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DIN985 Prevailing Torque Hexagon Thin Nuts With Non Metallic Insert Class 4 5 8

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DIN985 Prevailing Torque Hexagon Thin Nuts With Non Metallic Insert Class 4 5 8

Country/Region china
City & Province suzhou
Categories Gears
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Product Details

 

DIN985 Prevailing Torque Type Hexagon Thin Nuts With Non-Metallic Insert Class 4 5 8

 

 

Characteristics, Advantages, and Application Scenarios of Prevailing Torque Type Hexagon Thin Nuts With Non-Metallic Insert

Characteristics:

  1. Structural Stability: These nuts are designed in a hexagonal shape, providing a stable structure that facilitates easy installation and disassembly using tools like wrenches.
  2. Non-Metallic Insert: The nuts feature a non-metallic insert, typically to enhance friction and improve the locking performance of the nut.
  3. Torque Retention: These nuts are designed to maintain a certain level of torque even after multiple tightening and loosening cycles, ensuring connection stability.

Advantages:

  1. Superior Anti-loosening Performance: The non-metallic insert increases the friction between the nut and bolt, effectively preventing nut loosening.
  2. Corrosion Resistance: The non-metallic insert often exhibits good corrosion resistance, maintaining performance in harsh environments.
  3. Wide Applicability: These nuts are suitable for various thread sizes, accommodating diverse connection needs.

Application Scenarios:

  1. Mechanical Equipment: In mechanical connections requiring high strength and resistance to loosening, these nuts provide stable connectivity.
  2. Automotive Manufacturing: In the automotive industry, especially on parts prone to vibration, using these nuts can effectively prevent loosening due to vibration.
  3. Electronic Equipment: These nuts also play a crucial role in electronic equipment that requires stable connections, such as servers and communication devices.
  4. Outdoor Facilities: Due to their good corrosion resistance, they are also suitable for installing outdoor facilities like street lights and traffic signs.

Thread Size M3 M4 M5 M6 M7 M8 M10
d
P Pitch Coarse thread 0.5 0.7 0.8 1 1 1.25 1.5
Fine thread 1 / / / / / 1 1
Fine thread 2 / / / / / / 1.25
da min 3 4 5 6 7 8 10
max 3.45 4.6 5.75 6.75 7.75 8.75 10.8
dw min 4.6 5.9 6.9 8.9 9.6 11.6 15.6
e min 6.01 7.66 8.79 11.05 12.12 14.38 18.9
h max=nominal size 4 5 5 6 7.5 8 10
min 3.7 4.7 4.7 5.7 7.14 7.64 9.64
m min 2.4 2.9 3.2 4 4.7 5.5 6.5
mw min 1.65 2.2 2.75 3.3 3.85 4.4 5.5
s max=nominal size 5.5 7 8 10 11 13 17
min 5.32 6.78 7.78 9.78 10.73 12.73 16.73
per 1000 units≈kg 0.5 1 1.4 2.4 3 5.1 10.6
Thread Size M12 M14 M16 M18 M20 M22 M24
d
P Pitch Coarse thread 1.75 2 2 2.5 2.5 2.5 3
Fine thread 1 1.5 1.5 1.5 2 2 2 2
Fine thread 2 1.25 / / 1.5 1.5 1.5 /
da min 12 14 16 18 20 22 24
max 13 15.1 17.3 19.5 21.6 23.7 25.9
dw min 17.4 20.5 22.5 24.9 27.7 29.5 33.2
e min 21.1 24.49 26.75 29.56 32.95 35.03 39.55
h max=nominal size 12 14 16 18.5 20 22 24
min 11.57 13.3 15.3 17.66 18.7 20.7 22.7
m min 8 9.5 10.5 13 14 15 15
mw min 6.6 7.7 8.8 9.9 11 12.2 13.2
s max=nominal size 19 22 24 27 30 32 36
min 18.67 21.67 23.67 26.16 29.16 31 35
per 1000 units≈kg 17.2 26 34 45 65 75 100
Thread Size M27 M30 M33 M36 M39 M42 M45 M48
d
P Pitch Coarse thread 3 3.5 3.5 4 4 4.5 4.5 5
Fine thread 1 2 2 2 3 3 3 3 3
Fine thread 2 / / / / / / / /
da min 27 30 33 36 39 42 45 48
max 29.1 32.4 35.6 38.9 42.1 45.4 48.6 51.8
dw min 38 42.7 46.6 51.1 55.9 60.6 64.7 69.4
e min 45.2 50.85 55.37 60.79 66.44 72.09 76.95 82.6
h max=nominal size 27 30 33 36 39 42 45 48
min 25.7 28.7 31.4 34.4 37.4 40.4 43.4 46.4
m min 17 19 22 25 27 29 32 36
mw min 14.8 16.5 18.2 19.8 21.5 23.1 24.8 26.5
s max=nominal size 41 46 50 55 60 65 70 75
min 40 45 49 53.8 58.8 63.8 68.1 73.1
per 1000 units≈kg 162 212 317 415 499 628 771 998

 

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