Transcription of FLUX BATH BRAZING AN ENGINEERING TECHNIQUE
1 flux bath BRAZING AN ENGINEERING TECHNIQUE By DUDLEY & PERRY (1964) Compliments of: METALLURGY DEPT. DELANEY GALLEY LTD. Reprinted from: SHEET METAL INDUSTRIES (1964) PARK THERMAL INT L. (1996) CORP. Introduction While BRAZING is a method of joining which has been known for centuries, it is only in recent years that the method has been accepted as a production process. Joints made by this process are both strong and reproducible and assemblies of complex construction are regularly manufactured. However, there are still many designers and engineers who are unaware of the full potentialities of the TECHNIQUE , and one of the purposes of this paper is to indicate to them the scope of this joining method.
2 One field where BRAZING is being used to an increasing extent is in the assembly of aluminium-alloy components. As these become more complex, so problems associated with design and production are accentuated. A BRAZING method is now established which has overcome many of these problems, allowing the design of parts which had previously been considered impossible. This TECHNIQUE is flux (salt) bath brazing1 . Naturally there are limitations in its use but these are gradually being reduced with the development of new flux compositions and greater appreciation of the precautions to be followed in designing and producing brazed assemblies.
3 The principal objective of this paper is to underline the importance of joint configuration at the drawing-board stage, and to discuss the various operations, notably cleaning, essential to the production of well-brazed components. Heating Equipment It is well known that the joining of aluminium and its alloys required a considerable amount of research. However, it is now possible to solder, torch braze, argon-arc, gas, resistance or ultrasonic weld a number of the alloys if well-defined conditions are observed, so that the tenacious oxide present on both parts to be joined and the filler or 1 BRAZING Alcoa Aluminium , 1959.
4 135pp. BRAZING alloy is removed. In a number of applications, notably heat-exchanger parts, where long paths require to be joined, none of these methods is practical, and attention was turned initially to furnace BRAZING in an air oven with a flux additive, and subsequently after pre-treatment in a forced-air-circulation furnace, to flux - bath BRAZING using a proprietary salt. Of the two approaches examined. Most successful joints were obtained with the flux bath , and this TECHNIQUE was, therefore, adopted as a production process.
5 Recently2 vacuum BRAZING was examined but results were inferior to products obtained with the flux bath . This paper would not be complete without a brief description of the flux bath which was used. This unit is one of the Efco-Upton products and is illustrated in Fig. 1. The bath (28 in. x 26 in. x 18 in.) has a refractory lining which contains the flux and is supported on insulating materials. The flux used is Efco-Park D which is essentially a mixture of sodium chloride and fluoride, and potassium and lithium chlorides, melting at 535 C.
6 , with a working range of 565 C. to 650 C. and having a density of approximately 100 lbs. per cu. ft. at 586 . The bath is heated by passing current through the molten flux using a low voltage alternating supply (60 kVA). 2 Perry, Report to Institute of Metals, 1963, Spring Meeting, during discussion of paper by Wall, and Milner ( Wetting and Spreading Phenomena in a Vacuum J. Inst. Metals, 90, June 1963, p. 394). 2 This method of heating, results in high heat transfer from the salt to the component undergoing treatment, with high uniformity of temperature throughout the bath .
7 At the same time the salt has an excellent fluxing action on the oxides present on both parent metal and filler3. Accurate control of bath temperature is vital and it must be borne in mind that certain of the alloys which are to be brazed have a solidus which is within 5 C. of the BRAZING temperature. Due to the closeness of the densities of aluminum alloys and the flux , there is only a slight tendency for the BRAZING alloy to flow downwards due to gravity effects, and capillary attraction is, therefore, the principal force involved in retaining molten BRAZING alloy in the joint.
8 However, a further factor which may assist in placing alloy in the joint is the downward flow of BRAZING alloy due to flux -drag when components are removed from the bath . Applications The flux bath described has been in service for a number of years and experience with it has proved that joints which are inaccessible using other joining methods, can be made on a routine basis using certain aluminum alloys where sections have ranged in thickness from in. to 2 in. However, while 3 Jordan, and Milner The removal of Oxide from Aluminium by BRAZING Fluxes J.
9 Inst. Metals, 1956-57, 85, pp. 33-40. extremes of different thickness can be brazed, care must be taken to ensure that heating and cooling rates are not excessive, as the assembly will thus be subjected to thermal stresses which cause distortion and so affect BRAZING tolerances. This effect is increased in certain aluminium alloys, notably those hardened by additions of magnesium and silicon. Typically components which have been successfully joined by flux - bath BRAZING are illustrated in Figs. 2 to 5. To consider Fig.
10 2 in more detail, those familiar with aluminium secondary surface heat exchangers will be aware of the difficulties of producing a metal-bonded corrugation sandwich capable of withstanding pressures in excess of 200 lbs. per sq. in. and having adequate thermal conductivity properties, this type of heat exchanger is built up of aluminium corrugations separated by sheets of aluminium 1 per cent manganese alloy clad with aluminium 7 per cent silicon BRAZING alloy. The use of clad sheet can make the most difficult assemblies possible.