Spot welding clamp comprising a rigid fluid connection element and corresponding fluid connection element

The rigid fluid connection element in the spot welding clamp addresses the cumbersome and insecure fluid connections of existing clamps by ensuring secure and efficient cooling of electrodes, preventing degradation and hose damage, with easy adjustment for varying sheet thicknesses.

FR3161379A1Pending Publication Date: 2025-10-24GYS
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Patent Information

Application Number
FR2024004027
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-04-18
Publication Date
2025-10-24

AI Technical Summary

Technical Problem

Existing spot welding clamps for joining sheet metal bodywork elements in the automobile industry face issues with cumbersome and insecure fluid connections for cooling electrodes, which can lead to degradation due to thermal energy accumulation and potential hose damage during handling.

Method used

A spot welding clamp with a rigid fluid connection element that secures the connection between the upper welding arm and the electrode support, allowing for adjustable and secure fluid flow to and from the electrode, using a plastic body with inlet and outlet pipes that maintain fluid communication regardless of the electrode's position.

Benefits of technology

The solution provides a simple, secure, and economical means to cool electrodes effectively, preventing degradation and reducing the risk of hose damage, while allowing easy height adjustment of the electrode support.

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Abstract

The invention relates to a spot welding clamp (1) comprising a lower welding arm (12) carrying a first electrode support (121) and a first electrode (122), and an upper welding arm (11) carrying a second electrode support (111) and a second electrode (112) for performing a spot welding between a first sheet metal part and a second sheet metal part by bringing the first electrode (122) into contact with the first sheet metal part and the second electrode (112) into contact with the second sheet metal part, the second electrode support (111) comprising an internal passage path for a heat transfer fluid intended to evacuate the thermal energy which accumulates in the second electrode (112) during the welding phases,the upper welding arm (11) comprising an internal supply conduit (111A) for heat transfer fluid to the internal fluid passageway of the second electrode support (111) and a discharge conduit (112A) for heat transfer fluid coming from said internal heat transfer fluid passageway, the second electrode support (111) being mounted in an adjustable manner on the upper welding arm (11), and in that it comprises a rigid fluid connection element (13) secured to the upper welding arm (11). [Fig 2],
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Description

Title of the invention: Spot welding clamp comprising a rigid fluid connection element and corresponding fluid connection element Technical field of the invention

[0001] The present invention relates to welding apparatus for joining two parts by spot welding.

[0002] The invention relates to a spot welding clamp, useful in particular in the field of industry and in particular, but not exclusively, in the field of the automobile industry for welding bodywork elements of motor vehicles.

[0003] The invention relates more particularly to a technique for cooling a welding clamp used in particular, but not exclusively, in the field of the automobile industry for welding sheet metal parts together. State of the art

[0004] Welding clamps for joining two parts by spot welding, such as sheet metal bodywork elements of motor vehicles, are known. To join these sheets together, they are positioned between two electrodes which are alternately brought together and separated to produce spot welds at different locations on the bodywork.

[0005] As illustrated in [Fig.l], such a spot welding clamp comprises a lower arm carrying a first electrode, and an upper arm carrying a second electrode arranged opposite the first electrode, for performing a spot welding between a first piece of sheet metal superimposed on a second piece of sheet metal by bringing the first electrode into contact with the first piece of sheet metal and the second electrode into contact with the second piece of sheet metal.

[0006] When the electrodes are in contact with the sheets, a current is generated by the current source for a short time and flows between the electrodes, thus passing through the assembly of sheets.

[0007] Passing through the assembly of sheets, the current brings the molten metal to the contact between the two sheets.

[0008] Under the effect of the pinching force, the molten metal from the two sheets mixes to form a single molten zone. As soon as the current is interrupted, the molten zone cools and solidifies to form a connection point between the two sheets.

[0009] This operation causes the accumulation of thermal energy in the electrodes so that it is necessary to cool them to prevent them from degrading too quickly.

[0010] [Fig.l] partially illustrates a welding clamp 1' comprising at one of its ends (on the right here), at the level of the upper welding arm 11', an electrode holder 111' and an electrode 112'.

[0011] The electrode holder 111' is adjustable in height (i.e. vertically) relative to the upper welding arm 111' by means of a clamping device, which makes it possible to vary the height of the electrode 112'.

[0012] The electrode 112' is cooled by means of a cooling liquid, such as water. The path of the cooling liquid is represented schematically by arrows in [Fig.l].

[0013] It can thus be seen that the cooling liquid is brought from a supply line A called upstream into an internal conduit / pipe of the upper welding arm 11' by means of a connector. The cooling liquid then leaves the internal conduit of the upper welding arm 11' by another connector connected to a first end of a flexible pipe T1, the other end of this flexible pipe T1 being connected by means of yet another connector located on the upper part to the electrode holder, or electrode support, 111'. The cooling liquid, heat transfer fluid, circulates in a fluid circuit within the electrode holder 111' in a first direction up to the electrode located in the lower part of the electrode holder 111'. By flowing against the upper portion of the electrode 112', the coolant evacuates the thermal energy which accumulates in the electrode 112' during the welding phases.

[0014] The cooling liquid is then directed in a second direction, opposite to the first direction, towards the upper part of the electrode holder 111'. By means of a connector, the cooling liquid is directed into another flexible / soft pipe T2 connected to the internal cooling circuit of the electrode 122' of the lower welding arm 12' carried by an electrode holder 121', itself connected to a discharge pipe E.

[0015] The use of flexible pipes is advantageous in that it makes it possible to compensate for variations in height of the electrode holder 111' relative to the welding arm 11'.

[0016] This approach is, however, cumbersome.

[0017] In addition, the edges of the sheets to be welded may accidentally come into contact with these hoses during handling and possibly cut them.

[0018] It is important for the Applicant to offer a welding device having further improved performance compared to the welding device of the prior art. aforementioned, while being simple, convenient and economical both in its manufacture and in its use. Statement of the invention

[0019] The invention meets this need by proposing a spot welding clamp comprising a lower welding arm carrying a first electrode support and a first electrode, and an upper welding arm carrying a second electrode support and a second electrode for performing a spot welding between a first sheet metal part and a second sheet metal part by bringing the first electrode into contact with the first sheet metal part and the second electrode into contact with the second sheet metal part, the second electrode support comprising an internal heat transfer fluid passageway intended to evacuate the thermal energy which accumulates in the second electrode during the welding phases, the upper welding arm comprising an internal conduit for supplying heat transfer fluid to the internal fluid passageway of the second electrode support and a conduit for evacuating heat transfer fluid from said internal fluid passageway.

[0020] According to the invention, the second electrode support is mounted in an adjustable manner on the upper welding arm, and in that it comprises a rigid fluid connection element secured to the upper welding arm, said connection element comprising a body in which two fluid connection pipes are provided, called inlet and outlet pipes, configured to connect the internal heat transfer fluid passage path of said second electrode support to the heat transfer fluid supply and discharge pipes respectively of the upper welding arm regardless of the position of the second electrode support relative to the upper welding arm.

[0021] Thanks to the connecting element according to the invention, the fluid connection of the arm to the electrode support is simplified and secure.

[0022] In addition, the height adjustment of the second electrode support relative to the upper arm is done in a secure, rapid and very easy manner.

[0023] Other particularly simple and convenient characteristics of the clamp according to the invention are described below.

[0024] The body of the fluid connection element comprises a housing for receiving said second electrode support, said internal fluid passage path of said second electrode support being in fluid communication with said receiving housing, the so-called inlet fluid connection pipe being in fluid communication with the internal fluid passage path of said second electrode support to bring the heat transfer fluid to the second electrode and the so-called outlet fluid connection pipe opening into said housing receiving means for discharging the heat transfer fluid from the internal fluid passageway of said second electrode support.

[0025] The second electrode support comprises an internal cavity closed at a first end by said second electrode and open at its second end, the connection pipe called the inlet pipe being connected to a heat transfer fluid supply pipe which extends partly into the internal cavity via the second open end and opens there to supply the heat transfer fluid to the second electrode.

[0026] The pipe is sized so that the heat transfer fluid coming from the pipe and discharged into the internal cavity then passes through the space defined between the inner wall of the internal cavity and the outer wall of the pipe towards said receiving housing.

[0027] The body of the fluid connection element comprises a hole for receiving the end of the upper arm extending perpendicular to said housing for receiving said second electrode support.

[0028] The heat transfer fluid supply and discharge conduits of the upper arm are placed in communication with the two fluid connection pipes, called inlet and outlet, of the fluid connection element within the receiving hole.

[0029] The upper arm comprises two jaws for clamping the second electrode support on the upper arm and means for adjusting the jaws between a spaced apart position allowing the second electrode support to be positioned relative to the upper welding arm and a close position locking the second electrode support in position relative to the upper welding arm.

[0030] The adjustment means comprise an adjustment screw cooperating with the two jaws so as to bring these two jaws closer to or further apart from each other.

[0031] The body of the fluid connection element is made of plastic.

[0032] The invention also relates to a rigid fluid connection element intended to be mounted on the upper welding arm of a welding clamp as described previously, said connection element comprising a body in which two fluid connection pipes are provided, called inlet and outlet pipes, configured to connect the internal heat transfer fluid passage path of a second electrode support of the upper welding arm to the heat transfer fluid supply and discharge pipes respectively of the upper welding arm regardless of the position of the second electrode support relative to the upper welding arm. Presentation of figures

[0033] Other aims, characteristics and advantages of the invention will appear more clearly on reading the following description, given as a simple illustrative, and non-limiting, example, in relation to the figures, among which:

[0034] [Fig-1] is a partial view of a prior art spot welding clamp;

[0035] [Fig.2] is a sectional view of a welding clamp according to an embodiment of the invention;

[0036] [Fig.3] is a detailed view, in section, of the end of the upper arm of the welding clamp of [Fig.2];

[0037] [Fig.4] is a perspective view of the end of the upper arm of the welding clamp of [Fig.2] showing the connecting element;

[0038] [Fig.5] is a sectional view of a rigid fluid connection element suitable for use in a welding clamp according to the invention;

[0039] [Fig.6A] and [Fig.6B] illustrate two possible positions of the electrode holder and its electrode on the upper arm;

[0040] [Fig.7] is another detailed view, in section, of the end of the upper arm of the welding clamp of [Fig.2] showing the means for adjusting the electrode holder and its electrode on the upper arm;

[0041] [Fig.8] is a perspective view of the end of the upper arm of the welding clamp of [Fig.2] showing the connecting element of the invention in transparency.

[0042] Detailed description of an embodiment of the invention

[0043] [Fig. 2] is a partial sectional view of a spot welding clamp 1 according to one embodiment of the invention.

[0044] The welding clamp 1 comprises a lower welding arm 12 carrying a first electrode 122, and an upper welding arm 11 carrying a second electrode 112 for performing a welding spot between a first piece of sheet metal and a second piece of sheet metal (not shown) by bringing the active face of the first electrode 122 into contact with the first piece of sheet metal and the active face of the second electrode 112 into contact with the second piece of sheet metal.

[0045] More specifically, the upper welding arm 11 is provided at its end with an electrode holder 111 which extends perpendicularly to the upper welding arm 11. The electrode holder 111 is mounted movably relative to the upper welding arm 11 in the sense that its height or position in the vertical direction, and therefore the distance between the two electrodes, can be adjusted / set by an adjustment mechanism described later.

[0046] The lower welding arm 12 is provided at its end with an electrode holder 121 which extends perpendicular to the lower welding arm 12.

[0047] The welding arms, electrode holders and electrodes are cylindrical in this embodiment.

[0048] A weld is carried out by superimposing the sheets, the welding clamp 1 clamping the assembly of sheets by means of the welding arms 11, 12 and the electrodes 112, 122.

[0049] Each electrode 112, 122 is removably mounted in an electrode holder 111, 121 respectively so that the electrodes 112, 122 are arranged opposite each other.

[0050] The electrodes 112, 122 enclose at least two portions of parts to be welded together and are supplied with high-power electric current, so as to cause partial fusion of the two parts and weld them together.

[0051] As explained previously, this operation causes the accumulation of thermal energy in the electrodes 112, 122 so that it is necessary to cool them to prevent them from degrading too quickly.

[0052] For this purpose, the welding clamp 1 comprises a cooling circuit for the electrodes 112, 122 in which a cooling fluid, heat transfer fluid, circulates in a closed circuit.

[0053] In Figures 2 and 3, the path of the heat transfer liquid in the cooling circuit of the welding gun 1 is schematically illustrated by arrows. The inlet and outlet of the coolant into and out of the circuit respectively are also shown.

[0054] The cooling circuit extends first into the upper welding arm 11 (where the coolant inlet is located) and then into the electrode holder 111 to cool the electrode 112 carried by the electrode holder 111. This will also be described in more detail later.

[0055] In the embodiment described, the cooling circuit is then intended to cool the electrode 122 of the lower welding arm 12. From the upper welding arm 11, the cooling circuit then extends into the lower welding arm 12 then into the electrode holder 121 and forms a loop there opening out at the level of the cooling liquid outlet.

[0056] The structure of the upper welding arm 11 is described below according to an exemplary embodiment.

[0057] In the example illustrated, the upper welding arm 11 consists of a first part 11A onto which a second part or end piece 11B is fitted.

[0058] The first part 1 IA is connected at one of its ends to a heat transfer fluid supply pipe A. The opposite end of the first part 11A is secured to the end piece 1 1B.

[0059] This end piece 1 IB has a through orifice 11 IC extending perpendicular to its longitudinal axis and to the longitudinal axis of the upper welding arm 11 when the end piece 1 IB is mounted on the first part 1 IA.

[0060] The electrode holder 111 is slidably mounted in this through-hole 11 IC so that its position relative to the tip 1 IB and the upper welding arm 11 can be adjusted.

[0061] A mechanism described below makes it possible to adjust the height of the electrode holder 111, that is to say the distance of the electrode 112 relative to the other electrode 122, according to the thickness of the sheets to be welded for example, and to keep the electrode holder 111 fixed in the desired position.

[0062] The electrode holder 111 is cylindrical in shape and has a through hole along its longitudinal axis. This hole has at a first end an opening located at the point of attachment of the electrode 112, this opening being closed when the electrode 112 is mounted on the electrode holder 111. The second end of the hole is open. The hole thus closed delimits an internal cavity 1111 in which a path for the passage of the heat transfer fluid is defined within the electrode holder 111 to cool the electrode 112.

[0063] The electrode 112 is thus secured to the first lower end of the electrode holder 111 by its rear face (the front face of the electrode 112 being that intended to come into contact with a sheet metal) and has at the level of this rear face an internal cavity which extends the hole of the electrode holder 111 so as to form the bottom of the internal cavity 1111.

[0064] A rigid fluid connection element 13 allows the connection of the internal heat transfer fluid passage chamber 1111 of the electrode holder 111 to the rest of the cooling circuit of the welding clamp 1, in particular the portions of the cooling circuit located in the upper welding arm 11.

[0065] The fluid connection element 13 is, in this exemplary embodiment, of generally triangular shape.

[0066] This fluid connection element 13 is in an exemplary embodiment made of plastic material.

[0067] It is shown alone, in section, in [Fig.5].

[0068] It comprises a body 134 in which a receiving hole 137 is provided. the end piece 11B having an open end 137A through which the end piece 11B of the upper welding arm 11 is housed in a sealed manner. In other words, the fluid connection element 13 is fitted at the end of the upper arm 11 around the end piece 11B.

[0069] The body 134 of the connection element 13 further comprises a receiving housing 133 for the electrode holder 111, the longitudinal axis of which extends perpendicular to that of the receiving hole 137 and which has an open end 133A. The end of the electrode holder 111 intended to carry the electrode 112 and located on the side of the open end 133A of the receiving housing 133 projects from the outer surface of the fluid connection element 13 through the open end 133A. It is therefore easy to mount the electrode 112 on the electrode holder 111 and to replace it if necessary.

[0070] The body 134 of the fluid connection element 13 further comprises two fluid connection pipes, namely an inlet pipe 131 for heat transfer fluid opening at one of its ends into the receiving housing 133, at the bottom wall of the latter, and at its other end into the receiving hole 137 towards the open end of the latter.

[0071] The body 134 of the fluid connection element 13 also comprises a rectilinear outlet pipe 132 for heat transfer fluid which opens at one of its ends into the receiving housing 133 at the level of the side wall of the latter and at its other end into the receiving hole 137 towards the open end of the latter.

[0072] The inlet pipe 131 comprises a first rectilinear portion 131A extending parallel to the outlet pipe 132, within the body 134 of the fluid connection element 13.

[0073] The first rectilinear portion 131A and the outlet pipe 132 here extend obliquely on one side of the receiving housing 133 and above the receiving hole 137.

[0074] This first rectilinear portion 131A is extended by a second rectilinear portion 13IB extending at an angle of 45° in the illustrated embodiment with respect to the first rectilinear portion 131A, and located above and upstream of the receiving housing 133.

[0075] The end piece 11B of the upper welding arm 11 has an internal cavity in which two chambers 111B, 112B for the passage of heat transfer fluid are delimited.

[0076] A first chamber 11 IB located on the opening side of the inner cavity is sized to receive the end of the first part 1 IA of the upper arm 11. A first hole located on the outer surface of the end piece 1 IB is fluidically connected to the first chamber 11 IB by means of a channel 113B extending radially into the end piece 1 IB from the first chamber 11 IB.

[0077] A second chamber 112B located downstream of the first chamber 11 IB starting from the opening of the interior cavity is in fluid communication with the first chamber 11 IB. A second hole located on the outer surface of the nozzle 1 IB is fluidically connected to the second chamber 112B by a channel 114B extending radially into the nozzle 11B from the second chamber 112B.

[0078] As previously described, the inner cavity of the tip 11B comprises an internal bore into which the end of the upper welding arm 11 is introduced.

[0079] In an exemplary embodiment, the bore of the end piece 11B has a thread on its inner surface and the end of the first part 11A has a thread on its outer surface. The two elements 11A, 11B are thus secured to each other in a sealed manner by screwing.

[0080] The first part 1 IA of the upper arm 11 has an internal supply conduit 11 IA for heat transfer fluid connected upstream to the heat transfer fluid supply conduit A and which opens into the first chamber 11 IB of the end piece 1 IB once the two elements 11 A, 11B are assembled together.

[0081] A heat transfer fluid discharge pipe or conduit 112A extends within the internal supply conduit 111A and opens through a beveled end into the second chamber 112B.

[0082] The diameter of this heat transfer fluid evacuation pipe 112A is less than the internal diameter of the internal supply pipe 112A and is sized to seal the passage between the first chamber 111B and the second chamber 112B.

[0083] The internal heat transfer fluid supply conduit 11 IA surrounds and is coaxial with the heat transfer fluid discharge pipe 112A.

[0084] The cooling circuit of the welding clamp 1 which is intended to evacuate the thermal energy which accumulates in the electrode 112 during the welding phases therefore comprises an internal supply conduit 11 IA in which the fluid is maintained at a substantially constant inlet pressure, and a discharge pipe 112A for said fluid.

[0085] The heat transfer fluid thus flows in the internal supply conduit 11 IA around the discharge pipe 112A to the first chamber 11 1B. It then passes through the radial channel 113B to the first hole which communicates with the heat transfer fluid inlet connection pipe 131 of the fluid connection element 13. It thus passes through the first and second portions 131 A, 131B of the inlet connection pipe 131, then towards the internal passage path of the heat transfer fluid of the electrode holder 111.

[0086] The return heat transfer fluid from the internal heat transfer fluid passageway of the electrode holder 111 flows from the outlet connection pipe 132 of the fluid connection element 13 into the second chamber 112B via the second hole and the second radial channel 114B, and then enters the heat transfer fluid discharge pipe 112A.

[0087] It is noted that two sealing gaskets 136 are each arranged in a groove circular of the inner surface of the receiving hole 137 and come into contact with the outer surface of the first part 1 IA of the upper welding arm 11.

[0088] It is further noted that a heat transfer fluid supply pipe 135 is inserted into the end of the second portion 13IB of the inlet connection pipe 131, this end being located at the bottom of the receiving housing 133 of the fluid connection element 13.

[0089] The pipe 135, which is not visible in [Fig. 5] but in figures 2, 3, 6A, 6B, 7 and 8, extends into the receiving housing 133, then into the internal cavity 1111 of the electrode holder 111 through the open end. In this example, it opens out near the bottom of the internal cavity 1111 of the electrode holder 111 to bring the heat transfer fluid as close as possible to the electrode 112.

[0090] The diameter of the pipe 135 is dimensioned so that a space for the passage of heat transfer fluid remains between its outer surface and the inner surface of the internal cavity 1111 of the electrode holder 111.

[0091] The heat transfer fluid coming from the inlet connection pipe 131 of the fluid connection element 13 circulates in the pipe 135 from top to bottom then flows into the passage space of the internal cavity 1111 of the electrode holder 111 from bottom to top until it emerges near the bottom of the receiving housing 133.

[0092] By flowing in the internal passage path of the electrode holder 111, the cooling fluid, heat transfer fluid, passes against the rear face of the electrode 112 which closes the internal cavity 1111, so as to evacuate the thermal energy which accumulates in the electrode 112 during the welding phases.

[0093] It is noted that another seal 136 is arranged in a circular groove of the internal surface of the receiving housing 133 and comes into contact with the external surface of the electrode holder 111.

[0094] Thus, once it reaches the bottom of the receiving housing 133 which constitutes a sealed space, the heat transfer fluid is introduced into the outlet connection pipe 132 of the fluid connection element 13.

[0095] The two fluid connection pipes, called inlet and outlet, of the connection element are thus configured to connect the internal heat transfer fluid passage path of the second electrode support to the heat transfer fluid supply and discharge pipes respectively of the upper welding arm regardless of the position of the second electrode support relative to the upper welding arm 11.

[0096] [Fig.6A] and 6B illustrate two possible positions of the electrode holder 111 and its electrode 112 on the upper welding arm 11 in which the heat transfer fluid is able to circulate in the cooling circuit of the welding clamp 1 via the internal heat transfer fluid passage chamber 1111 of the electrode holder 111.

[0097] As visible in [Fig.7], the cylindrical end piece 11B has at its end a slot-shaped opening 111D which extends over the entire diameter of the end piece 11B.

[0098] This slot 111D extends within the end piece 11B to the through-orifice 11IC in which the electrode holder 111 is intended to be mounted. The slot 111D separates the end of the tip 1 IB in two parts or jaws 111E, 111F arranged opposite each other.

[0099] These two jaws 111E, 111F each have an internal bore perpendicular to the axis of the slot 111D in which an adjustment screw 14 is arranged which allows the user to bring these two jaws 111E, 111F closer to or further apart from each other, and therefore to tighten the electrode holder 111 more or less in the through-orifice 11 IC.

[0100] The adjustment screw 14 is accessible at the level of the external surface of the rigid connection 13 which is arranged around the end piece 11B and which also comprises a passage orifice 133B for the adjustment screw 14. When the adjustment screw 14 is loosened, the two jaws 111E, 111F are in the open configuration which makes it possible to introduce the electrode holder 111 into the through orifice 111C and to adjust its position relative to the end piece 11B.

[0101] The adjusting screw 14 can then be tightened to bring the two jaws 111E, 111F together and hold the electrode holder 111 in the chosen position.

[0102] It is therefore easy to adjust the distance of the electrode 112 relative to the other electrode 122, depending on the thickness of the sheets to be welded for example, and to keep the electrode holder 111 fixed in the desired position.

[0103] Advantageously, whatever the position of the electrode support 111 relative to the upper welding arm 11, the heat transfer fluid is directed towards the electrode 112 to evacuate the thermal energy which accumulates in the electrode 112 during the welding phases.

[0104] It is noted in this respect that there remains a space between the bottom of the receiving housing 133 and the end of the electrode holder 111 oriented towards this bottom. This allows movement of the electrode holder 111 within the receiving housing 133 when the adjustment screw is actuated.

[0105] The welding clamp 1 has a means of generating very strong electric currents which are transmitted through the two electrodes clamping the materials to be welded together.

[0106] Given the greater electrical resistance of the materials than that of the electrodes, the passage of the current heats the materials and welding takes place.

[0107] For the sake of clarity, the generation means and the electrical power supply cables are not shown.

[0108] The two welding arms 11, 12 of the welding clamp 1 are electrically insulated from each other. An actuator (not shown) is intended to actuate the arms of the welding clamp.

[0109] In alternative embodiments, a rigid fluid connection element may alternatively or also be implemented on the lower welding arm, the first electrode support comprising an internal passage path for a heat transfer fluid similar to that described previously.

[0110] Of course, it goes without saying that the invention is not limited to the embodiment more specifically described above with reference to the attached drawings; on the contrary, it encompasses all variants thereof.

Claims

Claims

1. Spot welding clamp (1) comprising a lower welding arm (12) carrying a first electrode support (121) and a first electrode (122), and an upper welding arm (11) carrying a second electrode support (111) and a second electrode (112) for performing a spot welding between a first sheet metal part and a second sheet metal part by bringing the first electrode (122) into contact with the first sheet metal part and the second electrode (112) into contact with the second sheet metal part, the second electrode support (111) comprising an internal passage path for a heat transfer fluid intended to evacuate the thermal energy which accumulates in the second electrode (112) during the welding phases,the upper welding arm (11) comprising an internal supply conduit (111 A) for heat transfer fluid to the internal fluid passageway of the second electrode support (111) and a discharge conduit (112A) for heat transfer fluid coming from said internal heat transfer fluid passageway, the welding clamp (1) being characterized in that the second electrode support (111) is mounted in an adjustable manner on the upper welding arm (11), and in that it comprises a rigid fluid connection element (13) secured to the upper welding arm (11), said connection element (13) comprising a body (134) in which two fluid connection pipes (131, 132) are arranged, called inlet and outlet,configured to connect the internal heat transfer fluid passage path of said second electrode support (111) to the heat transfer fluid supply and discharge conduits respectively of the upper welding arm (11) regardless of the position of the second electrode support (111) relative to the upper welding arm (11).,

2. Welding clamp (1) according to claim 1, characterized in that the body (134) of the fluid connection element (13) comprises a receiving housing (133) for said second electrode support (111), said internal fluid passage path of said second electrode support (111) being in fluid communication with said receiving housing (133), the so-called inlet fluid connection pipe (131) being in fluid communication with the internal fluid passage path of said second support electrode (111) for bringing the heat transfer fluid to the second electrode (112) and the fluid connection pipe (132) called the outlet pipe opening into said receiving housing (133) for evacuating the heat transfer fluid coming from the internal fluid passage path of said second electrode support (111).

3. Welding clamp (1) according to claim 2, characterized in that the second electrode support (111) comprises an internal cavity (1111) closed at a first end by said second electrode (112) and open at its second end, the connection pipe (131) called the inlet pipe being connected to a pipe (135) for supplying heat transfer fluid which extends partly into the internal cavity (1111) by the second open end and opens there to supply the heat transfer fluid to the second electrode (112).

4. Welding clamp (1) according to claim 3, characterized in that the pipe (135) is sized so that the heat transfer fluid coming from the pipe and poured into the internal cavity (1111) then passes through the space defined between the internal wall of the internal cavity (1111) and the external wall of the pipe (135) towards said receiving housing (133).

5. Welding clamp (1) according to one of claims 2 to 4, characterized in that the body (134) of the fluid connection element (13) comprises a receiving hole (137) of the end of the upper arm (11) extending perpendicular to said receiving housing (133) of said second electrode support (111).

6. Welding clamp (1) according to claim 5, characterized in that the heat transfer fluid supply and discharge conduits (11 IA, 112A) of the upper arm (11) are placed in communication with the two fluid connection pipes (131, 132), called inlet and outlet, of the fluid connection element (13) within the receiving hole (137).

7. Welding clamp (1) according to one of the preceding claims, characterized in that the upper arm (11) comprises two jaws for clamping the second electrode support (111) on the upper arm (11) and means for adjusting the jaws between a spaced apart position allowing the positioning of the second electrode support (111) relative to the upper welding arm (11) and a close position locking the second electrode support (111) in position relative to the upper welding arm (11).

8. Welding clamp (1) according to the preceding claim, characterized in that the adjustment means comprise an adjustment screw cooperating with the two jaws so as to bring these two jaws closer to or further apart from each other.

9. Welding clamp (1) according to one of the preceding claims, characterized in that the body (134) of the fluid connection element (13) is made of plastic.

10. Rigid fluid connection element (13) intended to be mounted on the upper welding arm (11) of a welding clamp (1) according to one of claims 1 to 9, said connection element (13) comprising a body (134) in which are provided two fluid connection pipes (131, 132), called inlet and outlet, configured to connect the internal heat transfer fluid passage path of a second electrode support (111) of the upper welding arm (11) to the heat transfer fluid supply and discharge pipes respectively of the upper welding arm (11) regardless of the position of the second electrode support (111) relative to the upper welding arm (11).

Citation Information

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