; slow elastic recovery; used where pressure distribution is critical

Soft silicone gel pads, gel shoe insoles, memory foam (open-cell polyurethane), prosthetic liner silicones, soft vibration-absorbing gel mounts

40 – 60

Soft sponge / foam rubber

Compressible and lightweight; deforms readily under moderate pressure with reasonable recovery; low load-bearing capacity; open or closed cell structure

Open-cell foam rubber sheet, soft neoprene sponge, general-purpose sponge rubber, foam packaging materials, soft acoustic insulation foam

60 – 80

Medium soft cellular rubber

More resistance to compression than lower grades; retains shape better under sustained load; firmer feel while remaining clearly compressible; suitable for light sealing and cushioning under low contact pressure

Closed-cell neoprene sponge, EPDM foam strip, soft silicone sponge, foam rubber gaskets, light-duty vibration damping pads

80 – 100

Firm sponge / Shore A overlap zone

Firmest materials measurable on the Shore 00 scale; approaching the lower end of the Shore A scale (Shore A 0–10); still clearly compressible but with meaningful resistance; the Shore 00 scale becomes less informative at this range

Firm closed-cell foam, dense sponge rubber, firmer foam rubber sheet — materials in this range may equally be expressed at the very low end of Shore A

Shore D

Shore D is for materials too hard to measure reliably on the Shore A scale: hard rubbers approaching full rigidity, semi-rigid plastics and engineering thermoplastics. Where the Shore A instrument would simply bottom out on these materials, Shore D uses a sharper indenter and applies more than five times the load (4,536 grams-force (10 lbf),compared to 822 grams-force (1.81 lbf) to get a meaningful reading.

From 0D to 30D are hard rubbers and very stiff elastomers, though in practice this range overlaps with Shore A and materials here are often reported on the A scale instead. From 30D to 60D are engineering plastics: nylon, acetal and polypropylene. Between 60D and 80D you'll find hard, rigid plastics like ABS. Above 80D the scale begins to lose precision and Rockwell hardness testing becomes more appropriate.

The Shore D indenter comes to a sharp conical point with a 30° included angle and a tip radius of 0.1 mm (0.004 in). The concentrated geometry allows it to penetrate materials that would give no meaningful reading on the Shore A instrument.

Here’s the at-a-glance breakdown of the Shore D hardness scale as well as the characteristics and materials you can expect to find as you progress through the scale:

Shore D Range

Category

Material Characteristics

Example Materials

0 – 20

Shore A overlap zone

Hard rubbers that can be measured on either the Shore A or Shore D scale; Shore A is the conventional choice for materials in this range; Shore D readings at the low end are less commonly reported in practice

Hard rubber compounds, very stiff elastomers. Typically expressed as Shore A 85 to 95 rather than Shore D at this range

20 – 40

Semi-rigid / flexible plastic

Clearly rigid to the touch but retains a degree of flex; will bend under sustained hand pressure without breaking; some elongation before failure; the transition zone between rubber-like and plastic-like behavior

Flexible TPU (thermoplastic polyurethane) for hose and cable jacketing, soft thermoplastic elastomers (TPE), flexible PVC at stiffer grades, rubber-modified plastics

40 – 55

Semi-rigid engineering plastic

Stiff with only slight flex; will not deform meaningfully under hand pressure; can be machined but may have some ductility; good impact resistance; suits applications requiring rigidity with a degree of toughness

Rigid TPU, semi-rigid polyurethane, rigid PVC pipe and fittings, softer grades of polyethylene (LDPE)

55 – 70

Rigid engineering plastic (softer grades)

Fully rigid under normal loading; no perceptible flex; machinable with good surface finish; good chemical resistance in many grades; suitable for bearings, guides and low-load structural components

HDPE (high-density polyethylene), UHMWPE (ultra-high molecular weight polyethylene), PTFE (Teflon), rigid polyurethane, polypropylene (PP) at the softer end

70 – 80

Rigid engineering plastic (medium grades)

Hard and dimensionally stable; good stiffness-to-weight ratio; suitable for load-bearing components; machines cleanly; maintains tolerances under moderate service loads; may exhibit some creep under sustained high stress

Polypropylene (PP), ABS (acrylonitrile butadiene styrene), nylon 6 (PA6), polycarbonate (PC) at lower hardness grades

80 – 90

Hard engineering plastic

High hardness and stiffness; excellent dimensional stability; low creep under load; good fatigue resistance; suitable for precision components, gears, bushings and structural fastener applications; machines to tight tolerances

Nylon 66 (PA66), acetal / POM (polyoxymethylene), polycarbonate (PC), PEEK (polyether ether ketone) at standard grades, glass-filled nylon

90+

Very hard engineering plastic / Rockwell transition

Maximum hardness for the Shore D scale; extremely rigid with negligible deflection under load; at this range Rockwell hardness testing (typically Rockwell R or M scale) is often used in parallel or instead, as the Shore D instrument becomes less sensitive to differences between very hard materials

High-performance PEEK, glass or carbon-filled engineering polymers, rigid phenolic composites. Rockwell R or M scale testing is typically specified alongside or instead of Shore D at this range

Note: Shore D values below approximately 40 overlap with the upper end of the Shore A scale (Shore A 85 to 95). Materials in this overlap zone are conventionally reported on whichever scale the supplier or standard specifies. Above Shore D 90, Rockwell hardness testing is generally more appropriate. Hardness values are typical ranges; always verify against the specific material datasheet.

Locking Nuts With Elastomer Elements Used to Secure Bolted Joints

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Scale Overlap and Shore A to Shore D Conversion

The Shore A and Shore D scales don't have a clean boundary between them. In the region of Shore A 85 to 95 and Shore D 30 to 50, both instruments can be used to test the same material and will produce different numerical values.

This surprises some engineers. You might expect the top of Shore A to align with the very bottom of Shore D, but that's not how it works. The two instruments use different indenter geometries and very different applied loads, so the same material reads differently depending on which one you use. A material that measures Shore 95A will typically read around Shore 45D, not Shore 0 or 5D.

Because of this, there's no exact mathematical conversion between the two scales. Published conversion tables are approximations built from empirical data on specific material families and don't hold consistently across all compounds. ASTM D2240 doesn't define an official equivalence between scales. When a direct measurement is possible, always take one rather than converting.

The table below gives approximate equivalences across the overlap zone, for reference only:

The Shore Hardness Scale, Showing Where Different Accu Components Land On It


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How is Shore Hardness Measured?

Shore hardness, as previously mentioned, is measured using a handheld instrument called a durometer. It has two key parts: a spring-loaded indenter and a gauge. When you press the instrument flat against the material's surface, the spring exerts a defined force and the gauge reads the depth of penetration on a 0 to 100 scale.

Two testing conditions matter for accuracy. The specimen needs to be at least 6mm thick: thinner samples can give falsely high readings because the hardness of the backing surface starts to influence the result. The reading should also be taken within one second of applying pressure, because viscoelastic materials continue to deform under load (a phenomenon known as creep) and the value drifts if you wait. Both requirements are set out in ASTM D2240 and ISO 868.

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Shore Hardness of Common Engineering Materials

The scale categories above give you a feel for what a Shore hardness value means in general terms. When it comes to specifying components, though, you need to know where specific materials sit.

The table below covers all the rubber and plastic materials available in Accu's range of precision fasteners, O-ringsgrommets and other engineering components, along with their typical Shore hardness ranges, the appropriate scale for each and links to the relevant Accu product pages. Metals aren't included as Shore hardness testing doesn't apply to them. For metal components, Rockwell is the appropriate test.

Material

Typical Shore Hardness

Scale

Accu Components

Rubbers and Elastomers

TPE (Thermoplastic Elastomer)

10 to 95A (highly grade-dependent)

Shore A

Moss Pull Tab Plugs

Silicone rubber

10 to 80A

Shore A

Silicone Tapes

Socket Head Cover Caps

Flangeless Masking Plugs

Metric Socket Cap Head Sealing Screws

Metric Serrated Flanged Hexagon Sealing Nuts

Neoprene (CR / polychloroprene)

30 to 90A

Shore A

Anti-Vibration Grommet Mounts

TPR (Thermoplastic Rubber)

50 to 100A

Shore A

Rubber Washers

EPDM (Ethylene Propylene Diene Monomer)

40 to 90A

Shore A

Sealing Washers

Pozi Raised Countersunk Sealing Wood Screws

P Clips

Hexagon Sealing Self Tapping Screws

Fluorosilicone (FVMQ)

40 to 80A

Shore A

Metric Hexagon Sealing Nuts

Metric Hexagon Sealing Bolts

Metric Socket Countersunk Head Sealing Screws

Metric Serrated Flanged Hexagon Sealing Nuts

NBR (Nitrile Butadiene Rubber)

40 to 90A

Shore A

O-Rings

FKM / Viton

60 to 90A

Shore A

Metric Serrated Flanged Hexagon Sealing Nuts

Metric Socket Cap Head Sealing Screws

Metric Slotted Pan Head Sealing Screws

Engineering Plastics

LDPE (Low Density Polyethylene)

40 to 50D

Shore D

Round Ribbed Inserts

Pozi Screw Caps

Barrel Plugs

PVC (Polyvinyl Chloride)

40 to 50D

Shore D

PVC Cylindrical Spacers

PTFE (Polytetrafluoroethylene)

50 to 60D

Shore D

PTFE and Polyamide Slide Bearings

HDPE (High Density Polyethylene)

60 to 70D

Shore D

HDPE Retaining Washers

Polypropylene (PP)

70 to 75D

Shore D

Adjustable Feet

Polystyrene (PS)

70 to 80D

Shore D

Polystyrene Cylindrical Spacers

Nylon 6 / 66 (PA6 / PA66)

75 to 80D

Shore D

Nylon Grommet Nuts

Push Clips

PVDF (Polyvinylidene Fluoride)

75 to 80D

Shore D

PVDF Hexagon Nuts

Acetal / POM (Polyoxymethylene)

80 to 85D

Shore D

POM Cylindrical Spacers

POM Flat Washers

Polycarbonate (PC)

80 to 85D

Shore D

Polycarbonate Pan Head Machine Screws

PEEK (Polyether Ether Ketone)

80 to 85D

Shore D

PEEK Countersunk Screws

Reny (PA MXD6, glass/carbon fiber reinforced)

80 to 85D

Shore D

Reny Pan Head Machine Screws

PPS (Polyphenylene Sulfide)

85 to 90D

Shore D

PPS Torx Low Cap Head Screws

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How Shore Hardness Affects Component Performance

Shore hardness isn't just a number on a datasheet. It has direct, practical consequences for how a component behaves in service. Here's what that looks like across the main application areas.

Sealing applications: O-rings and gaskets

Shore hardness impacts how well a seal can conform to a mating surface. Softer materials (Shore A 40 to 60) deform more readily under compression, filling surface irregularities and providing better sealing at low contact pressures. Harder materials (Shore A 70 to 90) require more compression force to achieve the same seal, but offer better extrusion resistance under higher pressure.

Extrusion resistance matters in hydraulic and pneumatic systems because a seal under pressure can deform into the clearance gap between mating components, causing leakage or seal damage. High-pressure applications like these require components with a higher Shore rating, typically Shore A 70 to 90 is the right choice. Most O-rings are offered at 70A as a standard grade, or 90A as a hard grade. 70A is ideal for the majority of applications where static sealing is required, whereas 90A is used for high-pressure applications or where extrusion resistance is paramount.

A Selection of Differently Sized Black O Rings

Vibration isolation and damping

Vibration isolators like rubber mounts, anti-vibration grommets and bushings rely on the elastic properties of the rubber compound. Softer materials (Shore A 30 to 50) have lower dynamic stiffness, providing better isolation of low-frequency vibration. Harder materials (Shore A 60 to 80) are stiffer, carrying higher static loads but transmitting more vibration at low frequencies.

A common engineering rule of thumb: softer mounts for light loads and sensitive electronics; harder mounts for heavy machinery and structural applications.

Wear and abrasion resistance

Within the Shore A range, harder compounds tend to have better abrasion resistance. A Shore A 70 compound will typically outperform a Shore A 40 compound in sliding or abrasive contact. However, this is highly dependent on the base polymer. For example, a soft polyurethane can outperform a hard natural rubber in abrasion resistance despite having a lower Shore hardness.

For polymer bearings, bushings and wear pads, Shore D values are relevant. Harder materials (Shore D 70 to 85 in nylon, acetal or PEEK) are ideal as they resist deformation under load and maintain dimensional accuracy under normal service conditions.

Flexibility and assembly considerations

Softer materials are, by their nature, easier to assemble. A Shore A 40 O-ring is straightforward to stretch over a shaft and seat in a groove, whereas a Shore A 90 O-ring of the same cross-section requires much more force and is at greater risk of damage during installation.

For grommets, cable protectors and push-fit seals that must be installed by hand, Shore A 50 to 70 is generally the practical range. Below 40A, the component may lack sufficient shape retention to seat correctly; above 80A, installation force may be impractical without tools.

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Shore Hardness vs Other Hardness Scales

Shore hardness exists alongside several other hardness testing methods, each suited to a different class of material. They measure different things using different instruments and the numbers they produce cannot be compared across systems.

Rockwell hardness is the standard for metals and, at the upper end of the Shore D scale, hard polymers. The most common Rockwell scales in engineering practice are B (for softer metals such as aluminum and brass) and C (for hardened steels). 

For polymers, Rockwell R and Rockwell M are used. As a general rule, materials at Shore D 80 to 90 begin to fall within the measurable range of Rockwell R. Above Shore D 90, Rockwell testing is typically more appropriate than Shore D as the durometer becomes less sensitive to differences between very hard materials.

Vickers (HV) and Brinell (HB) hardness tests are both used for metals. Neither has any relevance to rubber or polymer testing.

IRHD, or International Rubber Hardness Degrees, is an alternative rubber hardness scale defined by ISO 48-4 that engineers may encounter on European supplier datasheets. IRHD values are broadly comparable to Shore A values for most rubber compounds in the mid-range (40 to 80), but the methodology differs: IRHD uses a ball indenter with a dead-weight load applied over a fixed time period, rather than the spring-loaded near-instantaneous reading of a Shore durometer. The two systems will not always give identical values for the same material.

The practical takeaway is simple: always check which hardness scale a datasheet value refers to before using it to specify a component. A hardness value quoted without a scale designation is ambiguous.

Rotary Components, In This Case Bearings, Frequently Employ Elastomer or Polymer Elements to Prevent Debris Damaging the Bearing

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Choosing the Right Shore Hardness for Your Application

The table below brings the recommendations from across this guide together into a single reference. Each row maps a common application scenario to a recommended Shore hardness range and the key considerations that apply to it.

Application

Scenario

Shore Hardness

Key Considerations

Sealing Applications

Static seals (O-rings, gaskets)

Low-pressure systems below 10 bar (145 psi)

Shore A 50 to 70

Softer compounds conform readily to mating surfaces and seal well at low contact pressures. Suitable for the majority of static sealing duties.

Static seals (O-rings, gaskets)

High-pressure systems above 10 bar (145 psi)

Shore A 70 to 90

Harder compounds resist extrusion into the clearance gap between mating components under pressure. Use Shore A 90 for very high-pressure applications or reduced-clearance glands.

Dynamic seals

Reciprocating or rotary motion

Shore A 70 to 80

Starting point for most dynamic sealing applications. Specify Shore A 80 to 90 where operating pressures are high or the extrusion risk is significant.

Seals in aggressive media

Fuels, hydraulic fluids, acids, solvents

70A or 90A (standard grades)

Compound selection (FKM/Viton, NBR, EPDM, silicone) is the primary variable here, not Shore hardness. Specify at the supplier's standard 70A or 90A grade for the chosen compound.

High-temperature or cryogenic sealing

Operating temperatures significantly above or below 23°C (73°F)

Verify at operating temperature

Shore hardness decreases as temperature rises and increases as it falls. The datasheet room-temperature value may not reflect the material's behavior at service temperature. Always check hardness at operating temperature.

Vibration Isolation and Damping

Anti-vibration mounts and grommets

Light loads, low-frequency vibration isolation

Shore A 30 to 50

Softer mounts have lower dynamic stiffness, providing better attenuation of low-frequency vibration. Suitable for sensitive electronics and lightweight equipment.

Anti-vibration mounts and grommets

Medium loads, general machinery

Shore A 50 to 70

The most common range for general engineering and industrial applications. Balances isolation performance with adequate load-bearing capacity.

Anti-vibration mounts and grommets

Heavy loads, high static deflection resistance

Shore A 60 to 80

Stiffer compounds carry higher static loads but transmit more low-frequency vibration. Always confirm load-deflection curves with manufacturer data sheets. Shore hardness alone is not sufficient for dynamic design.

Plastic and Polymer Structural Components

Snap fits, clips, flexible cable management

Assembly requires flex; component must retain shape after fitting

Shore A 80 to 95 or Shore D 30 to 50

The transition zone between rubber-like and plastic-like behavior. Materials here bend under hand pressure without breaking and spring back after deflection. Suitable for push-fit grommets, snap-fit clips and flexible cable protection.

Bushings, bearings, guides, sliding components

Precision fit, low friction, wear resistance under load

Shore D 70 to 85

Typical range for engineering thermoplastics used in sliding contact: nylon 6/66 (PA6/PA66) at 75 to 80D, acetal/POM at 80 to 85D, PEEK at 80 to 85D. Higher Shore D generally correlates with better dimensional stability under load and improved wear resistance.

Structural brackets, housings, load-bearing fastener components

High rigidity; minimal deflection under sustained load

Shore D 80+

Rigid engineering polymers at Shore D 80 and above maintain dimensional accuracy under sustained stress and exhibit low creep. At Shore D 90+, Rockwell hardness testing (Rockwell R or M scale) is generally more appropriate than Shore D for material differentiation.

Note: hardness values given are typical starting points for specification. Always verify against the specific material datasheet and test at the operating temperature where relevant. For dynamic sealing and vibration isolation applications, Shore hardness is one input alongside geometry, compression set, load-deflection data and media compatibility.

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Key Takeaways

Shore hardness shows up on more datasheets than almost any other material property for rubbers and polymers, and it's also one of the more frequently misread. Here's what to carry away from this guide.

  • Shore hardness is a family of scales, not a single test. The three scales you'll encounter most often in engineering are Shore 00, Shore A and Shore D, each using a different indenter geometry and applied load.

  • No universal conversion between Shore A and Shore D exists. Published conversion tables are approximations derived from empirical data on specific material families. When a direct measurement is possible, take one rather than converting.

  • Temperature changes Shore hardness. A material's room-temperature datasheet value may not reflect its behavior at operating temperature: hardness decreases as temperature rises and increases as it falls.

  • When a datasheet quotes a hardness value without specifying the scale, context matters. If the material is a rubber or elastomer, assume Shore A. If it is a semi-rigid or rigid plastic, assume Shore D. If the scale is genuinely ambiguous, contact the supplier before specifying the component.

Further Reading

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FAQs:

Q: What is the Shore hardness scale?

A: The Shore hardness scale is a standardized method of measuring the resistance of elastomers, rubbers and polymers to permanent indentation. The test is carried out using an instrument called a durometer, which presses a defined indenter into the material surface under a calibrated load. The resulting value is a dimensionless number from 0 to 100: 0 represents complete penetration of the indenter and 100 represents no penetration at all.

Shore hardness is not a single scale but a family of scales. The most commonly used in engineering are Shore A, for soft to medium-hard rubbers and elastomers, and Shore D, for hard rubbers and engineering plastics. 

Q: What is the difference between Shore A and Shore D?

A: Shore A and Shore D use different indenter geometries and different applied loads, which makes each scale appropriate for a different range of materials.

A Shore A value and a Shore D value cannot be compared directly. A material with a Shore A hardness of 70 and a material with a Shore D hardness of 70 are not the same hardness.

Q: What does Shore 70A mean?

A: Shore 70A is a Shore A hardness reading of 70, measured using a Type A durometer in accordance with ASTM D2240 or ISO 868. In practical terms, Shore 70A corresponds to the hardness of a rubber tire tread: firm, with clear resistance to deformation, but still flexible under sustained hand pressure.

Shore 70A is the most widely specified hardness grade for standard O-rings and general-purpose seals. Most rubber compound suppliers offer their materials at Shore 70A as a standard grade, with Shore 90A as the alternative for high-pressure applications.

Q: What is Shore hardness in rubber?

A: For rubber and elastomer components, Shore A is the standard measurement scale. Common rubber hardness grades are Shore A 40, 50, 60, 70 and 90. The Shore 70A grade is the most common default for O-rings and general sealing applications; Shore 90A is used where higher extrusion resistance is required, typically in systems operating above 10 bar (145 psi).

Different rubber compounds cover different hardness ranges. NBR is typically available from Shore A 40 to 90. Silicone rubber spans a particularly wide range, from around Shore A 10 for very soft medical-grade compounds through to Shore A 80 for hard engineering grades. FKM (Viton) is most commonly specified at Shore A 70 to 90.

Q: Is Shore A 95 the same as Shore D 45?

A: Approximately, but not exactly. The Shore A scale becomes unreliable above around Shore A 95 because most of the indenter's range has been consumed and small differences in hardness produce very little change in the reading. For this reason, materials in the Shore A 85 to 95 range are often reported on the Shore D scale instead, where the sharper indenter and greater load give more meaningful differentiation.

Shore A 95 is roughly equivalent to Shore D 45, though the precise equivalence depends on the material type and compound formulation. Published conversion tables are approximations derived from empirical data; they should be treated as a guide rather than a precise conversion. 

Q: What is the Shore hardness of silicone rubber?

A: Silicone rubber is available across a very wide range of Shore A hardnesses, typically from Shore A 10 (very soft medical-grade gel silicone) to Shore A 80 (hard silicone rubber sheet or molded components). Standard engineering silicone for gaskets, grommets and seals typically falls in the Shore A 40 to 70 range.

The wide range reflects the variety of silicone formulations available. When specifying silicone components, always check the Shore hardness of the specific grade rather than assuming a default value.

Q: Does temperature affect Shore hardness?

A: Yes, significantly. Shore hardness decreases as temperature increases and increases as temperature decreases. A silicone O-ring rated Shore A 50 at room temperature (23°C (73°F)) will test softer at 150°C (302°F) and harder at minus 40°C (minus 40°F).

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