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2012/03/13

Best Cheap Stainless Steel 316 Set Screw, Hex Socket Drive, Cup Point, #10-32, 1/2" Length (Pack of 10) Online Store

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Stainless Steel 316 Set Screw, Hex Socket Drive, Cup Point, #10-32, 1/2" Length (Pack of 10) Specification

  • Set Screws keep parts from turning relative to a shaft
  • Stainless Steel 316 is suitable for use where Stainless Steel 304 does not provide enough corrosion resistance
  • Do not have an external head
  • Drive system is a hexagon-shaped hole
  • Fine threads tap better into harder materials and thin walls, and are stronger in tension than coarse threads

Stainless Steel 316 Set Screw, Hex Socket Drive, Cup Point, #10-32, 1/2" Length (Pack of 10) Overview

Set Screws are often used for holding a pulley, gear, or other parts from turning relative to a shaft.

Stainless steels are used for their corrosion resistance, high-temperature strength, scaling resistance, and low-temperature toughness. These properties account for their extremely wide use in practically every industry. Austenitic Stainless Steels are alloys of iron and carbon that contain between 16% and 30% Chromium, a maximum of 0.15% carbon, along with Nickel (or Manganese), and other alloying elements. The chromium, which helps develop a passive surface oxide film, provides corrosion resistance in stainless steels. Austenitic Stainless Steels are designated by a 3 digit SAE Stainless Steel Grade beginning with the number 3 (e.g. 304, 316).

Stainless Steel 316 has a higher nickel and molybdenum content than most Austenitic stainless steels which means that this material offers more corrosion resistance without giving up strength or hardness. Tensile strength is 35,000 psi (pounds per square inch).

Hex socket drive systems are driven by hex wrenches or power tools with hexagonal bits. Cup Point is the most common point type, with good holding capability.

A threaded fastener's size name includes information about the major external diameter, followed by the threads per inch, which indicates if it is coarse or fine. Fine threads are preferable when working with harder materials or when threading into a thin material. They are also stronger in tension than coarse threads, and generally provide higher shear strengths.

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