(19)
(11) EP 0 426 061 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
04.08.1993 Bulletin 1993/31

(21) Application number: 90120685.4

(22) Date of filing: 29.10.1990
(51) International Patent Classification (IPC)5F25B 41/06

(54)

Method for producing heat exchanger tubes

Verfahren zur Herstellung von Wärmetauscherrohren

Procédé pour la fabrication de tubes d'échangeur de chaleur


(84) Designated Contracting States:
DE ES FR GB IT SE

(30) Priority: 31.10.1989 IT 4578689

(43) Date of publication of application:
08.05.1991 Bulletin 1991/19

(73) Proprietor: INDUSTRIE ZANUSSI S.p.A.
I-33170 Pordenone (IT)

(72) Inventors:
  • De Nardi, Ireneo
    I-31016 Cordignano (IT)
  • Stella, Maurizio
    I-33100 Udine (IT)

(74) Representative: Grünecker, Kinkeldey, Stockmair & Schwanhäusser Anwaltssozietät 
Maximilianstrasse 58
80538 München
80538 München (DE)


(56) References cited: : 
EP-A- 0 022 095
DE-C- 3 613 395
US-A- 4 300 672
EP-A- 0 209 418
US-A- 2 956 421
US-A- 4 581 912
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description


    [0001] The invention relates to a method for manufacturing heat-exchanger tubes, in particular to a method for the automatized production of heat-exchanger tubes of different dimensions for evaporators of refrigerating apparatus and the like.

    [0002] In the following description, reference is made to evaporators for refrigerating apparatus for domestic use, but those skilled in the art will not meet with any difficulty in applying the teachings of the present invention to other branches of the industry.

    [0003] It is helpful to call to mind the operating principles of refrigerating apparatus: the refrigerant circuit is composed of four main components, namely, the compressor, the condenser, the capillary and the evaporator with its associated expansion chamber, see e.g. US-A-2 956 421.

    [0004] The functions of these four main components are as follows: An electric motor operates the compressor, which acts to pressurize a gaseous fluid of particular characteristics and to direct it towards the condenser.

    [0005] In the condenser, which is disposed outside of the refrigerating apparatus, the fluid supplied thereto in a pressurized and heated state assumes the so-called "ambient temperature", or is cooled by releasing its heat to the environment.

    [0006] The cooling causes the gaseous fluid to condense, i.e. to assume the liquid state (as will any gas when its temperature drops below a determined level).

    [0007] The fluid is then directed through the capillary which acts to regulate the flow of the fluid and promotes its compression in the so-called "high pressure phase".

    [0008] On reaching the expansion chamber, the liquified fluid is sprayed into the evaporator in the form of diminutive droplets.

    [0009] In the evaporator the fluid encounters an expansion chamber and passes from the liquid to the gaseous state in response to the augmentation of the available volume.

    [0010] This results in a well-known physical phenomenon, inverse to the one explained above, according to which the fluid returns to the gaseous state by absorbing heat.

    [0011] From the evaporator the fluid returns (by aspiration) to the compressor, to resume its circulation as described above.

    [0012] From the designer's point of view it is common practice to pass the capillary issuing from the condenser in a number of windings around the return pipe from the evaporator to thereby ensure that the fluid in the capillary is still further cooled by using the low temperature still prevailing in the return pipe, and to finally guide the capillary into the return pipe, resulting in only a single connection between the evaporator and the remainder of the circuit, since the inlet connection of the capillary is disposed coaxially within the outlet connection of the return pipe, see e.g. DE-C-36 13 395.

    [0013] The production of this section (the so-called heat-exchanger tube)of the circuit, with a coaxial and a non-coaxial portion, between the evaporator and the intake port of the compressor, is thereby rendered rather difficult and cumbersome from the viewpoint of manufacturing technology.

    [0014] It is further known from document EP-A-0209418 to insert the capillary into a double-bent section of the pipe.

    [0015] In this connection it is to be remembered that the intake pipe leading to the compressor is usually made of copper or copper-plated steel, whereas the evaporator is normally made of aluminum. To enable the ends of the heat-exchanger tube to be welded to both of these components, it is therefore preferably made of copper, i.e. of a metal capable of being welded or electrically bonded both to the compressor and to the evaporator (aluminum).

    [0016] On the other hand, however, copper is a metal which is considerably more costly than aluminum. In order to avoid having to bear the high expense for a heat-exchanger tube made completely of copper, it is common practice to make the heat-exchanger tube in two sections, a copper section extending from the compressor to beyond the point whereat the capillary enters the return pipe, and the remaining section made of a less costly material, for instance aluminum.

    [0017] This results in the additional complication that the heat-exchanger tube has to be made of aluminum towards its connection to the evaporator, and of copper towards its connection to the compressor, i.e. that the heat-exchanger tube has to be assembled of two sections made of the two different metals, which have to be connected to one another in a hermetically sealed manner.

    [0018] This results in an evident complication of the production process, particularly in view of the fact that the welding operations have to be carried out with a high degree of precision and accuracy to ensure the required hermetic sealing.

    [0019] It is therefore an object of the present invention to overcome the described difficulties and to provide a method advantageously combining the techniques of industrial automatization with a technique of joining pipes made of different metals for producing a heat-exchanger tube having the desired characteristics in a completely automatized process.

    [0020] This object is attained according to the invention by the method of claim 1 to be described by way of example with reference to the accompanying drawings, wherein:
    fig. 1
    diagrammatically illustrates the structure of a heat-exchanger tube made in accordance with the invention, and
    fig. 2
    represents a diagram of a preferred embodiment of an installation according to the invention.


    [0021] Preferred embodiments of the invention are disclosed in the sub-claims.

    [0022] Shown in fig. 1 are the following elements:

    1) Heat-exchanger tube, copper section,

    2) Heat-exchanger tube, aluminum section,

    3) Juncture of the two sections,

    4) Restricted end portion of the tube for connection to the intake pipe of the compressor,

    5) Capillary

    6) Entry point of the capillary into the heat-exchanger tube,

    7) Double-bent portion of the heat-exchanger tube at the capillary entry point,

    8) Press-formed aluminum collar on the end portion of the heat-exchanger tube adjacent its connection to the evaporator,

    9) Strengthening insert.



    [0023] With reference to fig. 2, the illustrated installation includes the following components:

    11) Aluminum pipe cutting station,

    12) Shuttle step transfer,

    13) Copper pipe cutting station,

    14) Copper pipe transfer station,

    15) Copper pipe press-forming station,

    16) Flash welding station

    17) Tube calibrating station,

    18) Tube cleaning station,

    19) Strengthening insert application station,

    20) Copper pipe restriction-forming station,

    21) Chain conveyor with grippers,

    22) Copper pipe bending and drilling station,

    23) Capillary cutting station,

    24) Capillary brazing station,

    25) Capillary winding station.



    [0024] For a better understanding of the invention, reference will be made to an example in which the working stations are substantially aligned in two files along the end portions of the heat-exchanger tubes, and the joining of the components is accomplished by welding the surfaces to be joined, although the invention is not limited to this arrangement and this technique, respectively, inasmuch as those skilled in the art will be readily able to employ the teaching of the invention in combination with other joining techniques and different conveying and processing arrangements.

    [0025] The illustrated installation operates in accordance with the following procedure:

    [0026] In the first place, cutting stations 11 and 13 operate to unwind the respective pipes from supply reels and to cut them to predetermined lengths for obtaining pipe sections 1 and 2, respectively.

    [0027] Copper pipe section 1 is then press-formed at press-forming station 15 to provide it with a restricted end portion for insertion into aluminum pipe section 2 as at 3 in fig. 1.

    [0028] Subsequently transfer station 14 operates to transfer pipe section 1 to welding station 16, whereat it is joined to aluminum pipe section 2 and welded thereto.

    [0029] Shuttle step transfer mechanism 12 comprises a plurality of substantially hollow supports for carrying respective assemblies each composed of a copper pipe section and an aluminum pipe section. These supports are synchroneously and incrementally displaced transversely of their longitudinal direction for carrying the respective heat-exchanger tubes to successive positions corresponding to the various working stations for the performance of the various processing steps thereat.

    [0030] At the succeeding station 17, copper pipe section 1 is recalibrated to re-establish its inner and outer diameters which may have been altered by the welding operation.

    [0031] At the following station 18 the tubes are internally cleaned of welding and calibration residues by means of a powerful jet of compressed air directed into the end of the aluminum pipe section, whereupon station 19 operates to implant an elastic insert 9 into the end of the tube's bore to be connected to the evaporator.

    [0032] This elastic insert serves the purpose of reinforcing the end portion of the heat-exchanger tube so as to prevent the tube from being bent at the location whereat it is welded to the evaporator; as a matter of fact, the heat-exchanger tube is welded to the evaporator at 8, and subsequently bent by about 90° relative thereto.

    [0033] In view of the fact that aluminum is a highly malleable metal, bending of the pipe section adjacent the welding location would otherwise frequently result in the formation of cracks in the weld seam or in buckling of the pipe section's walls, whereby the passage of the gaseous fluid could be unacceptably restricted.

    [0034] These disadvantageous possibilities are eliminated by the insertion of elastic insert 9 into the end of the tube.

    [0035] In continuation of the operation cycle the pre-assembled heat exchanger tube is carried to station 20, whereat a suitable apparatus forms the tube with a restricted end portion 4 for insertion into the intake pipe of the compressor.

    [0036] The conveyance of the tubes by means of the shuttle transfer conveyor 12 is then terminated, the tubes being transferred in the same alignment as before onto a chain conveyor 21 provided with grippers and operating in the same manner as conveyor 12. The reason for this transfer is that from this point onwards the tubes are to be bent, drilled and welded with a high degree of precision. To this purpose the tubes have to be immobilized in accurately defined positions, which can only be ensured by clamping them in suitable gripper devices.

    [0037] The tubes are subsequently bent and drilled at station 22. This station plays a determinant role in the performance of the present invention. This is because in order to completely finish the heat exchanger tube in a fully automatized process, it is necessary that the insertion of the capillary 5 into the tube is also accomplished automatically. This would not be possible, or would only be possible with considerable difficulties, if the heat exchanger tube were of rectilinear configuration as in the conventional construction, because the capillary would then have to be inserted in a oblique direction, and the insertion hole to be closed by welding would have to be asymmetric.

    [0038] If to the contrary the tube is provided with a double bend in the shape of a cranked portioon as indicated at 7 in fig. 1, the hole 6 for the insertion of the capillary can be drilled in the longitudinal direction in the thus formed oblique wall portion, so that the insertion of the capillary and the closing of the insertion hole by brazing can be accomplished without any difficulty thanks to the parallel and coaxial configuration of these elements.

    [0039] At the succeeding station 23 the capillary is automatically unwound from its supply reel, cut to the required length and readily inserted through the hole 6 in the oblique wall of the heat exchanger tube. The insertion hole 6 is then closed at the next station 24 by a generally known automatic brazing operation. At this point the assembly of the heat-exchanger tube is substantially finished; the sole remaining step of winding the capillary about the return pipe is carried out at station 25 at the downstream end of the automatic processing installation.

    [0040] The characteristics of the invention will thus be readily evident to one skilled in the art: Whereas the conventional technique for the production of heat-exchanger tubes involves the manual or semiautomatic execution of the various operations due to the difficulties opposing the automatized insertion and weld-sealing of the capillary in a pipe section having strictly cylindrical walls, the present invention provides the formation of a double bend in a portion of the heat-exchanger tube, resulting in a pronouncedly oblique wall portion which is accessible to a high-precision processing operation in the longitudinal direction without the need for any special auxiliary devices or particular provisions at the respective station in relation to the other stations which are all designed and arranged for "endwise" processing operations.

    [0041] Those skilled in the art will not fail to notice another substantial advantage of the present invention: In view of the fact that all of the processing steps are carried out in a fully automatized manner, it is readily possible to use one and the same installation for manufacturing heat-exchanger tubes of different dimensions. All that is required to this purpose is that the various working stations with their respective tools are displaceable or adjustable lengthwise of the heat-exchanger tubes, and controlled by a unitary control system, with the possible assistance of suitable servo systems.


    Claims

    1. A method for manufacturing heat-exchanger tubes, particularly for refrigerating apparatus for domestic use, comprising the following steps:
    cutting a length of aluminum pipe from a respective aluminum pipe supply;
    cutting a length of copper pipe from a respective copper pipe supply;
    providing the copper pipe with a restricted end portion by press-forming;
    joining said cut lengths by inserting the restricted end portion of said copper pipe into one end of said aluminum pipe and welding same at their joint;
    calibrating the copper pipe section of said joined pipes;
    internally cleaning said joined pipes of welding and calibration residuals;
    implanting an elastic insert into the free end of the aluminum pipe section;
    restricting the free end portion of the copper pipe section;
    double bending the copper pipe section to form a crank;
    drilling a hole in the bent portion of the copper pipe section nearest the joint, in axial direction of said aluminum pipe section;
    cutting the length of capillary tube from a respective capillary tube supply;
    inserting said cut length of capillary tube into the drilled hole so that one end of said capillary tube protrudes from the free end of said aluminum pipe section;
    brazing said capillary tube to said copper pipe section so as to seal the drilled hole; and
    winding the free end of said capillary tube around said copper pipe section.
     
    2. A method according to claim 1, characterized in that said successive operations are carried out at a plurality of processing stations connected to one another by automatic transfer means.
     
    3. A method according to claim 2, characterized in that said transfer means comprise shuttle step transfer mechanisms and/or gripper-equipped chain conveyor means.
     
    4. A method according to any of the preceding claims, characterized in that said processing stations are adjustable to correspond to different lengths of the heat-exchanger tubes, and that the sequence of the various operations as well as the variable adjustment of the processing stations are controlled by a unitary control system.
     


    Ansprüche

    1. Verfahren zum Herstellen von Wärmetauscherrohren insbesondere für Haushaltskühlgeräte, enthaltend die folgenden Schritte:
    Abschneiden eines Aluminiumrohrabschnitts von einem entsprechenden Aluminiumrohrvorrat;
    Abschneiden eines Kupferrohrschnitts von einem entsprechenden Kupferrohrvorrat;
    Versehen des Kupferrohrs mit einem verengten Endabschnitt durch Preßformen;
    Vereinigen der abgeschnittenen Abschnitte durch Einsetzen des verengten Endabschnitts des Kupferrohrs in ein Ende des Aluminiumrohrs und Verschweißen derselben an ihrer Verbindung;
    Kalibrieren des Kupferrohrabschnitts der vereinigten Rohre;
    internes Reinigen der vereinigten Rohre von Schweiß- und Kalibrierresten;
    Einführen eines elastischen Einsatzes in das freie Ende des Aluminiumrohrabschnittes;
    Verengen des freien Endabschnitts des Kupferrohrabschnitts;
    doppeltes Biegen des Kupferrohrabschnitts zur Ausbildung einer Kurbel;
    Bohren eines Lochs in den gebogenen Abschnitt des Kupferrohrabschntts nächst der Verbindung in axialer Richtung des Aluminiumrohrabschnitts;
    Abschneiden des Längenabschnitts des Kapillarrohrs von einem entsprechenden Kapillarrohrvorrat;
    Einsetzen des abgeschnittenen Kapillarrohrabschnitts in das gebohrte Loch, so daß ein Ende des Kapillarrohrs vom freien Ende des Aluminiumrohrabschnitts vorsteht;
    Verbindungen des Kapillarrohrs mit dem Kupferrohrabschnitt durch Hartlöten, um das gebohrte Loch abzudichten; und
    Wickeln des freien Endes des Kapillarrohrs um den Kupferrohrabschnitt.
     
    2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, daß die genannten aufeinanderfolgenden Vorgänge an mehreren Arbeitsstationen ausgeführt werden, die miteinander durch eine automatische Transfereinrichtung verbunden sind.
     
    3. Verfahren nach Anspruch 2, dadurch gekennzeichnet, daß die Transfereinrichtung Pendelschritttransfermechanismen und/oder mit Greifern versehene Kettenfördereinrichtungen enthält.
     
    4. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß die Bearbeitungsstationen einstellbar sind, um zu unterschiedlichen Längen der Wärmetauscherrohre zu passen, und daß die Folge der verchiedenen Vorgänge sowie die variable Einstellung der Bearbeitungsstationen durch ein einheitliches Steuersystem gesteuert werden.
     


    Revendications

    1. Procédé pour fabriquer des tubes d'échangeurs thermiques, notamment pour un réfrigérateur domestique, comprenant les étapes suivantes :
    couper une longueur de tube d'aluminium d'une source de fourniture de tube d'aluminium;
    couper une longueur de tube de cuivre d'une source de fourniture de tube de cuivre;
    former sur le tube de cuivre une portion terminale rétreinte par formage à la presse;
    joindre ces longueurs coupés en introduisant la portion terminale rétreinte du tube de cuivre dans une extrémité du tube d'aluminium et les souder à leur jonction;
    calibrer la section du tube de cuivre de ces tubes joints;
    nettoyer intérieurement ces tubes joints des résidus de soudure et de calibrage;
    implanter un insert élastique dans l'extrémité libre de la section de tube d'aluminium;
    rétreindre la portion terminale libre de la section de tube de cuivre;
    couder deux fois la section de tube de cuivre pour former une manivelle;
    percer un trou dans la portion coudée de la section de tube de cuivre la plus proche de la jonction, dans la direction axiale de la section de tube d'aluminium;
    couper la longueur du tube capillaire d'une source de fourniture de tube capillaire;
    insérer cette longueur coupée de tube capillaire dans le trou percé, de telle sorte qu'une extrémité du tube capillaire dépasse de l'extrémité libre de la section de tube d'aluminium;
    braser le tube capillaire sur la section de tube de cuivre de façon à obturer hermétiquement le trou percé; et
    enrouler l'extrémité libre du tube capillaire autour de la section de tube de cuivre.
     
    2. Procédé selon la revendication 1, caractérisé en ce que ces opérations successives sont effectuées dans une multiplicité de postes de traitement reliés les uns aux autres par des moyens de transfert automatique.
     
    3. Procédé selon la revendication 2, caractérisé en ce que les moyens de transfert comprennent des mécanismes de transfert pas à pas à navette et/ou des moyens convoyeurs à chaînes équipés de préhenseurs.
     
    4. Procédé selon l'une des revendications précédentes, caractérisé en ce que les postes de traitement peuvent être réglés pour correspondre à des longueurs différentes de tubes d'échangeurs thermiques et en ce que la séquence des diverses opérations, ainsi que le réglage variable des postes de traitement sont commandés par un système de commande unitaire.
     




    Drawing