Nylon Cable Glands in Automotive Industry
How nylon cable glands are used across automotive wiring, engine compartment routing and EV charging infrastructure, with specifications and selection guidance.
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Choosing the right cable gland size is one of the most common causes of failed waterproof installations. A gland that is too large cannot compress the seal around the cable, and one that is too small simply will not fit. In both cases, water, dust, and mechanical stress find their way into the enclosure.
This cable gland size chart gives you the typical sealing ranges for Metric, PG, and NPT thread standards, explains how to measure cable outer diameter correctly, and walks you through a simple selection process so you can match the right gland to your cable on the first attempt.
A cable gland size chart is a reference table that links three values for every gland size: the thread designation (such as M20, PG11, or 1/2″ NPT), the thread outer diameter, and the cable outer diameter (OD) range the gland can seal. The sealing range matters most: it is the range of cable diameters that the gland’s internal seal can compress around while still maintaining its IP rating.
Every gland size seals only a specific window of cable diameters. For example, an M20 nylon gland typically seals cables between 6 mm and 12 mm. If your cable measures 14 mm, M20 is out of range and you need M25 instead. This is why the chart is read from the cable measurement outward, not from the thread size inward.
Before opening a size chart, measure the cable correctly. Most sizing errors come from measuring the wrong part of the cable.


If the cable sits exactly at the edge of a range, move up one gland size. A seal that is compressed slightly more than the minimum always outperforms one that is stretched to its limit.
Metric threads (ISO) are the global default for modern industrial and outdoor electrical installations. Sizes are expressed as the nominal thread outer diameter in millimetres, for example M20 x 1.5 means a 20 mm thread with a 1.5 mm pitch.
| Gland Size | Typical Cable OD Range (mm) | Thread OD (mm) | Clearance Hole (mm) |
|---|---|---|---|
| M12 x 1.5 | 3 – 6.5 | 12.0 | 12.0 |
| M16 x 1.5 | 4 – 8 | 16.0 | 16.0 |
| M20 x 1.5 | 6 – 12 | 20.0 | 20.0 |
| M25 x 1.5 | 11 – 18 | 25.0 | 25.0 |
| M32 x 1.5 | 15 – 25 | 32.0 | 32.0 |
| M40 x 1.5 | 19 – 32 | 40.0 | 40.0 |
| M50 x 1.5 | 27 – 38 | 50.0 | 50.0 |
| M63 x 1.5 | 34 – 44 | 63.0 | 63.0 |
M20 and M25 are the most widely used metric sizes. They cover the bulk of standard power cables in junction boxes, control panels, and outdoor enclosures. For lightweight cabling such as sensors and LED drivers, M12 and M16 dominate. Nylon glands in these sizes are the most common choice for outdoor and industrial use because the insulating body removes the need for separate earthing.
PG (Panzergewinde) is an older German thread standard still found on European machinery, legacy enclosures, and automation equipment. PG sizes use a separate numbering system (PG7, PG9, PG13.5) that does not directly correspond to a millimetre or inch measurement.
| Gland Size | Typical Cable OD Range (mm) | Thread OD (mm) | Clearance Hole (mm) |
|---|---|---|---|
| PG7 | 3 – 6 | 12.5 | 12.5 |
| PG9 | 4 – 8 | 15.2 | 15.2 |
| PG11 | 5 – 10 | 18.6 | 18.6 |
| PG13.5 | 6 – 12 | 20.4 | 20.4 |
| PG16 | 10 – 14 | 22.5 | 22.5 |
| PG21 | 13 – 18 | 28.3 | 28.3 |
| PG29 | 18 – 25 | 37.0 | 37.0 |
| PG36 | 32 – 38 | 47.0 | 47.0 |


Note that PG and metric sizes with similar cable ranges do not share the same thread hole. PG13.5 and M20 both seal cables around 6-12 mm, but their thread diameters differ (20.4 mm vs 20.0 mm) and the thread profiles are not interchangeable. If you are replacing a gland on legacy European equipment, match the existing PG designation rather than assuming a metric equivalent will thread in.
NPT (National Pipe Thread) is the tapered inch-based standard used across North America, particularly in oil & gas, water, and industrial piping installations. NPT glands seal through the wedging action of the tapered thread itself, and thread sealant or tape is recommended for the best moisture protection.
| Gland Size | Typical Cable OD Range (mm) | Typical Cable OD Range (in) | Clearance Hole (in) |
|---|---|---|---|
| 1/4″ NPT | 3 – 6 | 0.12 – 0.24 | 0.47 |
| 3/8″ NPT | 4 – 8 | 0.16 – 0.31 | 0.63 |
| 1/2″ NPT | 6 – 12 | 0.24 – 0.47 | 0.83 |
| 3/4″ NPT | 10 – 18 | 0.39 – 0.71 | 1.04 |
| 1″ NPT | 13 – 25 | 0.51 – 0.98 | 1.32 |
| 1-1/4″ NPT | 18 – 32 | 0.71 – 1.26 | 1.65 |
| 1-1/2″ NPT | 25 – 38 | 0.98 – 1.50 | 1.91 |
| 2″ NPT | 32 – 44 | 1.26 – 1.73 | 2.36 |
Stainless steel is the most frequent material for NPT glands because the tapered thread benefits from the strength and corrosion resistance of 304/316 steel, especially in marine and outdoor North American installations.

The three standards are not interchangeable, so the decision is usually made by the equipment you are connecting to, not by preference.
| Feature | Metric (M) | PG | NPT |
|---|---|---|---|
| Origin / Region | Global (ISO) | Europe (legacy) | North America |
| Thread Profile | Straight | Straight (rounded) | Tapered |
| Seal Method | O-ring / compression | O-ring / compression | Thread wedging + sealant |
| Common Industries | Industrial, solar, EV, telecom | European machinery, automation | Oil & gas, water, construction |
| Ease of Replacement | High (widely stocked) | Medium | Medium |
If you are designing new equipment, metric is the safest default for international sales. If you are maintaining existing machines, match the thread already tapped in the enclosure. When a project spans regions, keep both metric and PG adaptor options in the bill of materials rather than forcing a single standard.
Follow these five steps in order, and you will eliminate most sizing failures before installation.
Most of these mistakes are easy to make and equally easy to avoid once you know what to look for.
| Mistake | Consequence | Correct Approach |
|---|---|---|
| Matching thread size instead of cable OD | Gland fits the hole but cannot seal the cable | Always verify the sealing range against the measured cable OD |
| Measuring over an attached connector | OD is overstated; oversized gland leaks | Strip the jacket and measure the bare cable |
| Assuming PG and metric are interchangeable | Threads cross or strip; IP rating lost | Match the exact thread standard of the enclosure |
| Over-tightening to “compensate” | Seal deforms; gland body cracks | Tighten until the seal compresses evenly; see installation torque guidance |
| Ignoring temperature and UV for outdoor nylon | Premature aging and cracking | Use UV-stabilised PA66 for outdoor exposure |
If you want to understand how the IP68 rating on many of these glands is actually achieved and tested, this guide to how IP68 rating works for cable glands explains the standard in practical terms. For typical installation errors beyond sizing, the article on common mistakes when installing IP68 cable glands covers torque, seal placement, and thread preparation in more detail.
A cable gland size chart is only useful if you read it from the cable outward: measure the outer diameter, fix the thread standard from your enclosure, then cross-reference the sealing range. The three tables above cover the typical ranges for metric, PG, and NPT glands, and the five-step selection process applies regardless of material.
For engineers and procurement teams, keeping a printed copy of the size chart at the workbench, and confirming the exact sealing range on the product datasheet before ordering, will prevent the majority of sealing failures on site. If you are planning a new panel or replacing glands across a facility, reviewing the classification of cable glands by type and function alongside your cable list is the fastest way to standardise sizes and reduce spare-part variety.
Measure the cable’s outer diameter with a caliper, then match it to a gland whose sealing range covers that value. The gland thread must also match the enclosure hole (metric, PG, or NPT).
M20 and M25 are the most widely used metric sizes, covering standard power cables in junction boxes, control panels, and outdoor enclosures. In PG, PG11 and PG13.5 are common on European equipment.
Yes, every gland has a sealing range, typically 4-7 mm wide, such as 6-12 mm for an M20 gland. The cable must fall inside that range for a proper seal.
The seal will not compress correctly. If the gland is too large, water and dust enter; if too small, it will not fit the cable or may crush it. Both lead to premature failure.
No. Although some sizes seal similar cable ranges, their thread diameters and profiles differ, so they are not interchangeable. Always match the thread standard tapped in your enclosure.
NPT threads are tapered and seal by wedging, so thread sealant or tape is recommended for the best moisture protection. Metric and PG glands seal via the internal compression seal and an O-ring.