Vacuum monitoring

4008619
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Inventors

Alcaide, H. David
Ewing, James H.

Application #

632460

Filed

Nov-17-1975

Published

Feb-22-1977

Current US Class

029/593
073/724
313/545
340/626
340/633
422/105
427/10
427/109
427/123
436/151

International Classes

G01L 009/12; G01N 027/04

Field of Search

23/232 427/10 427/109 427/123 73/398 29/593 29/620 324/65 340/237 338/13 317/24

Assignee

MKS Instruments, Inc. (Burlington, MA)

Examiners

Scovronek; Joseph

Attorney, Agent or Firm

Mrose; James E.

Referenced by:

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Citation

Cite This Patent

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Abstract
Monitoring of gas contamination and of related deviations in pressures within a sealed cavity is effected by way of electrical-network responses to conduction characteristics of a thin-film deposit of getter material within the cavity, the getter film being deposited upon inert insulation between conductive contacts externally connected into an electrical circuit which controls related output signalling in accordance with conductance changes caused by getter material reactions with gas within the cavity.
 
Claims
What we claim as new and desire to secure by Letters Patent of the United States is:

1. Apparatus for monitoring the change in the electrical resistive condition from an initially determined resistive condition of a layer of highly-reactive getter material located at an initially substantially evacuated site which is rendered physically inaccessible by sealing, comprising at least a pair of electrically-isolated electrically-conductive members each having surfaces both within and remote from said site, electrically-insulating material sealed with said members and preserving the electrically-isolated relationship thereof while disposing surface area therebetween at said site, a continuous layer of said getter material deposited upon said surface area and making electrical contacts with said surfaces of both of said conductive members within said site, and electrical measurement means remote from said site electrically coupled with said conductive members and responsive to said change as exhibited by said layer as a result of its reaction with gases present at said site, thereby to provide an external indication of the degree of degradation of the initial evacuation at said site prior to the exhaustion of the getter.



Description
BACKGROUND OF THE INVENTION

The present invention relates to improvements in the measurement and indication of influences of gases within a sealed cavity such as one which is evacuated and is intended to sustain a relatively hard vacuum, and, in one particular aspect, to unique and improved vacuum-monitoring processes and equipment involving a thin-film deposit of a getter material, such as barium, insulatedly supported within an evacuated cavity and exhibiting its electrical resistance to external detection and signalling circuitry which responds thereto and to its changes induced by reactions with unwanted gas, whereby contamination and depletion of desired vacuum conditions are monitored indirectly.

Uses of so-called "getters" has long been commonplace in connection with incandescent lamps and electronic vacuum tubes, wherein high-vacuum and contamination problems have been alleviated somewhat by their removal of residual gas and, in the case of so-called "keepers", by their further combination with gas subsequently liberated. Among the materials which combine readily with gases, and have desirable gettering properties, are barium, magnesium, zirconium, red phosphorous, aluminum and cerium, and tantalum and zirconium have outstanding capacity of absorb gases when raised to high temperatures. It has also been known to hold a low pressure in other enclosures, such as the reference-pressure cavity of a differential-pressure device, by means of a getter pump which tends to effect the error-inducing consequences of outgassing or leakage into that cavity. For such purposes, a clean surface of highly reactive getter material, such as barium, is vapor-deposited with the aid of resistance or induction heating within the cavity before or after it is sealed off. Thereafter, however, the extent to which the reference cavity may have lost its useful vacuum, despite initial presence of a deposited getter layer, cannot be determined by the user, and the pressure sensing may in fact involve significant error.
 
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