Electron beam welding equipment and process
By using belt conveyor devices and limiting components in electron beam welding equipment, the problem of poor stability of belt metal clamping conveying is solved, and a higher quality welding effect is achieved.
Patent Information
- Application Number
- CN202510093410.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-21
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-01-21
AI Technical Summary
In the existing electron beam welding technology, the clamping and conveying stability of the strip metal is poor, especially when there is a deviation in the surface size of the strip metal, which affects the welding quality.
The belt conveyor is used for clamping and conveying, and the belt-shaped metal is longitudinally limited from both sides through the first conveyor and the second conveyor, and the fitting stability is enhanced by the limiting assembly and the filling medium, and heat accumulation is reduced by the cooling device.
The clamping and conveying stability of belt metal is improved, the clamping limit area is increased, the stability of the welding process is ensured, and the quality of the final welded product is improved.
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Figure CN119927399A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of welding, and in particular to an electron beam welding device and process. Background Art
[0002] Electron beam welding does not require the use of welding rods. It uses a high-speed electron beam to locally heat and melt the material to achieve welding. It can continuously and efficiently weld different types of materials.
[0003] By utilizing the characteristics of electron beam welding, welding can be completed during the continuous movement of the strip metal material, thereby improving the efficiency and quality of the welding of the strip metal material. In order to ensure that the strip metal can move in a directional manner in the welding chamber, it is necessary to set multiple sets of supporting conveying rollers on its moving path. The supporting conveying rollers can clamp the strip metal while controlling the directional movement of the strip metal to complete continuous welding.
[0004] However, when conveying by conveyor rollers, the contact area between the conveyor rollers and the strip is limited and is a line contact. In theory, the contact area can be increased and the stability of clamping and conveying can be improved by reducing the size of the conveyor rollers and increasing the number of conveyor rollers. However, this is difficult to achieve in actual welding operations, and the surface contacted by the conveyor rollers and the strip metal is always in a state of relative motion. The stability of clamping and conveying needs to be improved, especially when there is a deviation in the surface size of some strip metals. The stability during welding is poor, affecting the quality of the final welded product. Summary of the invention
[0005] In view of the above problems, embodiments of the present application are proposed to provide an electron beam welding device and process.
[0006] In view of the above problems, the present invention provides an electron beam welding device and process. In the clamping and conveying process of the present invention, surface contact is achieved through a belt conveyor device, thereby increasing the area of clamping and limiting. The clamping and limiting and synchronous movement during welding improves the overall clamping stability.
[0007] To solve the above problems, the technical solution adopted by the present invention is: An electron beam welding device is used for welding strip metal, comprising a welding chamber, wherein an electron beam welding body and a clamping and conveying device for limiting the conveying of the strip metal are arranged inside the welding chamber, wherein the clamping and conveying device comprises a first conveying device located on a first side of the strip metal and a second conveying device located on a second side of the strip metal, wherein the first conveying device and the second conveying device are both belt conveying devices, wherein the first conveying device comprises two groups of first conveying belt wheel groups arranged in parallel, wherein a first conveying belt is sleeved on the surface of the first conveying belt wheel group, wherein a limiting component for accommodating a filling medium is arranged on the surface of the first conveying belt, wherein a plurality of limiting components are arranged along the length direction of the first conveying belt and the plurality of limiting components are located on the moving path of the strip metal, wherein the limiting component has elasticity and fits with the surface of the strip metal after being compressed for longitudinal limiting.
[0008] Preferably, the filling medium is an electrorheological fluid, the limiting assembly includes a strip-shaped limiting capsule, a first flexible conductive strip and a second flexible conductive strip are arranged on the outside of the limiting capsule, and a conductive device cooperating with the first conductive strip and the second conductive strip is also arranged in the welding chamber.
[0009] Preferably, the conductive device comprises a conductive end and a conductive mounting seat, the conductive end is fixedly connected to the conductive mounting seat, and the conductive end is located on the moving path of the first conductive strip and the second conductive strip.
[0010] Preferably, the first conveying device further comprises a plurality of first supporting rollers, which are arranged at intervals and located inside the first conveying belt to press the first conveying belt tightly.
[0011] Preferably, the distance between two adjacent first supporting rollers is X, the limiting bag extends along the length direction of the first conveying belt, and the length of the first conveying belt is greater than 2X.
[0012] Preferably, the second conveying device and the electron beam welding body are symmetrically arranged in two groups, and the two groups of the second conveying devices have opposite conveying directions for conveying two groups of strip metals in opposite directions.
[0013] Preferably, the second conveying device is provided with a cooling device on the side away from the first conveying device, the cooling device includes a third conveying belt wheel group and a cooling belt sleeved on the surface of the third conveying belt wheel group, the second conveying device includes a second conveying belt wheel group and a second conveying belt sleeved on the surface of the second conveying belt wheel group, and the linear speed of the cooling belt is the same as the linear speed of the second conveying belt.
[0014] Preferably, the cooling belt is closed on both sides to form a cooling chamber, the first end of the cooling chamber is connected to a first pipe for cooling gas to enter, and the second end is connected to a second pipe for cooling gas to discharge, a cleaning device is provided on the moving path of the strip metal, and the end of the second pipe is located outside the cleaning device.
[0015] Preferably, a limiting device is further provided inside the welding chamber, and the limiting device comprises two limiting rollers arranged at intervals, and the limiting rollers are located on both sides of the strip metal for lateral limiting.
[0016] An electron beam welding process, using the above-mentioned electron beam welding equipment, includes the following steps: S1, controlling the strip metal to pass through the welding chamber in a directional manner, and starting the electron beam welding body to complete continuous welding during the directional movement of the strip metal; S2, during the continuous welding process, controlling the first conveying device and the second conveying device to move synchronously in a directional manner, completing the longitudinal limitation of the strip metal from both sides to ensure the stability of the strip metal during welding.
[0017] The beneficial effects of the present invention are: Compared with the prior art, the above-mentioned belt conveyor device can realize clamping and limiting of the strip metal, and in the process of clamping and limiting, the strip metal located in the middle is driven to move synchronously, and the strip metal and the first conveyor belt will not move relative to each other in the process of clamping and conveying, thereby ensuring the stability of the overall clamping; and after the pressure of the limiting component increases, the filling medium inside it can flow toward the outside or the thinner area, further enhancing the stability of the fit between the first conveyor belt and the strip metal, ensuring the stability of the strip metal during electron beam welding, and improving the quality of the final product; in the process of clamping and conveying of the present invention, surface contact is achieved through the belt conveyor device, thereby increasing the area of clamping and limiting, and the synchronous movement during clamping and limiting and welding improves the stability of the overall clamping. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The drawings described herein are used to provide a further understanding of the present application and constitute a part of the present application. The illustrative embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation on the present application. In the drawings: Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0019] Figure 2 For the present invention Figure 1 Schematic diagram of the side structure.
[0020] Figure 3 For the present invention Figure 2 AA section view of the structure.
[0021] Figure 4 For the present invention Figure 2 BB section structure schematic diagram.
[0022] Figure 5 For the present invention Figure 2 Enlarged structural diagram at C.
[0023] Figure 6 For the present invention Figure 3 Enlarged structural diagram at D.
[0024] Figure 7 For the present invention Figure 4 Enlarged structural diagram at E.
[0025] In the figure: 100, support bracket; 200, welding chamber; 210, electron beam welding body; 300, strip metal; 310, first welding part; 320, second welding part; 400, first conveying device; 410, first driving shaft; 420, first conveying belt wheel group; 430, first conveying belt; 440, first supporting roller; 441, first supporting shaft; 442, first roller body; 450, limiting assembly; 451, limiting capsule; 452, first conductive strip; 453, second Conductive strip; 500, second conveying device; 510, second drive shaft; 520, second conveyor belt wheel set; 530, second conveyor belt; 540, second support roller; 541, second support shaft; 542, second roller body; 600, cooling device; 610, third drive shaft; 620, third conveyor belt wheel set; 630, cooling belt; 700, limiting device; 710, limiting roller; 800, cleaning device; 900, conductive device; 910, conductive end; 920, conductive mounting seat. DETAILED DESCRIPTION
[0026] In order to make the purpose, technical solution and advantages of the present application clearer, the technical solution of the present application will be clearly and completely described below in combination with the specific embodiments of the present application and the corresponding drawings. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present application.
[0027] In order to solve the problems in the background technology, refer to the attached Figure 1 -Attached Figure 7 An electron beam welding device is used to weld a strip metal 300, including a welding chamber 200, wherein an electron beam welding body 210 and a clamping and conveying device for limiting and conveying the strip metal 300 are arranged inside the welding chamber 200. During the clamping and conveying process of the strip metal 300, the electron beam welding body 210 emits an electron beam flow toward the position where the strip metal 300 needs to be welded to locally heat and melt the material to achieve welding.
[0028] Specifically, the clamping and conveying device includes a first conveying device 400 located on the first side of the strip metal 300 and a second conveying device 500 located on the second side of the strip metal 300. The first conveying device 400 and the second conveying device 500 are both belt conveying devices. The first conveying device 400 and the second conveying device 500 can clamp and limit the strip metal 300 located in the middle from both sides to ensure the stability of the strip metal 300 in the clamped state. The strip metal 300 here includes a first welding part 310 and a second welding part 320. The strip metal 300 and the first conveying device 400 can be clamped and conveyed to the relative position of the electron beam welding body 210 to complete the welding to form a whole.
[0029] The first conveying device 400 here includes two groups of first conveying belt wheel groups 420 arranged in parallel, and the first conveying belt wheel group 420 is sleeved with a first conveying belt 430 on the surface. There is a predetermined distance between the two first conveying belts 430, which can allow the electron beam to pass through the position where the first welding part 310 and the second welding part 320 are connected to realize heating and melting welding; the first conveying belt wheel group 420 here is connected to the first driving shaft 410, and the first driving shaft 410 can drive the first conveying belt wheel group 420 to drive the first conveying belt 430 to move in a directional manner; through the above-mentioned belt conveying device, the strip metal 300 can be clamped and limited, and the strip metal 300 located in the middle can be driven to move synchronously during the clamping and limiting process. The strip metal 300 and the first conveying belt 430 will not move relative to each other during the clamping and conveying process, thereby ensuring the stability of the overall clamping.
[0030] A limiting component 450 for accommodating a filling medium is provided on the surface of the first conveyor belt 430. A plurality of limiting components 450 are provided along the length direction of the first conveyor belt 430, and the plurality of limiting components 450 are located on the moving path of the strip metal 300. The limiting component 450 is elastic and fits with the surface of the strip metal 300 for longitudinal limiting after being compressed. The limiting component 450 can fit with the upper surface or the lower surface of the strip metal 300. The limiting component 450 is elastic and can be deformed after being compressed, so as to enhance the tightness of the fit between the first conveyor belt 430 and the strip metal 300 and enhance the stability. In particular, when there is a partial dimensional deviation on the surface of the strip metal 300, the filling medium inside the limiting component 450 can flow toward the outside or the thinner area after the pressure on the limiting component 450 increases, thereby further enhancing the stability of the fit between the first conveyor belt 430 and the strip metal 300, ensuring the stability of the strip metal 300 during the electron beam welding process, and improving the quality of the final product.
[0031] The filling medium here can be adaptively selected according to the thickness of the strip metal 300 , and can be selected as gas or liquid, as long as it has good fluidity and good clamping stability.
[0032] The preferred filling medium is electrorheological fluid, the limiting assembly 450 includes a strip-shaped limiting capsule 451, and a flexible first conductive strip 452 and a second conductive strip 453 are arranged on the outside of the limiting capsule 451. A conductive device 900 that cooperates with the first conductive strip 452 and the second conductive strip 453 is also arranged in the welding chamber 200.
[0033] The electrorheological fluid in the limiting capsule 451 can be controlled to conduct electricity and change into a solid state through the conductive device 900. The solid electrorheological fluid can enhance the clamping and limiting effect and enhance the stability of the clamping and conveying of the strip metal 300 in the middle.
[0034] The conductive device 900 here is located at the position of the linear conveying of the first conveying belt 430, and the electron beam welding body 210 is also located at the position of the linear conveying of the first conveying belt 430. After the limiting capsule 451 on the surface of the first conveying belt 430 is completely located at the position of the linear conveying, the electrorheological fluid in the limiting capsule 451 is controlled to be in a conductive state. When the front end of the first conveying belt 430 is about to leave the linear conveying area, the electrorheological fluid in the limiting capsule 451 is controlled to be in a power-off state. At this time, the limiting capsule 451 becomes flexible as a whole and will not affect the normal deflection conveying of the first conveying belt 430.
[0035] During the initial contact between the limiting capsule 451 and the strip metal 300, part of the limiting capsule 451 is within the curved conveying area of the first conveyor belt 430. At this time, the electrorheological fluid inside the limiting capsule 451 is in a non-conductive liquid state. During this process, the liquid electrorheological fluid can flow toward areas with lower pressure after being pressurized, i.e., to the thinner portion of the surface of the strip metal 300 or to the outside. The limiting capsule 451 fits completely and tightly with the surface of the strip metal 300, and can achieve pre-positioning and fitting, thus preparing for future solid-state limiting.
[0036] The first conductive strip 452 and the second conductive strip 453 are respectively connected to two electrodes of the power source, and can respectively abut against the conductive protrusions on the surface of the conductive device 900 during the relative process to achieve circuit conduction.
[0037] Specifically, the conductive device 900 includes a conductive end 910 and a conductive mounting seat 920, the conductive end 910 is fixedly connected to the conductive mounting seat 920, and the conductive end 910 is located on the moving path of the first conductive strip 452 and the second conductive strip 453, and the above-mentioned conductive protrusion is located on the surface of the conductive end 910, and the conductive protrusion is electrically connected to the power supply; the conductive end 910 can be fixed to the inner wall of the welding chamber 200 through the conductive mounting seat 920 to ensure the stability of the conductive end 910 during the conduction process. At the same time, for strip metal 300 of different thicknesses, the height position of the conductive end 910 can also be adjusted through the conductive mounting seat 920 to ensure the stability of conduction in different scenarios.
[0038] For the first conveyor belt 430 with a larger size span, in order to enhance the stability of its middle position, the first conveying device 400 here also includes a plurality of first support rollers 440. The plurality of first support rollers 440 are arranged at intervals and are located on the inner side of the first conveyor belt 430 to press the first conveyor belt 430 tightly. The first support rollers 440 can support and limit the first conveyor belt 430 from the inside, thereby ensuring the stability of the first conveyor belt 430 during the conveying process, and ultimately improving the stability of the strip metal 300 during the welding process and improving the quality of the welded product.
[0039] It should be noted that the first support roller 440 here includes a first support shaft 441 and a first roller body 442. The first support shaft 441 is a rotating shaft that does not pass through the welding chamber 200 on one side, and can form a longer channel between the two first conveyor belts 430 for the electron beam to pass through; the first conveyor belt wheel group 420 here is driven by the first drive shaft 410, and the first drive shaft 410 is a rotating shaft that passes through the inside of the welding chamber 200. The first conveyor belt wheel groups 420 on both sides can be driven to rotate through a first drive shaft 410 to ensure the stability of both sides.
[0040] Furthermore, the distance between two adjacent first support rollers 440 is X, the limiting capsule 451 extends along the length direction of the first conveyor belt 430 and the length of the first conveyor belt 430 is greater than 2X.
[0041] Through the above structural design, after the limiting capsule 451 becomes solid, the limiting capsule 451 will always span the two first support rollers 440 in the solid state, further improving the stability of the conveying of the limiting capsule 451 in the solid state; the distance X between the two first support rollers 440 is adjusted according to actual conditions, and the number of arrangements is reduced while ensuring the stability of the conveying support of the first conveyor belt 430, thereby reducing the difficulty of installation in the welding room 200.
[0042] Furthermore, the second conveying device 500 and the electron beam welding body 210 are symmetrically arranged in two groups, and the two groups of second conveying devices 500 have opposite conveying directions and are used to convey two groups of strip metals 300 in opposite directions. Through the above-mentioned structural design, one group of first conveying devices 400 can be paired with two groups of second conveying devices 500, so as to realize synchronous welding of two strip metals 300, thereby improving the utilization efficiency of the first conveying device 400 and the overall welding efficiency.
[0043] The two strip metals 300 are respectively located on both sides of the first conveying device 400 and will not affect each other during the welding process.
[0044] For some metals with larger thickness or special metal materials, the temperature required for heating and melting increases, and the energy of the electron beam increases synchronously. During the welding process, the heat on the surface of the strip metal 300 continues to accumulate between the first conveying device 400 and the second conveying device 500, causing the heat between the first conveying device 400 and the second conveying device 500 to continue to increase, affecting the overall clamping effect and the normal operation of some internal structures.
[0045] In order to solve the above problems, a cooling device 600 is provided on the side of the second conveying device 500 away from the first conveying device 400. The cooling device 600 can dissipate the heat between the first conveying device 400 and the second conveying device 500, thereby achieving continuous cooling and realizing internal stable dynamic balance.
[0046] Specifically, the cooling device 600 includes a third conveyor belt wheel group 620 and a cooling belt 630 sleeved on the surface of the third conveyor belt wheel group 620. The second conveying device 500 includes a second conveyor belt wheel group 520 and a second conveyor belt 530 sleeved on the surface of the second conveyor belt wheel group 520. The linear speed of the cooling belt 630 is the same as the linear speed of the second conveyor belt 530.
[0047] The second conveyor belt 530 and the cooling belt 630 here are both made of materials with high thermal conductivity, and flexible metal materials or metal materials arranged at fixed intervals can be fixed on their surfaces; during the process of the second conveyor belt 530 and the strip metal 300 being in contact with each other, the two move synchronously, and the welding heat can be continuously absorbed by the second conveyor belt 530 to prevent the heat from being transferred toward the side of the first conveying device 400.
[0048] At the same time, during the process of the second conveyor belt 530 being in contact with the cooling belt 630, the heat on the surface of the second conveyor belt 530 is transferred toward the side of the cooling belt 630 during the contact process, and the temperature of the surface of the second conveyor belt 530 continues to decrease, in preparation for the subsequent continuous cooling; finally, the heat between the first conveyor device 400 and the second conveyor device 500 is transferred to the side of the cooling device 600, and is continuously dissipated at the outer position.
[0049] It should also be noted that the above-mentioned cooling device 600 is also selected as a belt conveyor structure. The second conveyor belt 530 and the cooling belt 630 will not move relative to each other during the bonding process, will not generate friction heat, and will also reduce related wear, thereby ensuring the normal operation of the entire mechanism.
[0050] A cooling chamber is formed in the closed interior on both sides of the cooling belt 630, the first end of the cooling chamber is connected to a first pipe for cooling gas to enter, and the second end is connected to a second pipe for cooling gas to discharge. The cooling gas can quickly dissipate heat and carry it away during the directional flow of the cooling gas in the cooling chamber in the cooling belt 630, thereby accelerating the cooling process of the cooling belt 630; a cleaning device 800 is provided on the moving path of the strip metal 300, and the end of the second pipe is located on the outside of the cleaning device 800. The cleaning device 800 can clean the welding protrusions on the surface of the strip metal 300 to avoid subsequent winding and collision through the sealing structure.
[0051] The cleaning device 800 may adopt an existing friction structure or a reciprocating collision structure, which will not be described in detail here.
[0052] For some electron beam welding processes, the interior of the welding chamber 200 is in a relatively sealed vacuum environment, and the cleaning device 800 can clean the strip metal 300, which can prevent the raised defects on the surface of the strip metal 300 from affecting the sealing structures on both sides, thereby ensuring the stability of the overall welding and the final quality of the welded products. By using the heated cooling gas to act on the surface of the strip metal 300, on the one hand, the cleaned debris can be cleaned to prevent it from entering the subsequent sealing structure. At the same time, the temperature difference between the cooling gas and the surface of the strip metal 300 is reduced after the temperature is increased, thereby avoiding internal defects caused by the excessive cooling rate of the strip metal 300.
[0053] A limiting device 700 is also provided inside the welding chamber 200. The limiting device 700 includes two limiting rollers 710 arranged at intervals. The limiting rollers 710 are located on both sides of the strip metal 300 for lateral limiting. By performing lateral limiting on the strip metal 300, the distance between the first welding part 310 and the second welding part 320 can be adjusted. The lateral limiting is performed before the longitudinal limiting, so that the distance between the first welding part 310 and the second welding part 320 can be ensured to be stable and accurate, and the first welding part 310 and the second welding part 320 that are far away from each other can be brought closer to each other, so as to ensure the accuracy of the lateral position between the first welding part 310 and the second welding part 320.
[0054] An electron beam welding process, using the above-mentioned electron beam welding equipment, comprises the following steps: S1. Control the strip metal 300 to pass through the welding chamber 200 in a directional manner. During the directional movement of the strip metal 300, the electron beam welding body 210 is started to complete continuous welding. The electron beam welding body 210 can emit an electron beam flow toward the position of the strip metal 300 that needs to be welded, increase the heat at the welding position, control the metal melting, and achieve continuous welding.
[0055] S2. During continuous welding, the first conveying device 400 and the second conveying device 500 are controlled to move synchronously and directional, and the longitudinal limitation of the strip metal 300 is completed from both sides to ensure the stability of the strip metal 300 during welding. The first conveying device 400 and the second conveying device 500 can clamp and limit the strip metal 300 located in the middle from both sides to ensure the stability of the strip metal 300 in the clamped state. The strip metal 300 and the first conveying belt 430 and the second conveying belt 530 will not move relative to each other during the clamping and conveying process, and there is surface contact during the clamping and conveying process, which increases the area of the clamping limitation and ensures the stability of the overall clamping.
[0056] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit it. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. An electron beam welding device for welding a strip metal (300), comprising a welding chamber (200), wherein an electron beam welding body (210) and a clamping and conveying device for limiting and conveying the strip metal (300) are arranged inside the welding chamber (200), characterized in that: The clamping conveying device comprises a first conveying device (400) located on a first side of the strip metal (300) and a second conveying device (500) located on a second side of the strip metal (300), the first conveying device (400) and the second conveying device (500) are both belt conveying devices, the first conveying device (400) comprises two groups of first conveying belt wheel groups (420) arranged in parallel, and the surface of the first conveying belt wheel group (420) is provided with a first conveying belt (430); The surface of the first conveyor belt (430) is provided with a limiting component (450) for accommodating a filling medium. A plurality of limiting components (450) are provided along the length direction of the first conveyor belt (430), and the plurality of limiting components (450) are located on the moving path of the strip metal (300). The limiting components (450) are elastic and fit with the surface of the strip metal (300) after being compressed for longitudinal limiting.
2. The electron beam welding equipment according to claim 1, characterized in that The filling medium is an electrorheological fluid, the limiting assembly (450) comprises a strip-shaped limiting capsule (451), a first flexible conductive strip (452) and a second conductive strip (453) are arranged outside the limiting capsule (451), and a conductive device (900) cooperating with the first conductive strip (452) and the second conductive strip (453) is also arranged in the welding chamber (200).
3. The electron beam welding equipment according to claim 2, characterized in that The conductive device (900) comprises a conductive end (910) and a conductive mounting seat (920), the conductive end (910) being fixedly connected to the conductive mounting seat (920), and the conductive end (910) is located on the moving path of the first conductive strip (452) and the second conductive strip (453).
4. The electron beam welding equipment according to claim 2, characterized in that: The first conveying device (400) further comprises a plurality of first supporting rollers (440), wherein the plurality of first supporting rollers (440) are arranged at intervals and are located inside the first conveying belt (430) to press against the first conveying belt (430).
5. The electron beam welding equipment according to claim 4, characterized in that The distance between two adjacent first support rollers (440) is X, the limiting bag (451) extends along the length direction of the first conveying belt (430), and the length of the first conveying belt (430) is greater than 2X.
6. The electron beam welding equipment according to any one of claims 1 to 5, characterized in that: The second conveying device (500) and the electron beam welding body (210) are symmetrically arranged in two groups, and the two groups of the second conveying devices (500) have opposite conveying directions and are used to convey two groups of strip metals (300) in opposite directions.
7. The electron beam welding equipment according to claim 1, characterized in that The second conveying device (500) is provided with a cooling device (600) on a side away from the first conveying device (400); the cooling device (600) comprises a third conveying belt wheel group (620) and a cooling belt (630) sleeved on the surface of the third conveying belt wheel group (620); the second conveying device (500) comprises a second conveying belt wheel group (520) and a second conveying belt (530) sleeved on the surface of the second conveying belt wheel group (520); the linear speed of the cooling belt (630) is the same as the linear speed of the second conveying belt (530).
8. The electron beam welding equipment according to claim 7, characterized in that The cooling belt (630) is closed on both sides to form a cooling chamber. The first end of the cooling chamber is connected to a first pipe for cooling gas to enter, and the second end is connected to a second pipe for cooling gas to discharge. A cleaning device (800) is provided on the moving path of the strip metal (300), and the end of the second pipe is located outside the cleaning device (800).
9. The electron beam welding equipment according to claim 1, characterized in that A limiting device (700) is also provided inside the welding chamber (200), wherein the limiting device (700) comprises two limiting rollers (710) arranged at intervals, and the limiting rollers (710) are located on both sides of the strip metal (300) for lateral limiting.
10. An electron beam welding process, characterized in that: Using the electron beam welding equipment according to any one of claims 1 to 9 comprises the following steps: S1, controlling the strip metal (300) to pass through the welding chamber (200) in a directional manner, and starting the electron beam welding body (210) to complete continuous welding during the directional movement of the strip metal (300); S2. During the continuous welding process, the first conveying device (400) and the second conveying device (500) are controlled to move synchronously and directional, and the longitudinal position of the strip metal (300) is limited from both sides to ensure the stability of the strip metal (300) during the welding process.
Citation Information
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