Resource Type

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Groove refinishing tool (open access)

Groove refinishing tool

A groove refinishing tool is disclosed which utilizes a finishing wheel which is controlled by an air grinder motor. The air grinder motor is mounted on a main body section which is pivotally attached to a shoe element. The shoe element contains guide pins which guide the shoe element on the groove to be refinished. Application of pressure on the main body element compresses a weight counterbalance spring to extend the finishing wheel through the shoe element to refinish the groove surface. A window is provided for viewing the refinishing operation. Milling operations can also be performed by replacing the finishing wheel with a milling wheel.
Date: March 11, 1981
Creator: Kellogg, H.J.
System: The UNT Digital Library
Method of forming metallic coatings on polymeric substrates and of forming graded polymeric coatings or films (open access)

Method of forming metallic coatings on polymeric substrates and of forming graded polymeric coatings or films

The invention described herein relates to methods of forming graded polymeric coatings or films on a desired substrate and of forming metallic coatings on polymeric or other nonmetallic substrates. In particular, it relates to methods of forming such coatings or films by sorption and/or diffusion of metals into coatings or films of polymeric material deposited by conventional techniques on a desired substrate.
Date: March 11, 1981
Creator: Liepins, R.
System: The UNT Digital Library
Nitrogen fixation method and apparatus. [DOE patent application] (open access)

Nitrogen fixation method and apparatus. [DOE patent application]

A method and apparatus for achieving nitrogen fixation includes a volumetric electric discharge chamber. The volumetric discharge chamber provides an even distribution of an electron beam, and enables the chamber to be maintained at a controlled energy to pressure (E/p) ratio. An E/p ratio of from 5 to 15 kV/atm of O/sub 2//cm promotes the formation of vibrationally excited N/sub 2/. Atomic oxygen interacts with vibrationally excited N/sub 2/ at a much quicker rate than unexcited N/sub 2/, greatly improving the rate at which NO is formed.
Date: August 11, 1981
Creator: Chen, H. L.
System: The UNT Digital Library