Improved method and configuration for martensitic-free brazing process
The carbon electrode-based brazing process with a guard ring effectively controls heat and current to prevent martensite formation, facilitating the brazing of larger conductive materials with reduced energy consumption.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-06
- Publication Date
- 2026-04-08
AI Technical Summary
Existing brazing methods for railway tracks and similar applications generate excessive heat, leading to martensite formation, which can cause cracks and structural damage, especially when connecting large cables or conductive pieces.
A temperature-controlled brazing process using a carbon electrode to generate an electric arc, controlled by voltage and current, with a guard ring to prevent direct contact and excessive heat, allowing for larger cross-sectional areas without martensite formation.
The method reduces power consumption and heat generation, preventing martensite formation while enabling the brazing of larger conductive materials with improved control over the brazing process.
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Abstract
Description
Technical Field
[0001] The present invention relates to an improved method for brazing a connecting piece of a conductive material, such as metal, to a metal surface by an improved type of temperature-controlled brazing.
Background Art
[0002] There are temperature-controlled brazing methods by which, for a specific type of material, such as steel, martensite-free brazing can be obtained, i.e., the brazing is achieved without any harmful structural changes (martensite formation) in the workpiece. Brazed joints are obtained, for example, in railway tracks (rails), piping / pipelines, and wind power generation facilities, using parts of the workpiece under brazed joints with little or no martensite formation. The present invention relates to an improved method and an apparatus for performing the improved method.
[0003] The development of railway transportation is increasingly accompanied by higher speeds and heavier axle loads. For this reason, the requirements for the strength of railway tracks and their ability to withstand wear are increasing, so rails are manufactured from high-alloy steel to meet these more stringent requirements. The materials from which rails are manufactured are sensitive to thermal effects that can cause a structural change known as martensite formation (hardening effect).
[0004] Martensite formation can cause cracks to form in the rail material, and with higher loads, the rail may break, with catastrophic consequences for railway transportation. Therefore, it is very important to firmly braze wiring and cables, such as signals, to the rail using a method that does not form martensite in the rail.
[0005] The prior art in this field includes Patent Document 1, which discloses a method and configuration of a martensite-free brazing process.
Prior Art Documents
[0006] [Patent Document 1] British Patent No. 2376202 [Overview of the project] [Problems that the invention aims to solve]
[0007] The most serious problem with the current methods used on railway tracks is the large amount of heat generated beneath the brazed joint, which is caused by the electric arc generated during the brazing process, resulting in harmful structural changes or martensite formation.
[0008] The gist of this invention includes a special shape for electrodes used in the process and further means for controlling the voltage and current used in the process. Advantages of this method include low heat generation, low power consumption, and the ability to conveniently braze connecting pieces due to a larger conductive cross-sectional area than known techniques. Currently, known brazing techniques are not suitable for large cables, i.e., about 25-35 mm. 2 It is virtually impossible to connect cables with a larger cross-sectional area without causing significant martensite formation. (120mm) 2 Tests of the newly proposed method, including the conductive cross-sectional area, show good results, with little to no martensite formation after brazing.
[0009] The present invention relates to a novel temperature-controlled brazing method and an apparatus for carrying out the method, which reduces power consumption and heat generation while simultaneously addressing the problem of martensite formation. Furthermore, the novel method facilitates the brazing of cable shoes to increase the cross-sectional area of the conductors involved.
[0010] The objective of the present invention is to generate an electric arc via a carbon electrode, thereby creating a brazed joint of a workpiece to a rail without the electric arc directly contacting the rail, and to produce a connection of equivalent or better quality compared to the prior art, while reducing power consumption and heat generation.
[0011] A further objective is to facilitate the brazing of conductive materials over areas larger than those permitted by conventional techniques. [Means for solving the problem]
[0012] In embodiments of the present invention, the carbon electrode itself constitutes the electrical resistance in the brazing process, and the length, diameter, and shape of the carbon electrode affect the electrical resistance in the process, which in turn affects the current intensity and voltage in the brazing process.
[0013] Because carbon materials have good fire resistance, while metal electrodes melt, carbon electrodes provide optimal control over the entire arc length during the brazing process. Therefore, the change in length of a carbon electrode during the brazing process is negligible compared to a molten metal brazing pin.
[0014] Another objective of this brazing process, applied to fixing cable shoes or other conductive contact connections to a steel rail, is to prevent the electric arc from directly contacting the workpiece, an objective achieved when the conductive contact connection consists of a compact conductive material, such as a solid copper plate. In this context, the brazing process does not involve flux material or brazing material from any brazing pins forming electrodes. The brazing material does not need to flow through the cable shoe to the workpiece (rail) below. Due to the structure of the cable shoe, the flux material and brazing material are located beneath the electrical contact connection or the cable shoe itself. The entire compact conductive material, such as a copper plate, forms a buffer that prevents excessively high temperatures that would affect the rail and lead to martensite formation. Furthermore, the electrodes are not ultimately pushed downward during brazing, eliminating the risk of adversely affecting the brazed joint.
[0015] Another objective of the present invention is to control the current intensity during the process. Raising the electrode lengthens the arc length. This results in a large voltage drop across the entire arc, reducing the current intensity in the electrical circuit. The arc length cannot be increased entirely arbitrarily, as the arc will collapse if the resistance becomes too high after a certain length. A small gap between the electrode and the workpiece, the so-called lift height, reliably prevents the arc from going out during the brazing process. Low current intensity during the process is highly advantageous because it prevents martensite formation.
[0016] In the present invention, it is preferable to use a guard ring made of ceramic material, but it is also preferable to use a guard ring made of a combination of metal material and ceramic material, as the combined effect enhances the protection provided to the brazing gun.
[0017] From the standpoint of energy consumption, the material and design of the guard ring play an important role. The guard ring of the embodiment of the present invention is designed with a larger diameter to avoid the guard ring becoming hot, and also has the advantage of being able to accommodate a larger volume of hot gas.
[0018] The guard ring, along with the gripping sleeve, prevents the operator from coming into contact with the arc itself or the hot gases being formed. This reduces the need for protective equipment for the operator. It also eliminates the risk of eye injury to operators who look at the arc during the brazing process.
[0019] According to a first aspect of the present invention, a method is provided for brazing a conductive connecting piece, such as a cable shoe, to a workpiece of a conductive material by a temperature-controlled brazing process, wherein the method generates the heat necessary for brazing by igniting an electric arc between a carbon electrode and the conductive connecting piece. The steps include providing a DC voltage between a carbon electrode and a conductive connecting piece, such as a cable shoe, The steps include measuring the voltage that appears across the arc, The steps include measuring the current of the arc, The steps include controlling the voltage applied between the carbon electrode and the conductive connecting piece, and therefore across both ends of the arc, The method includes the step of calculating the power generated by the arc in real time, continuously or in real time, and this method is The steps include: continuously or continuously measuring the current in the arc and the voltage across the arc in real time; The steps include: calculating the corresponding power generated in real time, continuously or in real time, as the mathematical product of the current and the voltage; The steps include: controlling the DC voltage and thereby controlling the power generated; It further includes, The applied DC voltage uses a carbon electrode as the negative electrode and a conductive connector as the positive electrode. The carbon electrode has a tapered, chamfered or pointed end at the end facing the electric arc.
[0020] This method · includes receiving an operator input of the conductor cross-sectional area, and · using the input to adjust the calculation and controlling the DC voltage to achieve and maintain an appropriate temperature at the brazing site. It may further include.
[0021] According to a second aspect of the present invention, there is provided an apparatus for brazing a conductive connection piece to a workpiece of a conductive material by a temperature-controlled brazing process, generating heat required for brazing by arcing an electric arc between a carbon electrode and the conductive connection piece, the apparatus comprising: (a) means for engaging the conductive connection piece towards the workpiece, the means for engaging including a guard ring and a carbon electrode; (b) means for supporting the electrode, the means for supporting including means for moving the electrode between a position where the electrode engages with the electrically conductive connection piece and then is engaged by the means for engaging, and a retracted position where the electrode is lifted therefrom; (c) a DC voltage unit for providing and applying a DC voltage of a specific polarity between the conductive connection piece and the carbon electrode, the DC voltage unit including a voltage adjustment unit; (d) a voltage sensor for measuring the voltage between the conductive connection piece and the carbon electrode; (e) a current sensor for measuring the current flowing through the carbon electrode; (f) processing means including means for generating an output signal for controlling the voltage adjustment unit, and further including means for continuously or continuously calculating in real time the power generated by the arc; (g) A switching means operable to connect the means for applying voltage in an electrical circuit to the electrode and such conductive connecting piece, wherein when the engaging means is applied and the switching means is operated to close the electrical circuit, the supporting and moving means lift the electrode away from the workpiece and ignite an electric arc between the electrode and the conductive connecting piece, Includes, (h) The carbon electrode has a pointed, tapered, or chamfered first end for the electric arc, (i) The DC voltage unit is configured such that the polarity of the applied DC voltage is a specific polarity, using the carbon electrode as the negative electrode and the conductive connector as the positive electrode.
[0022] The apparatus may be further configured to automatically supply heat using a first power during the first time portion of the total brazing time and a second power during the second time portion of the total brazing time. Preferably, the first power is set to a value for rapidly heating the brazing site, and the second power is lower than the first power and is a value for maintaining the temperature achieved at the brazing site.
[0023] To further control the heating, a process having three or more distinct periods of different heating supplies may be provided. The process may have, for example, four periods or steps, namely, step 1 fast heating, step 2 slow heating, step 3 temperature maintenance, and step 4 slow cooling.
[0024] The apparatus may further include an input device for setting appropriate parameters for the electrical cross-sectional area of the conductor to be brazed. The processor is configured to calculate the time and voltage for brazing, taking into account parameters for providing the appropriate voltage and time to achieve the appropriate amount of heat over an appropriate length of time.
[0025] This has the advantage of allowing for more precise control of brazing, for example, in terms of time and temperature.
[0026] According to a third embodiment, a cable shoe for martensitic-free brazing is provided, the front portion of which is formed as a compact plate configured to be brazed to contact a workpiece, and the rear end is formed to define a cable cavity for a cable, the cable shoe further designed such that the cable cavity extends within a tapered cavity, and the cable shoe is designed to give the cable shoe a uniform cross-sectional area along its length from the compact plate to the beginning of the cable cavity. Tests have shown advantageously that the cable shoe with the extended cavity reduces the power required to perform the brazing process. Furthermore, the compact plate of the front portion may comprise a brazing material, for example, a silver alloy with or without flux material, which is preferably attached to the compact plate by pressing or melting. Particularly advantageous is the manufacture of the cable shoe by pressing a brazing clip containing the silver alloy toward the compact plate, thereby attaching the brazing clip to the compact plate. [Brief explanation of the drawing]
[0027] Embodiments of the present invention will be described in more detail below with reference to the accompanying drawings.
[0028] [Figure 1A] This outlines the brazing process. [Figure 1B] Figure 1A is shown in detail. [Figure 1C] This diagram schematically shows the direction of ion and electron movement in a brazing arc. [Figure 1D] This figure schematically shows the direction of ion and electron movement in a reverse polarity brazing arc compared to Figure 1C. [Figure 2] This is a partial side view of a brazing gun that embodies the present invention. [Figure 3] Figure 4A shows a cross-sectional view of a brazing gun along the line III-III. [Figure 4] This is a side view showing a brazing gun in a partial longitudinal (axial) section. [Figure 5] This shows the brazing process on the rails. [Figure 6] This shows brazing work on a pipeline section. [Figure 7] This shows the brazed joint between the outer and inner wheel rims of a railway carriage. [Figure 8] A conductive connector in the form of a cable shoe is shown from the side. [Figure 9] This is a side view of the cable shoe. [Figure 10A] This shows the cable shoe as viewed from above. [Figure 10B] This is a diagram of the cable shoe shown in Figure 10A, viewed from the rear. [Figure 10C] Figure 10A is a side view of the cable shoe. [Figure 10D] Figure 10A is a front view of the cable shoe. [Figure 11] This is a diagram showing the voltage / current / temperature of a conventional brazing process. [Figure 12A] This is a diagram showing the voltage / current / temperature of the brazing process using a new method applied to the first cross-sectional area. [Figure 12B] This is a diagram showing the current / voltage / temperature of the brazing process using a new method applied to the second cross-sectional area. [Figure 13] This is a front view of the main input panel for entering brazing parameters. [Figure 14A] This is a flowchart for controlling and adjusting the brazing process. [Figure 14B] This is a flowchart showing the steps involved in the process. [Figure 15A] This is a partial view of the front part of a brazing gun, showing a section in the longitudinal (axial) direction. [Figure 15B] This is a side view of a carbon electrode according to an embodiment of the present invention. [Figure 15C] This is a side view of a carbon electrode according to an embodiment of the present invention. [Figure 15D] This is a side view of a carbon electrode according to an embodiment of the present invention. [Figure 15E] This is a top view of a circular cross-section electrode, located below the top view of a square cross-section electrode. [Modes for carrying out the invention]
[0029] Figure 1A schematically shows the necessary components and the procedure of the brazing process itself according to a relevant embodiment, where the power source typically used is a battery 1 from which current is conducted to an electronic unit 2. The electronic unit 2 is configured to process data received from the brazing gun 5 via its power cable and signal cable, as well as data from an external power source. The electronic unit 2 processes all the information and is configured to regulate the current and voltage supply to the brazing gun 5, for example, by electronically adjusting the voltage level. This regulation allows control of time and current consumption during the brazing process, and in this way, combined with temperature control within the substrate / workpiece, satisfactory brazing can be achieved with minimal energy consumption.
[0030] When the circuit breaker 3 closes the electrical circuit equipped with a lift magnet in the brazing gun 5, the carbon electrode 6 located in the electrode holder 7 first short-circuits the cable shoe 10 and the circuit, and as a result the electromagnet then lifts the carbon electrode 6 from the cable shoe 10, igniting an electric arc 8 protected by one or more guard rings 9, which operates on the compact, flat surface of the cable shoe 10, with the cable shoe forming one pole and the carbon electrode 6 forming the other pole. Heat is transferred through the cable shoe 10, activating the flux between the cable shoe 10 and the brazing material 12, preparing and cleaning the surface for brazing between the brazing material 12 and the cable shoe 10, and heating the brazing material 12, which activates the flux on the workpiece 14, and the brazed joint is formed by the brazing material 12 on the workpiece 14. As a result the cable shoe 10 is firmly brazed to the workpiece 14 without the electric arc 18 directly contacting the workpiece 14.
[0031] Furthermore, since the electrical circuit is formed through the cable shoe 10 or the guard ring 9 and not through the workpiece 14 itself, no undesirable sparks / arcs are generated between the workpiece 14 and the cable shoe 10.
[0032] In the new brazing process, a compact conductive material, such as an entire copper plate, forms a buffer that prevents high temperatures from affecting, for example, the rail and causing martensite formation. Copper particles are released from the cable shoe plate during the brazing process and deposited on the carbon electrode in the form of a thin layer (see Figure 1C). Small cavities may be formed within the cable shoe 10 during the brazing process. The cable shoe may be configured to allow this cavity formation without significantly compromising the mechanical strength of the cable shoe.
[0033] Figure 1D schematically shows the direction of ion and electron movement in a reverse-polarity brazing arc compared to Figure 1C. The elliptical region indicates the arc width, suggesting that using the polarity corresponding to the negative carbon electrode in Figure 1C results in a narrower, more focused arc, while connecting the carbon electrode to positive polarity yields a wider or more blurred arc. Tests have shown that selecting negative polarity for the carbon electrode can reduce the energy required for brazing. The energy reduction is approximately 30%.
[0034] From an energy perspective, the guard ring plays a crucial role during the brazing process. The guard ring 9 is formed to provide good thermal insulation. The guard ring 9 may be made of a ceramic material and have a toothed lower edge. In this case, the hot gases formed during the brazing process are released radially. If the guard ring is made of metal and has a smooth lower surface, the gases escape from the guard ring axially, so more heat is transferred to the guard ring 9. The guard ring 9 maintains its shape and function and remains stable throughout the brazing process. The heat absorbed by the guard ring is conducted to the cable shoe 10. As a result, less electrical energy and / or power is consumed during the brazing process, and martensitic-free brazing is achieved.
[0035] Figure 2 is a side view of the brazing gun 5, with the carbon electrode 6 visible on its front. Before starting the brazing process, the gun 5 is pushed down onto the cable shoe 10 along with the carbon electrode 6, thereby pressing the carbon electrode 6 flush with the lower edge of the guard ring 9. The guard ring 9 is secured to the ring holder 15. When the circuit breaker or start button 3 is pressed, the circuit is short-circuited, and then the lift magnet raises the electrode 6 to a certain height above the conductive connector 10, striking an arc 8. The guard ring 9 and gripping sleeve 18 shield the operator from the process. The figure also shows a screw 16 for ejecting the guard ring and a screw 17 for ejecting the electrode. During the brazing process, if the guard ring 9 is made of metal or other conductive material, it can act as a terminal in the grounding operation.
[0036] Figure 3 shows a cross-section of the brazing gun 5 viewed from the front, where the circuit breaker 3 can be seen. At the center of the gun's nozzle, the carbon electrode 6 in the electrode holder 7 is positioned along with the ring holder 15 and gripping sleeve 18.
[0037] Figure 4 shows a cross-section of the end of the brazing gun 5, showing the circuit breaker 3, the carbon electrode 6 in the electrode holder 7, the ceramic guard ring 9 in the ring holder 15, the gripping sleeve 18, the screw 16 for ejecting the guard ring, and the screw 17 for ejecting the electrode. A very important component in the brazing process is the carbon electrode, which forms the electrical resistance, and the length, diameter, and shape of the carbon electrode affect the electrical resistance in the process. The current intensity and voltage during the brazing procedure are controlled by control electronics. The control electronics are configured to provide voltage and current as a function of time according to Figures 12B, 12C, and 12D to achieve a suitable brazing temperature at the brazing site (see below).
[0038] Figure 5 shows a brazing gun 5 used on the rail 14. The conductive piece 10, shaped like a cable clip, is securely brazed to the head of the rail. Brazing may also be performed on the web portion or foot of the rail.
[0039] Figure 6 shows a brazing gun 5 used on a workpiece 14 in the form of a piping section. A conductive connecting piece 10 in the shape of a cable shoe is securely brazed to the pipe. Strict requirements apply particularly to piping in nuclear power plants, where brazing must be performed without causing structural changes in the piping material that could lead to crack formation. When pipes are filled with gas or oil, or when pipes are filled with temperature-sensitive materials, for example in the chemical industry, it is important that the brazing can function at low temperatures.
[0040] Figure 7 shows a rail transport wheel. The inner wheel 20 is fixed to the wheel axle 21, and a damper 23, for example made of rubber, is positioned between the inner wheel and the outer wheel ring 19, the so-called tread. This figure shows how a connecting piece 22 made of conductive connecting material joins the inner wheel 20 to the outer wheel ring 19 so that electric current can flow from the rail carriage to the rail track. Due to the risk of martensite formation and associated crack formation, pin brazing has not been attempted in connection with this connection to date. This brazing process eliminates martensite formation in all cases and makes it possible to perform brazing in this area as well.
[0041] Figure 8 is a side view of a cable shoe 10, which is a conductive material connecting piece from which a terminal connector 24 to an electrical circuit can be seen. The terminal connector 24 is fixed to an electrical cable 25 leading to the cable shoe 10, and the opposite end consists of a solid plate 26 made of compact material. Around this continuous plate 26 of compact material are brazing clips 27 which are pressed against the plate 26 of the cable shoe 10 itself during manufacturing, and a flux material 28 is provided between the cable shoe 10 and the brazing clips 27 which is activated during the brazing process.
[0042] Figure 9 is also a side view of the cable shoe 10, where the brazing itself is performed by the brazing gun 5 on the flat continuous compact plate 26 of the cable shoe 10, and a brazing clip 12 can be seen being pressed against the cable shoe 10, with flux material 11 being heated between the underside of the cable shoe 10 and the brazing clip 12. Another flux material 13 is provided between the workpiece 14 and the clip 27, and is activated when the brazing clip 27 is heated, beginning to clean the workpiece 14 before brazing the conductive connector 10.
[0043] The brazing clip 12 has a uniform thickness before being applied to the workpiece to be fixed. When the brazing material is melted by the heat applied through the compact plate 26 of the cable shoe 10, the surface tension of the molten material wetting the compact plate 26 and the workpiece 14 results in a change in thickness, in the sense that the distance between the compact plate 26 and the workpiece, i.e., the distance of the area occupied by the brazing material, is minimized, thus ensuring a strong bond between the compact plate 26 and the workpiece, as well as good electrical and thermal conductivity. The flux materials 11 and 13 perform the following tasks and have the following properties: 1) clean the surface, 2) remove any present oxides, 3) prevent re-oxidation, 4) are displaced by the molten brazing material, 5) act as a conductor when the cable shoe 10 is grounded via the rail, 6) promote heat dissipation due to having good thermal conductivity, and 7) wet the surfaces to be joined.
[0044] Another requirement is that the flux materials 28 and 29 should be activated within a specific temperature range. The flux materials, brazing materials, and brazing process must be compatible with each other. The flux materials are already activated at the start of the brazing process and remain active until brazing is achieved.
[0045] Brazing performed at approximately 500°C is called hard brazing, in contrast to soft brazing which occurs at lower temperatures. The brazing material used in the brazing process of this application is intended for hard brazing. However, flux materials intended for hard brazing are not suitable for this process because the process is performed too quickly, in about 2 seconds. In this brazing process, flux material 10 is used that is normally suitable for soft brazing and is therefore activated at lower temperatures but does not collapse before brazing is complete due to the short working time.
[0046] To reach the required brazing temperature but use as little energy as possible, a large power input is required for a short period of time. Railway tracks, thick-walled pipes, and similar metal profiles are effective heat sinks. A large power input generates a heat front that moves downward into the rails through the cable shoe, in which case the temperature is suitable for hard brazing but does not lead to martensite formation.
[0047] The cable shoe 10 acts as a buffer against localized overheating, creating a relatively smooth temperature distribution across the entire molten surface. Indirect heating is performed by the carbon electrode 6. An electric arc 8 is formed between the carbon electrode 6 and the cable shoe 10. In contrast to conventional pin brazing, the arc acts directly on the rail and / or the molten solder on the rail.
[0048] Figure 10A shows the cable shoe 10 viewed from above. The front portion is formed as a compact plate 26 to which a brazed clip 27 is attached. The dashed line indicates the definition of the cable cavity 31 for the cable. The cable shoe 10 is further designed so that the cable cavity 31 extends into a tapered cavity 33, and is designed to give the cable shoe 10 a uniform cross-sectional area from the compact plate to the beginning of the mated cable.
[0049] Figure 10B is a view of the cable shoe shown in Figure 10A from the rear.
[0050] Figure 10C is a side view of the cable shoe shown in Figure 10A, and Figure 10D is a front view of the cable shoe shown in Figure 10A.
[0051] Thus, a cable shoe for martensitic-free brazing is provided, the front portion of which is formed as a compact plate configured to be brazed to contact a workpiece, and the rear end is formed to define a cable cavity for the cable, and the cable shoe is further designed so that the cable cavity extends within a tapered cavity, and so as to give the cable shoe a uniform cross-sectional area along its length from the compact plate to the beginning of the cable cavity. Tests have shown advantageously that the cable shoe with the extended cavity reduces the power required to perform the brazing process. Furthermore, the compact plate of the front portion may comprise a brazing material, for example, a certain amount of silver alloy with or without flux material, which is preferably attached to the compact plate by pressing or melting. Particularly advantageous is the manufacture of the cable shoe by pressing a brazing clip containing the silver alloy toward the compact plate, and thus attaching the brazing clip to the compact plate.
[0052] In railway signaling systems and cathode protection systems operating at low voltages and currents, it is particularly important that the overall transition resistance of the brazed joint 50 is low in order to prevent interference in the system.
[0053] At high currents and voltages, high transition resistance can generate heat at brazed joints, potentially damaging and / or melting them. For this reason, low transition resistance is crucial at brazed joints, as connections in railway operating systems must also handle high return currents. Similarly, low transition resistance is important for protective earthing.
[0054] Figure 11 shows the voltage / current / temperature of a conventional brazing process.
[0055] Figures 12A and 12B show the voltage / current / temperature curves for the new brazing process. Compared to existing pin brazing, there are no large current surges similar to those that occur when a short circuit occurs. Both the voltage and current curves remain relatively constant over time. These figures demonstrate that the present invention provides optimal control of the brazing process. Therefore, the temperature during the brazing process can also be adjusted and controlled, which is a prerequisite for obtaining martensitic-free brazing.
[0056] Compared with some prior art martensitic-free brazing, the apparatus and method of the present invention may include a two-phase process in which the voltage is automatically controlled to provide heat by using a first power during a first time portion of the total brazing time and a second power during a second time portion of the total brazing time. Preferably, the first power is set to a value for rapidly heating the brazing site, and the second power is lower than the first power and is a value for maintaining the temperature achieved at the brazing site.
[0057] Figure 12A shows the voltage / current / temperature of the brazing process using a new method applied to a first cross-sectional area. The strength of the new method lies in its ability to achieve brazing of larger cross-sectional areas. The brazed cross-sectional area that produces the diagram in Figure 12A is 16 mm². 2 That is the case.
[0058] Figure 12B shows the current / voltage / temperature of the brazing process using a new method applied to a second cross-sectional area. The brazed cross-sectional area that produces the diagram in Figure 12B is 120 mm². 2 That is the case.
[0059] Figure 13 is a front view of the main input panel for entering brazing parameters. Input buttons, keys, or knobs are provided for entering settings, i.e., by repeatedly pressing the setting buttons, a list is scrolled to select different cross-sectional areas, e.g., 10, 16, 25, 35, 50, 70, 95, and 120 mm. 2A setting is selected from a list of predefined settings for the device. The settings may include voltage and / or current and duration for providing a specific voltage / current, as further shown in Figures 12A and 12B. The panel further includes a display showing the current setting. The panel may further include a fuse and / or control indicator and an on / off button. Furthermore, the input panel may further have sockets for connecting a plug to the brazing gun, for connecting ground, and for connecting a charger for charging the battery of the brazing device.
[0060] Figure 14A shows the adjustment and control flow diagram for the brazing process.
[0061] Figure 14B shows a flowchart of the method steps. A method is provided for brazing a conductive connecting piece, such as a cable shoe, to a workpiece made of conductive material by a temperature-controlled brazing process, in which the heat required for brazing is generated by igniting an electric arc between a carbon electrode and the conductive connecting piece 1410, and this method is Step 1401 provides a conductive connecting piece, for example, a cable shoe. Step 1401 involves providing a workpiece made of conductive material, Step 1405 provides a carbon electrode, Step 1405 provides a DC voltage between the carbon electrode and a conductive connecting piece, for example, a cable shoe. Step 1415 involves measuring the voltage that appears across the arc, Step 1420 involves measuring the current of the arc, Step 1425 controls the voltage applied between the carbon electrode and the conductive connecting piece, and therefore across both ends of the arc. Step 1430 involves calculating the power generated by the arc in real time, continuously or on a rolling basis. This method includes, Step 1435 involves continuously or continuously measuring the current in the arc and the voltage across the arc in real time. Step 1440 involves calculating the corresponding power generated in real time, continuously or in real time, as the mathematical product of the current and the voltage. Step 1445 involves controlling the DC voltage and thereby controlling the power generated, It further includes, The applied DC voltage uses a carbon electrode as the negative electrode and a conductive connector as the positive electrode, 1445. The carbon electrode has a tapered, chamfered, or pointed end at the end facing the electric arc.
[0062] The process may further include the steps of automatically supplying heat using a first power during a first time portion of the total brazing time, and supplying a second power during a second time portion of the total brazing time. Preferably, the first power is set to a value that rapidly heats the brazing site, and the second power is lower than the first power and maintains the temperature achieved at the brazing site.
[0063] Figure 15A shows a cross-sectional view of the front of the brazing gun 5 with the gripping sleeve 18 in the retracted position, and the electrode ejector 40 is shown together with the screw 16 for the guard ring ejector and the screw 17 for the electrode ejector. The ejected carbon electrode 6 and the ejected guard ring 9 are also shown.
[0064] Figures 15B to 15E show alternative shapes of carbon electrodes having different apex angles beta and bevel angles alpha, as shown in Figure 15F. The carbon electrodes may have circular or rectangular, particularly square, cross-sections. A circular cross-section is preferred. Therefore, the carbon electrodes have pointed or chamfered ends having an apex angle beta β, preferably 90 to 150 degrees, more preferably 100 to 140 degrees, even more preferably 110 to 130 degrees, and most preferably 118 to 122 degrees.
[0065] The fundamental concept of this invention is to combine various functions and methods to cooperate in an improved brazing process. The result of this cooperation is a novel brazing process without structural changes or martensite formation, thereby saving energy and facilitating the brazing of large conductive cross-sectional areas. Carbon electrodes are used in the brazing process, and their length and diameter affect the resistance in the electrical circuit. The carbon electrodes have pointed or chamfered ends and act as temperature buffers and heat distributors. Furthermore, the electric arc is maintained between the carbon electrode and the smooth end of the cable shoe (see below), which has a stabilizing effect on the arc and counteracts the tendency of the current to change over time.
[0066] The cable shoe has at least one smooth end of a compact conductive material on which an electric arc from a carbon electrode acts. The underside of the cable shoe has a clip of brazing material that is fixed during manufacturing. Brazing creates a large brazed joint area, resulting in low overall electrical transfer resistance. Flux material is present between the cable shoe and the brazing clip, and also between the brazing clip and the workpiece, and the flux material, brazing material and brazing process are well matched to each other. The brazing material is suitable for soft brazing, is active over a low temperature range, and thereby provides martensitic-free brazing.
[0067] For example, the advantages of guard rings in brazing processes involving metal or other similar materials are that the overall energy required for the process is reduced, and the grounding procedure becomes easier compared to previous procedures. Grounding via guard rings eliminates the need for special grounding contacts, such as grounding terminals or magnetic grounding contacts, and also eliminates the need for special preparation of grounding carriers. Since new guard rings are used in all grounding situations, the contact surface is always guaranteed to be clean.
[0068] The configuration according to the present invention shortens the length of the grounding circuit and eliminates the extra transition resistance between the cable shoe and the workpiece, as well as the sources of secondary sparks and arcs. The shape of the guard ring, together with the gripping sleeve, shields the operator from electric arcs and hot gases during the brazing process.
[0069] The use of a metal guard ring affects the brazing procedure by utilizing more of the energy released in the form of heat and directing it to the cable shoe.
[0070] To achieve satisfactory brazing in terms of temperature, it is not necessary to supply a large amount of electrical energy to the brazing process.
[0071] In previously known methods, the total resistivity in a circuit can be considered constant. A lower energy supply should, in practice, mean a shorter process time. However, if the time becomes too short, satisfactory brazing cannot be achieved.
[0072] By adjusting the additional resistance and / or the voltage, the length of the brazing process can be controlled, thus minimizing energy consumption and achieving satisfactory martensitic-free brazing. In addition, the temperature within the substrate / workpiece can also be controlled.
[0073] Several known methods allow for wide margins in terms of both the power generated and the total energy released during the process, as well as the overall length of the process. Current has been limited by either incorporating a fixed electrical resistance in the circuit or interrupting the process when the required amount of released energy has been consumed. Furthermore, variations in battery voltage due to the battery's charge state, discharge characteristics, or other factors, variations in current during a single brazing operation due to changes in electrode length or arc fluctuations, and variations in current between brazing cases due to variations in lifting height have not been considered. These variations, combined with simple and inadequate adjustments to estimate the amount of energy released, result in variations in time and power output in comparable brazing processes, making it difficult to control the temperature within the relevant materials.
[0074] In the novel brazing process shown in Figure 14, the brazing temperature and the temperature-dependent martensite formation can be controlled by calculating the electrically generated power and adjusting the power in real time using either an analog procedure or a high-resolution digital procedure. The generated power is calculated by instantaneously measuring the current and voltage, and the actual power is calculated as the mathematical product of these quantities. The calculated result is processed and supplied to a processing unit, whose output signal affects a voltage adjustment unit. In this way, the voltage and, by extension, the current are adjusted, and the generated power is adjusted to an appropriate value. The processing unit may exist as a separate unit or be incorporated into electronic unit 2, and it processes data in the form of current and voltage values, data and operational adjustments from the transmitter, externally connected units, and measured elapsed time, handling this data with physical, mathematical, and logical structures in mind so that the generated power is appropriately adjusted over time.
[0075] For example, the operator input of the conductive cross-sectional area is used by a processor, which is configured to adjust control signals to control the voltage and generate a current that produces the appropriate amount of power for overheating and maintaining the correct temperature during brazing.
[0076] Furthermore, since the regulation does not depend on the resistance of the power circuit, there is no need for a fixed-installation resistor, and therefore, energy is saved as this resistor generates waste heat. In addition, at the end of the discharge cycle, the battery can still drive the process despite the failed voltage level because there is no fixed resistor, thus allowing for the recovery of more energy from the battery. Moreover, the formation of the arc at the start of the process is facilitated for two reasons: firstly, the electrode lift height, and therefore the arc length, and therefore the subsequent starting inertia can be minimized without any risk of excessive current, which has caused temperature and regulation technical problems in some previous methods; and secondly, much higher current and voltage values than conventional methods can be tolerated at the start of the process without being limited by a fixed resistor, and as a result, a reliable start to the process can be guaranteed.
[0077] In the novel brazing process described above, the processing unit may also be configured to process signals from an external transmitter, such as a temperature sensor, whose value affects the processing unit's output data, thereby adjusting its operation. Furthermore, it may process signals from external devices such as chargers, generators, and motors, and these signals may also be processed in the processing unit to adjust such units when appropriate control signals in the form of output data are generated.
[0078] Although only a few embodiments of the present invention have been shown in the drawings, it should be noted that many other modifications can be conceived within the scope of the appended claims.
[0079] In a preferred embodiment, the carbon electrode has a tapered, pointed, or chamfered end having a vertex angle beta β of 70 to 150 degrees, more preferably 70 to 110 degrees, and even more preferably 90 to 110 degrees.
Claims
1. A method for brazing a conductive connector (10), such as a cable shoe, to a conductive material workpiece (14) by a temperature-controlled brazing process, wherein the process generates the heat necessary for brazing by igniting an electric arc (8) between a carbon electrode (6) and the conductive connector (10), - Step (1405) of providing a DC voltage between the carbon electrode (6) and the conductive connecting piece (10), for example, a cable shoe, - A step (1415) of continuously or continuously measuring the voltage appearing across both ends of the arc (8) in real time, - A step (1420) of continuously or continuously measuring the current of the arc (8) in real time, - A step (1430) of calculating the power generated by the arc (8) as the mathematical product of the measured values of the current and the voltage in real time, continuously or in a continuous manner, - A step (1425) of controlling the voltage applied between the carbon electrode (6) and the conductive connecting piece (10), and therefore across both ends of the arc (8), and thereby controlling the power calculated, Includes, The applied DC voltage uses the carbon electrode (6) as the negative electrode and the conductive connecting piece (10) as the positive electrode. The method is characterized in that the carbon electrode (6) has a tapered, chamfered, or pointed end at the end facing the electric arc (8).
2. The aforementioned method, - A step of receiving operator input of the conductive cross-sectional area, - A step of using the input of the conductive cross-sectional area to adjust the calculation and controlling the DC voltage to achieve and maintain an appropriate temperature at the brazing site, The method according to claim 1, further comprising:
3. The method according to claim 1 or 2, further comprising the step of automatically supplying heat using a first power during a first time portion of the total brazing time and a second power during a second time portion of the total brazing time.
4. The method according to claim 1, further comprising the step of lifting the electrode (6) from the workpiece (14) to ignite an electric arc (8) between the electrode (6) and the conductive connecting piece (10).
5. The method according to claim 1, wherein the tapered, chamfered, or pointed end of the carbon electrode (6) has a vertex angle of 90 to 150 degrees, more preferably 100 to 140 degrees, more preferably 110 to 130 degrees, and most preferably 118 to 122 degrees.
6. An apparatus for brazing a conductive connector (10) to a conductive material workpiece (14) by a temperature-controlled brazing process, wherein the apparatus generates the heat necessary for brazing by igniting an electric arc (8) between a carbon electrode (6) and the conductive connector (10), and the apparatus is (a) Means for engaging a conductive connecting piece (10) toward a workpiece (14), the means for engaging includes a guard ring (9) and a carbon electrode (6), (b) Means for supporting the electrode (6), including means for moving the electrode (6) between a position in which the electrode (6) engages with the conductive connecting piece (10) and is subsequently engaged by the means for engaging, and a retracted position in which the electrode is lifted from there, (c) A DC voltage unit (1) for providing and applying a DC voltage of a specific polarity between the conductive connecting piece (10) and the carbon electrode (6), the DC voltage unit (1) including a voltage adjustment unit, (d) A voltage sensor for measuring the voltage between the conductive connecting piece (10) and the carbon electrode (6), (e) A current sensor for measuring the current flowing through the carbon electrode (6), (f) Processing means including means for generating an output signal to control the voltage adjustment unit (1), and further including means for calculating the power generated in the arc (8) in real time, continuously or on an ongoing basis, (g) A switching means (3) operable to connect the means for applying voltage in an electrical circuit to the electrode (6) and such conductive connecting piece (10), wherein when the engaging means is applied and the switching means (3) is operated to close the electrical circuit, the supporting and moving means lift the electrode (8) from the workpiece (14) and ignite an electric arc (8) between the electrode (6) and the conductive connecting piece (10), Includes, (h) The DC voltage unit (1) is configured such that the polarity of the applied DC voltage is a specific polarity, using the carbon electrode (6) as the negative electrode and the conductive connector (8) as the positive electrode. The apparatus is characterized in that the carbon electrode (6) is provided with a pointed, tapered, or chamfered end facing the electric arc (8).
7. The apparatus according to claim 6, wherein the voltage adjustment unit is configured to automatically provide heat using a first power during a first time portion of the total brazing time and a second power during a second time portion of the total brazing time.
8. The apparatus according to claim 7, wherein the first power is set to a value for rapidly heating the brazing area, and the processing means is configured to calculate a second power value lower than the first power in order to maintain the temperature achieved at the brazing area.
9. The apparatus includes an input device for setting appropriate parameters for the cross-sectional area of the conductor to be brazed, The apparatus according to claim 6, wherein the processor is configured to calculate the time and voltage for brazing, taking into account parameters for providing appropriate voltage and time to achieve an appropriate amount of heat over an appropriate length of time.
10. The apparatus according to any one of claims 7, 8, or 9, further comprising a gripping sleeve (18) around the guard ring (9), thereby shielding the operator from the arc (8) and the hot gas together with the guard ring (9).
11. The apparatus according to claim 10, wherein the gripping sleeve (18) discharges the used electrode (6) and guard ring (9) by moving in the longitudinal direction.
12. The apparatus according to any one of claims 6 to 11, wherein the processing means can further control and adjust external units such as a battery charger, a generator, and a motor.
13. The apparatus according to any one of claims 6 to 12, wherein the tapered, chamfered, or pointed end of the carbon electrode has an apex angle of 90 to 150 degrees, preferably 100 to 140 degrees, more preferably 110 to 130 degrees, and most preferably 118 to 122 degrees.
14. An apparatus according to any one of claims 6 to 13, combined with a conductive connecting piece (10) for brazing to a workpiece (14), wherein the conductive connecting piece (10) has a brazing metal layer (12) on one side, and a flux layer (13) between the workpiece (14) and the brazing metal layer (12).
15. The combination according to claim 14, wherein the brazed metal layer (12) is provided by a brazing clip applied to the workpiece (14).
16. The combination according to claim 15, comprising an electrical connection to the connecting piece (10) in order to provide a grounding contact for the device.
Citation Information
Patent Citations
Arc brazing process
GB2376202A
Junction fixture of conductive material being preferably cable shoe and method of manufacturing the same
JP2003007368A
Method and apparatus for brazing material without generating martensite
JP2003019554A
Soldering iron control device
JP2020006430A
Carbon resistance tool
US2297303A