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Interference

GEAR TALK WITH CHUCK | 2020-08-01

IMTS Future Tech

The Digital Manufacturing Revolution Evolves in 2020 IMTS will offer two comprehensive digital programs, IMTS Network and IMTS Sp...

GEAR TALK WITH CHUCK | 2019-11-14

Building on Solid Ground

Continuing my rant on over-reliance on commercial software The gears are the easy part. My clients and students have grown tired of my ...
GEAR TALK WITH CHUCK | 2019-09-17

Pursuing Perfection

I missed an important point in a product specification this week. Fortunately, my client caught it and I was able to submit another design in time ...
GEAR TALK WITH CHUCK | 2018-09-27

Acceptable Fixes

You do not always have to say “no” when confronted with non-conforming parts. Here are a few “fixes” I have been comfortable authorizing:

GEAR TALK WITH CHUCK | 2018-09-19

Adjust Tolerances or Expectations?

There is a great deal of science involved in measuring things, but considerably less on what the baseline dimensions and clearances should be. This...
FEATURE ARTICLES | 2015-01-01

Getting in Gear with the Chain of Innovations

At the dawn of the Industrial Revolution, so-called mechanics were tasked with devising the precise methods that would make mass production possible. The result was the first generation of machine tools, which in turn required improved tooling and production methods.
PRODUCT NEWS | 2013-01-01

Product News

The complete Product News section from the January/February 2013 issue of Gear Technology.
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INDUSTRY NEWS | 2006-04-19

Schunk's New Toolholder Designed for Low Interference Applications

The TRIBOS-RM from Schunk is designed for cutting speeds up to 50,000 rpm while offering run-out accuracy of less than three microns. The...
REVOLUTIONS | 2001-03-01

Revolutions

Welcome to Revolutions, the column that brings you the latest, most up-to-date and easy-to-read information about the people and technology of the gear industry.
TECHNICAL ARTICLES | 2000-03-01

The Effect of Material Defects on Gear Perfomance - A Case Study

The quality of the material used for highly loaded critical gears is of primary importance in the achievement of their full potential. Unfortunately, the role which material defects play is not clearly understood by many gear designers. The mechanism by which failures occur due to material defects is often circuitous and not readily apparent. In general, however, failures associated with material defects show characteristics that point to the source of the underlying problem, the mechanism by which the failure initiated, and the manner in which it progressed to failure of the component.
TECHNICAL ARTICLES | 1996-01-01

Avoiding Interference In Shaper-Cut Gears

In the process of developing gear trains, it occasionally occurs that the tip of one gear will drag in the fillet of the mating gear. The first reaction may be to assume that the outside diameter of the gear is too large. This article is intended to show that although the gear dimensions follow AGMA guidelines, if the gear is cut with a shaper, the cutting process may not provide sufficient relief in the fillet area and be the cause of the interference.
INDUSTRY NEWS | 1992-03-01

Our Experts Discuss Hobbing Ridges, Crooked Gear Teeth, and Crown Shaving

Question: When cutting worm gears with multiple lead stock hobs we find the surface is "ridged". What can be done to eliminate this appearance or is to unavoidable?
EVENTS | 1992-01-01

Calendar

Complete calendar for January/February 1992
TECHNICAL ARTICLES | 1990-05-01

The Geometric Design of Internal Gear Pairs

The paper describes a procedure for the design of internal gear pairs, which is a generalized form of the long and short addendum system. The procedure includes checks for interference, tip interference, undercutting, tip interference during cutting, and rubbing during cutting.
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TECHNICAL ARTICLES | 1989-03-01

Design of Internal Helical Gears

In principal, the design of internal helical gear teeth is the same as that for external helical gears. Any of the basic rack forms used for external helical gears may be applied to internal helical gears. The internal gear drive, however, has several limitations; not only all those which apply to external gears, but also several others which are peculiar to internal gears. As with external gears, in order to secure effective tooth action, interferences must be avoided. The possible interferences on an internal gear drive are as follows: 1. Involute interference. To avoid this, all of the working profile of the internal tooth must be of involute form.