Material belt cutting equipment
By designing a combination of feeding, infeeding, distance measurement, and cutting mechanisms for the strip cutting equipment, the problems of time-consuming, labor-intensive, and inaccurate steel strip cutting were solved, achieving automatic distance measurement and precise cutting, and improving the stability and cutting accuracy of the equipment.
Patent Information
- Application Number
- CN202423081170.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-11
AI Technical Summary
Existing steel strip cutting equipment requires manual measurement of length and manual cutting, which is time-consuming, labor-intensive, and lacks cutting precision.
A strip cutting device is designed, including a feeding mechanism, a feeding mechanism, a ranging mechanism and a cutting mechanism. The automatic ranging and precise cutting of the strip are achieved through the combination and cooperation of these mechanisms. Specifically, it includes the coordinated work of the strip carrying component, the feeding component, the correction component, the cutting component and the ranging drive component.
It enables automatic distance measurement and precise cutting of the material strip, simplifies manual operation, improves cutting accuracy and equipment stability, and extends service life.
Smart Images

Figure CN223492199U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of strip cutting equipment, and in particular to an automatic distance measuring and cutting device for steel strip cutting. Background Technology
[0002] Steel strips are widely used in linear motor modules and other fields. Most existing steel strips require manual measurement of length and manual cutting. The testing and cutting process is time-consuming and labor-intensive. In addition, the steel strip cutting equipment currently on the market has the problem of insufficient cutting accuracy. Utility Model Content
[0003] The main objective of this utility model embodiment is to provide a material strip cutting device that aims to solve the problem of automatic distance measurement and precise cutting of material strips.
[0004] This utility model provides a strip cutting device, the structure of which includes:
[0005] The feeding mechanism is used to carry the strip of material to be cut;
[0006] The feeding mechanism provides feeding power to the material strip, and under the action of the feeding mechanism, the material strip can be moved to the pulling position of the cutting equipment;
[0007] A ranging mechanism is used to clamp the material strip at the material pulling position and pull the material strip out a preset length;
[0008] The cutting mechanism is provided with a cutting position and is used to cut the material strip pulled out by the ranging mechanism to the preset length at the cutting position;
[0009] The feeding mechanism includes a feeding component and a correction component. The feeding component is located between the feeding mechanism and the cutting mechanism and is used to elastically clamp the material strip in a first direction and can drive the material strip to move in a second direction perpendicular to the first direction to move the material strip to the pulling position. The correction component is disposed on at least one side of the feeding component in the second direction and is used to correct the feeding direction of the pulling material.
[0010] The cutting equipment structure provided by this utility model includes a feeding mechanism, a feeding mechanism, a ranging mechanism, and a cutting mechanism. The feeding mechanism has a component structure for carrying the material strip, which can be mounted on a support of the feeding mechanism via the supporting component. The feeding mechanism delivers the material strip from the feeding mechanism to the cutting mechanism and moves the material strip to the pulling position. The ranging mechanism clamps the material strip at the pulling position and pulls it out a preset length. The cutting mechanism has a cutting position and is used to cut the material strip pulled out by the ranging mechanism to the preset length at the cutting position. The feeding mechanism includes a feeding component and a correction component. The feeding component is located between the feeding mechanism and the cutting mechanism and is used to elastically clamp the material strip in a first direction and can drive the material strip to move in a second direction perpendicular to the first direction to move the material strip to the pulling position. The correction component is located on at least one side of the feeding component in the second direction and is used to correct the feeding direction of the material strip. By combining the feeding mechanism, feeding mechanism, ranging mechanism, and cutting mechanism, the material strip can be loaded and unloaded in one operation, automatically measured, and cut.
[0011] Optionally, the feeding mechanism includes a first support, a strip carrying assembly, and a first driving component. The strip carrying assembly is disposed on the first support and rotatably connected to the first support, and is used to carry the strip to be cut. The first driving component is drivenly connected to the strip carrying assembly and is used to drive the strip carrying assembly to rotate, thereby causing the carried strip to rotate.
[0012] In this embodiment, by designing the material belt carrying component to be connected to the first driving component and rotatably connected to the first support, automatic material belt conveying is achieved, effectively simplifying the process of manually conveying the material belt.
[0013] Optionally, the material belt carrying assembly includes a first rotating shaft, a baffle, a material belt carrying component, and a distance adjusting component. The first rotating shaft is disposed on the first bracket and rotatably connected to the first bracket. The baffle is fixed to the first rotating shaft. The distance adjusting component is movably connected to the first rotating shaft and movably connected to the material belt carrying component, and is used to adjust the distance between the material belt carrying component and the first rotating shaft in the axial direction perpendicular to the first rotating shaft.
[0014] In this embodiment, the distance adjustment component can be adapted to carry strips with different inner diameters.
[0015] Optionally, the distance adjustment component includes a first connecting member, a second connecting member, a first support member, and a second support member. The first connecting member is fixedly connected to the first rotating shaft, and the second connecting member is movably connected to the first rotating shaft. Under the action of an external force, the second connecting member can be displaced relative to the first rotating shaft in the axial direction of the first rotating shaft. The first end of the first support member is rotatably connected to the first connecting member, and the second end of the first support member is slidably connected to the material belt carrying component. The first end of the second support member is rotatably connected to the second connecting member, and the second end of the second support member is rotatably connected to the material belt carrying component. Furthermore, the second support member is rotatably connected to the first support member.
[0016] Under the action of external force, the second connecting member can be displaced relative to the first rotating shaft in the axial direction of the first rotating shaft, either towards or away from the first connecting member. When the second connecting member is displaced towards the first connecting member, the distance between the material strip carrying component and the first rotating shaft increases; when the second connecting member is displaced away from the first connecting member, the distance between the material strip carrying component and the first rotating shaft decreases.
[0017] In this embodiment, by installing a first connector, a second connector, a first support, and a second support between the material belt carrying component and the first rotating shaft, the inner diameter of the feeding mechanism used to carry the material belt is adjusted.
[0018] Optionally, the feeding assembly includes a second driving component, a second support, a first roller, a second roller, and an elastic component. The first roller is rotatably connected to the second support, and the second roller is rotatably connected to the elastic component, and is adapted to the first roller to form a clamping space for clamping the material strip. The elastic component is fixed to the second support and is used to apply an elastic force to the second roller. The second driving component is connected to the first roller and is used to drive the first roller to rotate, thereby moving the material strip within the clamping space.
[0019] Optionally, the elastic component includes a spring, a clamping block, and a guide rod assembly. The guide rod assembly is disposed on the second bracket. The clamping block is slidably connected to the guide rod assembly and rotatably connected to the second roller. The spring is disposed between the second bracket and the clamping block and provides elastic force to the clamping block. Under the action of an external force, the clamping block can displace relative to the guide rod assembly in an axial direction perpendicular to the second roller to adjust the size of the clamping space.
[0020] In this embodiment, by setting a first roller, a second roller, and an elastic component, an elastic clamping space is formed for the material strip, so that the material strip rotates in contact with the first roller and is fed to the cutting mechanism to ensure that the material strip moves stably to the pulling position.
[0021] Optionally, the correction components include at least two sets, and the at least two sets of correction components are respectively arranged on opposite sides in the second direction. Each set of correction components includes at least a first correction component and a second correction component. The first correction component and the second correction component are spaced apart, and the distance between the first correction component and the second correction component is adjustable.
[0022] In this embodiment, by setting and adjusting the spacing between the correction components, it can adapt to material strips of different sizes and fix the feeding direction of the material strip to ensure that the cutting position of the material strip does not shift when it is cut. Setting multiple sets of correction components results in better positioning of the material strip.
[0023] Optionally, the cutting mechanism includes a cutting component and a pressing component, wherein the pressing component is used to press the strip located at the cutting position, and the cutting component is used to cut the pressed material.
[0024] In this embodiment, by setting a pressing component to press the material strip at the cutting position, it is easier for the cutting component to cut the material strip.
[0025] Optionally, the cutting assembly includes a cutting base and a cutting component, and the pressing assembly includes a pressing component and an elastic element. The pressing component is elastically adapted to the cutting component through the elastic element, and the pressing component can be displaced relative to the cutting component in the first direction.
[0026] During the cutting process of the cutting mechanism cutting the strip located at the cutting position, the pressing assembly and the cutting base elastically clamp the strip, and the cutting component moves relative to the cutting base to cut the strip located at the cutting position.
[0027] In this embodiment, by setting an elastic element in the pressing assembly, the pressing assembly and the cutting base form an elastic clamping space to clamp the material strip, which can effectively buffer the impact force on the equipment during pressing and improve the stability and service life of the equipment.
[0028] Optionally, the ranging mechanism includes a ranging drive component, a slide rail assembly, a clamping component, and a sensor. The slide rail assembly includes a first slider component and a second slider component, which are slidably connected. The clamping component is connected to the second slider component and is used to clamp the material strip. The ranging drive component is used to drive the second slider component to slide relative to the first slider component. The sensor is used to detect the pull-out length of the material strip clamped by the clamping component.
[0029] In this embodiment, by setting a slide rail assembly, the clamping component slides back and forth on the slide rail assembly. According to the detection signal of the sensor, the material strip is clamped and pulled out to a preset length. After the cutting mechanism completes the cutting operation, the clamping component retracts, thereby realizing automatic distance measurement and cutting.
[0030] Optionally, the cutting base also includes a third support, which is equipped with a lifting cylinder.
[0031] In this embodiment, when the clamping component slides to the corresponding area, the cylinder in the corresponding area of the third bracket will rise to support the drooping strip, making the strip cut to a more accurate length. Attached Figure Description
[0032] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0033] Figure 1 An exploded three-dimensional structural diagram of the strip cutting equipment provided by this utility model;
[0034] Figure 2A A three-dimensional structural diagram of the feeding mechanism of the strip cutting equipment provided by this utility model;
[0035] Figure 2B This is a schematic diagram of the distance adjustment component of the strip cutting equipment provided in this embodiment of the utility model;
[0036] Figure 3 A schematic diagram of the feeding mechanism of the strip cutting equipment provided by this utility model;
[0037] Figure 4 This is a schematic diagram of the cutting structure of the strip cutting device provided in an embodiment of the present utility model;
[0038] Figure 5 This is a schematic diagram of the distance measuring mechanism of the strip cutting equipment provided by this utility model.
[0039] icon:
[0040] 10-Strip cutting equipment; 20-Feeding mechanism; 30-Infeeding mechanism
[0041] 40-Distance measuring mechanism; 50-Cutting mechanism; 201-First support.
[0042] 202-Strip Carrying Assembly; 203-First Drive Component; 301-Feeding Assembly
[0043] 302-Correction Component; 2021-First Rotating Shaft; 2022-Baffle
[0044] 2023-Belt Carrying Component; 2024-Distance Adjustment Component; 20241-First Connector
[0045] 20242-Second Connector; 20243-First Support; 20244-Second Support
[0046] 3011-Second drive component; 3012-Second bracket; 3013-First roller
[0047] 3014 - Second roller; 3015 - Elastic component; 30151 - Spring
[0048] 30152-Clamping block; 30153-Guide rod assembly; 3021-First correction component
[0049] 3022-Second Correction Component; 501-Cutting Assembly; 502-Pressure Assembly
[0050] 5011-Cutting base; 5012-Cutting component; 5021-Pressure component
[0051] 5022-Elastic element; 401-Distance measuring drive component; 402-Slide rail assembly
[0052] 403-Clamping component; 4021-First slider component; 4022-Second slider component Detailed Implementation
[0053] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0054] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0055] Steel strips are widely used in linear motor modules and other fields. Most existing steel strips require manual measurement of length and manual cutting. The testing and cutting process is time-consuming and labor-intensive. In addition, the steel strip cutting equipment currently on the market has the problem of insufficient cutting accuracy.
[0056] To address the aforementioned technical problems, this utility model provides a material strip cutting device, which aims to solve the problem of automatic distance measurement and precise cutting of material strips.
[0057] The strip cutting device 10 provided by this utility model includes a feeding mechanism 20, a feeding mechanism 30, a ranging mechanism 40, and a cutting mechanism 50. The feeding mechanism 20 includes a first support 201, a strip carrying assembly 202, and a first driving component 203. The first support 201 and the strip carrying assembly 202 cooperate to form a strip carrying space. The first driving component 203 is connected to the strip carrying assembly 202 and drives the strip carrying assembly 202 to rotate, thereby causing the carried strip to rotate and enter the feeding mechanism 30. Under the action of the feeding mechanism 30, the strip moves to the pulling position of the cutting device. The ranging mechanism 40 clamps the strip at the pulling position and pulls the strip out to a preset length. The cutting mechanism 50 cuts the strip of the preset length pulled out by the ranging mechanism 40 at the cutting position.
[0058] The feeding mechanism 30 includes a feeding component 301 and a correction component 302. The feeding component 301 is located between the feeding mechanism 20 and the cutting mechanism 50 and is used to elastically clamp the material strip in a first direction and can drive the material strip to move in a second direction perpendicular to the first direction to move the material strip to the pulling position. The correction component 302 is disposed on at least one side of the feeding component 301 in the second direction and is used to correct the feeding direction of the pulling material.
[0059] By sequentially setting up a feeding mechanism 20, an infeeding mechanism 30, a ranging mechanism 40, and a cutting mechanism 50, a process can be achieved that allows for one-time loading and unloading of the material strip, automatic ranging, and precise cutting.
[0060] The following detailed description of some embodiments of the present invention is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0061] In this embodiment of the application, the first direction is the direction corresponding to the Z-axis, the second direction is the direction corresponding to the Y-axis, and the third direction is the direction corresponding to the X-axis, as an example for explanation.
[0062] Please see Figure 1 , Figure 1 This is an exploded three-dimensional structural diagram of the strip cutting equipment provided by this utility model.
[0063] like Figure 1 As shown, the strip cutting equipment 10 includes a feeding mechanism 20, an infeeding mechanism 30, a ranging mechanism 40, and a cutting mechanism 50. The feeding mechanism 20 includes a first support 201, a strip carrying assembly 202, and a first driving component 203. The first support 201 and the strip carrying assembly 202 cooperate to form a strip carrying space. The first driving component 203 is connected to the strip carrying assembly 202 and drives the strip carrying assembly 202 to rotate, thereby causing the carried strip to rotate and enter the infeeding mechanism 30. Under the action of the infeeding mechanism 30, the strip moves to the pulling position of the cutting equipment. The ranging mechanism 40 clamps the strip at the pulling position and pulls the strip out a preset length. The cutting mechanism 50 cuts the strip of the preset length pulled out by the ranging mechanism 40 at the cutting position.
[0064] The feeding mechanism 30 includes a feeding component 301 and a correction component 302. The feeding component 301 is located between the feeding mechanism 20 and the cutting mechanism 50 and is used to elastically clamp the material strip in a first direction and can drive the material strip to move in a second direction perpendicular to the first direction to move the material strip to the pulling position. The correction component 302 is disposed on at least one side of the feeding component 301 in the second direction and is used to correct the feeding direction of the pulling material.
[0065] For example, when the cutting equipment is working, at the feeding mechanism 20, the strip roll is first installed on the strip carrying assembly 202, and the strip carrying assembly 202 is driven to rotate by the first driving component 203, which drives the carried strip to rotate into the feeding mechanism 30. The feeding mechanism 30 positions the strip and moves it to the pulling position of the cutting equipment to ensure that the feeding direction of the strip does not deviate. The distance measuring mechanism 40 clamps the strip at the pulling position and pulls the strip out a preset length. The cutting mechanism 50 cuts the strip with the preset length pulled out by the distance measuring mechanism 40 at the cutting position.
[0066] In this embodiment, by setting up a combination of a feeding mechanism 20, a feeding mechanism 30, a ranging mechanism 40 and a cutting mechanism 50, the material strip can be loaded and unloaded in one go, and the distance can be automatically measured and accurately cut.
[0067] like Figure 2AAs shown, in some embodiments, the feeding mechanism 20 includes a first support 201, a strip carrying assembly 202, and a first driving component 203. The strip carrying assembly 202 is disposed on the first support 201 and rotatably connected to the first support 201, and is used to carry the strip to be cut. The first driving component 203 is drively connected to the strip carrying assembly 202 and is used to drive the strip carrying assembly 202 to rotate, so as to drive the carried strip to rotate.
[0068] In this embodiment, by designing the material belt carrying component 202 to be connected to the first driving component 203 and rotatably connected to the first support 201, automatic material belt conveying is realized, effectively simplifying the process of manually conveying the material belt.
[0069] like Figure 2B As shown, in some embodiments, the material belt carrying assembly 202 includes a first rotating shaft 2021, a baffle 2022, a material belt carrying component 2023, and a distance adjusting component 2024. The first rotating shaft 2021 is disposed on the first bracket 201 and rotatably connected to the first bracket 201. The baffle 2022 is fixed to the first rotating shaft 2021. The distance adjusting component 2024 is movably connected to the first rotating shaft 2021 and movably connected to the material belt carrying component 2023, and is used to adjust the distance between the material belt carrying component 2023 and the first rotating shaft 2021 in the axial direction perpendicular to the first rotating shaft 2021.
[0070] For example, the baffle 2022 is fixed to the first rotating shaft 2021 to prevent the material belt carried on the material belt carrier 2023 from deviating from the material belt feeding direction along the Y-axis. The distance adjustment component 2024 is used to adjust the distance between the material belt carrier 2023 and the first rotating shaft 2021 in the axial direction perpendicular to the first rotating shaft 2021, thereby realizing that the inner diameter space of the material belt carried by the feeding mechanism is adjustable.
[0071] In this embodiment, the distance adjustment component 2024 can be used to adapt to the material strips with different inner diameters.
[0072] In some embodiments, the distance adjustment component 2024 has a first connector 20241, a second connector 20242, a first support 20243, and a second support 20244. The first connector 20241 is fixedly connected to the first rotating shaft 2021, the second connector 20242 is movably connected to the first rotating shaft 2021, and under the action of an external force, the second connector 20242 can be displaced relative to the first rotating shaft 2021 in the axial direction of the first rotating shaft 2021. The first end of the first support 20243 is rotatably connected to the first connector 20241, and the second end of the first support 20243 is slidably connected to the material belt carrying component 2023. The first end of the second support 20244 is rotatably connected to the second connector 20242, the second end of the second support 20244 is rotatably connected to the material belt carrying component 2023, and the second support 20244 is rotatably connected to the first support 20243. Under the action of external force, the second connecting member 20242 can be displaced relative to the first rotating shaft 2021 in the axial direction of the first rotating shaft 2021, either towards or away from the first connecting member 20241. When the second connecting member 20242 is displaced towards the first connecting member 20241, the distance between the material strip carrying member 2023 and the first rotating shaft 2021 increases. When the second connecting member 20242 is displaced away from the first connecting member 20241, the distance between the material strip carrying member 2023 and the first rotating shaft 2021 decreases.
[0073] For example, the distance adjustment component 2024 has the function of adjusting the distance between the strip carrying component 2023 and the first rotating shaft 2021 in the axial direction perpendicular to the first rotating shaft 2021. That is, when an external force is applied to the second connecting member 20242 of the distance adjustment component 2024, the second connecting member 20242 can be displaced in a direction closer to the first connecting member 20241, thereby increasing the distance between the strip carrying component 2023 and the first rotating shaft 2021, or the second connecting member 20242 can be displaced in a direction away from the first connecting member 20241, thereby decreasing the distance between the strip carrying component 2023 and the first rotating shaft 2021, so as to meet the carrying requirements of strips with different inner diameters.
[0074] like Figure 3As shown, the feeding assembly 301 includes a second driving component 3011, a second support 3012, a first roller 3013, a second roller 3014, and an elastic component 3015. The first roller 3013 is rotatably connected to the second support 3012, and the second roller 3014 is rotatably connected to the elastic component 3015 and is adapted to the first roller 3013 to form a clamping space for clamping the material strip. The elastic component 3015 is fixed to the second support 3012 and is used to apply an elastic force to the second roller 3014. The second driving component 3011 is connected to the first roller 3013 and is used to drive the first roller 3013 to rotate, thereby moving the material strip in the clamping space.
[0075] For example, when the material strip is fed to the feeding mechanism, it passes through the elastic clamping space formed in the Z-axis direction by the first roller 3013, the second roller 3014 and the elastic member 3015, and is clamped by the elastic clamping space. At the same time, the second driving member 3011 drives the first roller 3013 to rotate, thereby driving the clamped material strip to be further conveyed to the material pulling position of the cutting equipment.
[0076] In some embodiments, the elastic component 3015 includes a spring 30151, a clamping block 30152, and a guide rod assembly 30153. The guide rod assembly 30153 is disposed on the second bracket 3012. The clamping block 30152 is slidably connected to the guide rod assembly 30153 and rotatably connected to the second roller 3014. The spring 30151 is disposed between the second bracket 3012 and the clamping block 30152 to provide elastic force to the clamping block 30152. Under the action of external force, the clamping block 30152 can be displaced relative to the guide rod assembly 30153 in the axial direction perpendicular to the second roller 3014 to adjust the size of the clamping space.
[0077] In this embodiment, by setting a first roller 3013 with elastic clamping and a second roller 3014 adapted thereto, the material strip is made to adhere to the first roller 3013 and be conveyed to the material pulling position of the cutting equipment as the first roller 3013 rotates, thereby limiting the conveying direction of the material strip and ensuring that the material strip moves stably to the material pulling position.
[0078] like Figure 3 As shown, in some embodiments, the correction component 302 includes at least two sets, and the at least two sets of correction components 302 are respectively disposed on opposite sides in the second direction. Each set of correction components 302 includes at least a first correction component 3021 and a second correction component 3022. The first correction component 3021 and the second correction component 3022 are disposed at intervals, and the distance between the first correction component 3021 and the second correction component 3022 is adjustable.
[0079] For example, two sets of correction components 302 are respectively disposed on opposite sides of the second bracket 3012 along the Y-axis direction. Each set of correction components 302 includes two spaced-apart first correction components 3021 and second correction components 3022. The distance between the first correction components 3021 and the second correction components 3022 can be adjusted along the X-axis direction, thereby adapting to material strips of different widths and preventing the material strip from shifting during the feeding process to the cutting equipment, further improving the accuracy of material strip cutting.
[0080] In this embodiment, by setting and adjusting the spacing between the correction components, it can adapt to material strips of different widths and fix the feeding direction of the material strip to ensure that the cutting position of the material strip does not shift when it is cut. Setting multiple sets of correction components results in better positioning of the material strip.
[0081] like Figure 4 As shown, the cutting mechanism 50 includes a cutting component 501 and a pressing component 502. The pressing component 502 presses the strip located at the cutting position to facilitate the cutting component 501 to cut the strip.
[0082] For example, after the strip is clamped at the feeding position and pulled out to the required length, the pressing assembly 502 presses and fixes the strip located at the cutting position so that the cutting assembly 501 can cut the strip.
[0083] In this embodiment, the pressing assembly 502 can ensure that the cutting assembly 501 applies a stable shearing force to the strip during the cutting process.
[0084] In some embodiments, the cutting assembly 501 includes a cutting base 5011 and a cutting component 5012, and the pressing assembly 502 includes a pressing component 5021 and an elastic element 5022. The pressing assembly 502 is elastically adapted to the cutting component 5012 through the elastic element 5022, and the pressing assembly 502 can be displaced relative to the cutting component 5012 in a first direction. During the cutting process of the cutting mechanism 50 cutting the strip located at the cutting position, the pressing assembly 502 and the cutting base 5011 elastically clamp the strip, and the cutting component 5012 is displaced relative to the cutting base 5011 to cut the strip located at the cutting position.
[0085] For example, the pressing assembly 502 can be displaced relative to the cutting component 5012 along the Z-axis direction. When it is necessary to cut the strip located at the cutting position, the pressing assembly 502 and the cutting base 5011 elastically clamp the strip, and the cutting component 5012 is displaced relative to the cutting base 5011 along the Z-axis direction to cut the strip located at the cutting position. Since the pressing assembly 502 has an elastic element 5022, it can reduce the impact force on the equipment during the pressing and clamping process.
[0086] In this embodiment, the pressing assembly 502 is equipped with an elastic element 5022, so that the pressing assembly 502 and the cutting base 5011 form an elastic clamping space to clamp the material strip, which can effectively buffer the impact force on the equipment during pressing and improve the stability and service life of the equipment.
[0087] like Figure 5 As shown, the ranging mechanism 40 includes a ranging drive component 401, a slide rail assembly 402, a clamping component 403, and a sensor. The slide rail assembly 402 includes a first slider component 4021 and a second slider component 4022, which are slidably connected. The clamping component 403 is connected to the second slider component 4022 and is used to clamp the material strip. The ranging drive component 401 is used to drive the second slider component 4022 to slide relative to the first slider component 4021. The sensor is used to detect the pull-out length of the material strip clamped by the clamping component 403.
[0088] For example, the clamping component 403 clamps the strip and moves reciprocally along the Y-axis direction of the first slider component 4021 via the second slider component 4022. When the sensor detects that the pull-out length of the strip clamped by the clamping component 403 meets the requirements, the cutting mechanism 50 performs a cutting action. After the strip is cut, the second slider component 4022 can retract, that is, the clamping component 403 retracts to the pull-out position.
[0089] In this embodiment, by setting the clamping component 403 to slide back and forth on the slide rail assembly 402, receiving the detection signal fed back by the sensor, clamping the material strip and pulling it out to a preset length, and after the cutting mechanism 50 has completed the cutting operation, the clamping component 403 retracts, thereby realizing automatic distance measurement and cutting.
[0090] Preferably, the cutting base 5011 also includes a third support, on which a lifting cylinder is mounted.
[0091] In this embodiment, when the clamping component 403 slides to the corresponding area, the cylinder in the corresponding area of the third bracket will rise to support the drooping strip, making the length of the strip cut more accurate.
[0092] It should be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.
[0093] It should also be understood that the term "and / or" as used in this specification and the appended claims refers to any combination and all possible combinations of one or more of the associated listed items, and includes such combinations. It should be noted that, herein, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or system that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or system. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or system that includes that element.
[0094] The sequence numbers of the above-described embodiments of this utility model are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments. The above descriptions are merely specific implementations of this utility model, but the protection scope of this utility model is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this utility model, and these modifications or substitutions should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.
Claims
1. A strip cutting device, characterized in that, include: The feeding mechanism is used to carry the strip of material to be cut; The feeding mechanism provides feeding power to the material strip, and under the action of the feeding mechanism, the material strip can be moved to the pulling position of the cutting equipment; A ranging mechanism is used to clamp the material strip at the material pulling position and pull the material strip out a preset length; The cutting mechanism is provided with a cutting position and is used to cut the material strip pulled out by the ranging mechanism to the preset length at the cutting position; The feeding mechanism includes a feeding component and a correction component. The feeding component is located between the feeding mechanism and the cutting mechanism and is used to elastically clamp the material strip in a first direction and can drive the material strip to move in a second direction perpendicular to the first direction to move the material strip to the pulling position. The correction component is disposed on at least one side of the feeding component in the second direction and is used to correct the feeding direction of the pulling material.
2. The cutting equipment according to claim 1, characterized in that, The feeding mechanism includes a first support, a material belt carrying assembly, and a first driving component; The material strip carrying assembly is disposed on the first bracket and rotatably connected to the first bracket, and is used to carry the material strip to be cut; the first driving component is drivenly connected to the material strip carrying assembly and is used to drive the material strip carrying assembly to rotate, so as to drive the carried material strip to rotate.
3. The cutting equipment according to claim 2, characterized in that, The material belt carrying assembly includes a first rotating shaft, a baffle, a material belt carrying component, and a distance adjusting component; The first rotating shaft is disposed on the first bracket and rotatably connected to the first bracket. The baffle is fixed to the first rotating shaft. The distance adjustment component is movably connected to the first rotating shaft and movably connected to the material belt carrying component, and is used to adjust the distance between the material belt carrying component and the first rotating shaft in the axial direction perpendicular to the first rotating shaft.
4. The cutting device according to claim 3, characterized in that, The distance adjustment component includes a first connector, a second connector, a first support, and a second support; The first connecting member is fixedly connected to the first rotating shaft; The second connecting member is movably connected to the first rotating shaft, and under the action of external force, the second connecting member can be displaced relative to the first rotating shaft in the axial direction of the first rotating shaft; The first end of the first support member is rotatably connected to the first connector, and the second end of the first support member is slidably connected to the material belt bearing component; The first end of the second support member is rotatably connected to the second connector, the second end of the second support member is rotatably connected to the material belt carrying component, and the second support member is rotatably connected to the first support member; Under the action of external force, the second connector can be displaced relative to the first rotating shaft in the axial direction of the first rotating shaft, either towards or away from the first connector. When the second connector is displaced towards the first connector, the distance between the material belt carrying component and the first rotating shaft increases. When the second connector moves away from the first connector, the distance between the strip-bearing component and the first rotating shaft decreases.
5. The cutting equipment according to claim 1, characterized in that, The feeding assembly includes a second driving component, a second bracket, a first roller, a second roller, and an elastic component; The first roller is rotatably connected to the second bracket; The second roller is rotatably connected to the elastic component and is adapted to the first roller to form a clamping space for clamping the strip. The elastic component is fixed to the second bracket and is used to apply an elastic force to the second roller; The second driving component is connected to the first roller and is used to drive the first roller to rotate, thereby moving the material strip in the clamping space.
6. The cutting device according to claim 5, characterized in that, The elastic component includes a spring, a clamping block, and a guide rod assembly; The guide rod assembly is disposed on the second bracket, and the clamping block is slidably connected to the guide rod assembly and rotatably connected to the second roller. The spring is disposed between the second bracket and the clamping block and is used to provide elastic force to the clamping block; wherein, under the action of external force, the clamping block can be displaced relative to the guide rod assembly in an axial direction perpendicular to the second roller to adjust the size of the clamping space.
7. The cutting device according to claim 1, characterized in that, The correction components include at least two sets, and the at least two sets of correction components are respectively arranged on opposite sides in the second direction; Each set of correction components includes at least a first correction component and a second correction component, the first correction component and the second correction component are spaced apart, and the spacing between the first correction component and the second correction component is adjustable.
8. The cutting equipment according to claim 1, characterized in that, The cutting mechanism includes a cutting component and a pressing component. The pressing component is used to press the strip located at the cutting position, and the cutting component is used to cut the pressed material.
9. The cutting device according to claim 8, characterized in that, The cutting assembly includes a cutting base and cutting components; The pressing assembly includes a pressing component and an elastic element. The pressing component is elastically adapted to the cutting component through the elastic element, and the pressing component can be displaced relative to the cutting component in the first direction. During the cutting process of the cutting mechanism cutting the strip located at the cutting position, the pressing assembly and the cutting base elastically clamp the strip, and the cutting component moves relative to the cutting base to cut the strip located at the cutting position.
10. The cutting device according to claim 1, characterized in that, The ranging mechanism includes a ranging drive component, a slide rail assembly, a clamping component, and a sensor; The slide rail assembly includes a first slider component and a second slider component, the first slider component and the second slider component are slidably connected, and the clamping component is connected to the second slider component and is used to clamp the material strip; The ranging drive component is used to drive the second slider component to slide relative to the first slider; The sensor is used to detect the pull-out length of the strip held by the clamping component.