Gears
Spur, helical, bevel, worm and internal gears plus racks.
Also searched as: spur gearsbevel gearsworm gearhelical gearsgear rack
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Gear Set
Quantity: 6
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Worm Gear Speed Reducer
Center Distance: 2.48"Frame Size: 56CInput Speed: 1750 rpmNominal Ratio: 30:1Output Speed: 58 rpm
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Worm Gear Speed Reducer
Bore Diameter: 1 inchBore Type: HollowFinish: BlueFrame Size: 56CInput Speed: 1750 rpm
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Worm Gear Speed Reducer
Bore Diameter: 1-1/8 inchBore Type: HollowFrame Size: 56CInput Speed: 1750 rpmOutput Speed: 44 rpm
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Worm Gear Speed Reducer
Bore Diameter: 1 inchBore Type: HollowFinish: BlueFrame Size: 56CInput Speed: 1750 rpm
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Worm Gear Speed Reducer
Bore Diameter: 3/4 inchBore Type: HollowFrame Size: 56CInput Speed: 1750 rpmOutput Speed: 70 rpm
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Worm Gear Speed Reducer
Bore Diameter: 1-3/8 inchBore Type: HollowFrame Size: 56CInput Speed: 1750 rpmOutput Speed: 88 rpm
About gears
Gears transmit rotary motion and torque between shafts, or convert rotary motion into linear motion. This category encompasses a range of gear types, including spur, helical, bevel, worm, and internal gears, as well as racks. Spur gears are the simplest and most common, used for parallel shaft applications. Helical gears offer smoother, quieter operation and higher load capacity due to their angled teeth. Bevel gears are designed for intersecting shafts, typically at 90 degrees. Worm gears provide high reduction ratios and self-locking capabilities. Internal gears have teeth on the inside circumference and are often used in planetary gear sets. Racks convert rotary motion from a pinion into linear motion. Key selection parameters include module or diametral pitch, number of teeth, pressure angle (commonly 14.5° or 20°), bore diameter, face width, and material. Common materials include steel (e.g., 1045, 4140, case-hardened alloys), stainless steel, brass, bronze, and engineering plastics like acetal or nylon. Surface treatments such as black oxide, nitriding, or case hardening are applied for wear resistance and corrosion protection.
How to choose
When selecting gears, first determine the required speed ratio and shaft orientation (parallel, intersecting, or non-intersecting non-parallel). This narrows the choice to spur, helical, bevel, or worm gears. Next, specify the torque or power to be transmitted, which, combined with the desired speed, dictates the required module/diametral pitch and face width. Consider the operating environment; noise constraints may favor helical gears over spur, while space limitations might lead to internal gears. Finally, select the material based on load, wear resistance, and cost, considering heat treatment or surface finishes for demanding applications. For linear motion, determine the required travel and force to specify the rack and pinion.