Pre-aligned demountable plasma torch

4739147
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Inventors

Meyer, Gerhard A.
Eberhart, Harold W.
Novak, Laurence F.

Application #

008809

Filed

Jan-30-1987

Published

Apr-19-1988

Current US Class

219/121.36
219/121.48
219/121.52
315/111.51
356/316

International Classes

B23K 009/00

Field of Search

219/121 313/231.31 313/231.51 313/231.41 315/111.21 315/111.51

Assignee

The Dow Chemical Company (Midland, MI)

Examiners

Paschall; M. H.

Attorney, Agent or Firm

Stevens; Timothy S.

US Patent References

4035604   Methods and appar...
4551609   Spectrometry plas...
4575609   Concentric micro-n...
4578560   High frequency in...

Referenced by:

View Backward References

Other References

Cobbold, David G., "Comments on the Analytis of High-solids Matrices Using the Meinhard Concentric Nebulizer in ICP Atomic Emission Spectroscopy," Applied Spectroscopy, vol. 40, No. 8, pp. 1242-1244, 1986. Borsier, M. et al., "La R'egulation Automatique Des D'ebits De Gainage Et De N'ebulisation Dans un Plasma a' Couplage Inductif: un Gain De Stabilit'e Pour l'Analyse De Routine en Prospection G'eochimique," Spectrochimica Acta, vol. 41B, Nos. 1/2, pp. 115-123, 1986, printed in Great Britain. Windsor, D. L. et al., "A High Power Inductively Coupled Plasma Torch and Impedance Matching Network," Applied Spectroscopy, vol. 33, No. 1, pp. 56-58, 1979. Publication of the Perkin Elmer Demountable Plasma Torch, pp. 6, 8, and 12, (this reference is not dated). Publication of the Allied Systems Semi-Demountable Plasma Torch, (this reference is not dated).

Citation

Cite This Patent

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Abstract
An improved pre-aligned demountable plasma torch wherein the three tubes that are generally used in demountable plasma torches are now joined together with standard taper joints. The axis of the standard taper joints are essentially centrally aligned with the central long axis of the tubes so that the tubes are pre-aligned and essentially concentric in the assembled torch. If any of the tubes becomes damaged in use they can be replaced with a similarly constructed tube with a minimum of interruption and expense, without the need to adjust the tubes to be essentially concentric and in an assembly consisting of only 3 parts.
 
Claims
What is claimed is:

1. In an improved pre-aligned demountable plasma comprising an inner tube, an intermediate tube and an outer tube, wherein the improvement comprises:

(a) the outer tube having a conically shaped section whose axis is essentially centrally aligned with the axis of the outer tube:

(b) the intermediate tube having a conically shaped section whose axis is essentially centrally aligned with the axis of the intermediate tube, the conically shaped section of the outer tube inversely friction fit mated to the conically shaped section of the intermediate tube so that the intermediate tube is essentially concentric and prealigned in the outer tube and so that the intermediate tube can be readily disassembled from the outer tube and reassembled thereto in pre-aligned fashion.



Description
BACKGROUND OF THE INVENTION

The invention is in the field of ionized gas plasma torches used for example in conjunction with an optical spectrometer or with a mass spectrometer for the purpose of elemental analysis and specifically to torches having replaceable parts.

Plasma elemental analysis is an important branch of chemical analysis. The plasma is generated in a device called a torch (or burner) and a sample is introduced into the plasma so that elements of the sample are atomized by the plasma and detected by a number of techniques. Most torches comprise three concentric tubes. The outer tube contains the plasma and is generally a quartz tube which can withstand the relatively high temperatures to which it is exposed. The intermediate tube is positioned concentric within the outer tube, and terminates within the outer tube and also is generally a quartz tube. A flow of plasma gas, such as argon, is flowed in the intermediate tube and the plasma is generated for example by inductive coupling of radio frequency energy to the ionized gas so that the resulting plasma is above the intermediate tube and within the outer tube. The inner tube is concentric within the intermediate tube and also terminates within the outer tube so that a sample, generally in the form of an aerosol, can be flowed in the inner tube and then into the plasma. The heat of the plasma can melt the outer tube and to prevent this coolant gas, generally argon, is flowed in the annulus between the outer tube and the intermediate tube and at a relatively high velocity so that the plasma is kept away from the inner surface of the outer tube and to cool the outer tube. The flow of gas in this annulus and the annulus between the intermediate tube and the inner tube is conventionally helical in practice by introducing the gases to the tubes tangentially to the axis of the tubes. The position of the intermediate tube with respect to the other tubes is critical. Ideally, the tubes are exactly concentric so that the plasma is concentric in the torch. In practice, some tolerance in concentricity is allowable as long as the plasma is essentially concentric in the torch as is well understood in the art. In addition, the inner tube should also be concentric in the intermediate tube so that the sample is introduced into the center of the plasma under well defined conditions. Due to the larger annulus area between the inner tube and the intermediate tube than between the outer tube and the intermediate tube, less precision is required with the concentricity of the inner tube in the intermediate tube than with the concentricity of the intermediate tube in the outer tube (although near perfect concentricity is always most preferred).
 
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