Cutting device for titanium alloy material processing

The cutting device for titanium alloys addresses inefficiencies in traditional cutting methods by using a support component with a push-pull mechanism to ensure precise and continuous cutting, enhancing accuracy and efficiency.

CN120307054AInactive Publication Date: 2025-07-15JIANGSU TIANGONG TECH CO LTD
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Patent Information

Application Number
CN202510596809.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-07-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the cutting process, titanium alloy materials have problems such as low material removal rate, unstable cutting process, serious tool wear, and difficult to control cutting accuracy. The traditional method operates complex and has high cost.

Method used

A cutting device including a delivery component, a lifting component, a stop component and an adjustment component is designed. By precisely controlling the position and fixing of the circular tube, the uninterrupted placement and cutting of the circular tube is realized, and the loading and unloading process is optimized.

Benefits of technology

It improves the accuracy and efficiency of cutting titanium alloy materials, reduces operating steps, reduces production costs, and ensures the stability and accuracy of the cutting process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a cutting device for titanium alloy material processing, which is characterized by comprising a delivery assembly, the delivery assembly further comprises a stop plate, the stop plate is arranged at one end of a stop block, the stop plate is connected with a second telescopic piece, an extrusion piece is arranged at one end of the second telescopic piece, and a placing cylinder is placed on one side of the extrusion piece; the placing cylinder penetrates through the stopping block and is fixedly connected with the stopping block, a pushing block is arranged in the placing cylinder, one side of the pushing block is fixedly connected with the extrusion part, a non-slip ring is arranged in the placing cylinder, and an open hole is formed in one end of the placing cylinder; the landing unit is arranged on the upper portion of the supporting block and connected with the landing unit, the landing unit comprises a pair of first electric telescopic pieces, a landing platform is arranged on the upper portions of the pair of first electric telescopic pieces, and the landing platform is connected with a landing component; the interrupt activator includes an activation rotary piston. And integration of feeding and discharging of the circular pipe is optimized, the process of discharging of the circular pipe after cutting is shortened, and the progress of cutting of the circular pipe is enhanced.
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Description

Technical Field

[0001] The present invention relates to the technical field of cutting, and particularly to a cutting device for processing titanium alloy materials. Background Art

[0002] During the processing of titanium alloy structures, the material removal rate is as high as 90% - 95%, and the proportion of thin-wall and deep-groove cavity features exceeds 80%, making such structural parts exhibit typical weak rigidity characteristics and extremely unstable processing states. In addition, the characteristics of titanium alloy materials themselves, such as low elastic modulus, large elastic deformation, high cutting temperature, low thermal conductivity, and chemical activity at high temperatures, all exacerbate the tool sticking phenomenon during cutting, easily causing excessive wear or even breakage of the tool, and thus affecting the cutting performance of titanium alloy. In the prior art, the requirements for cutting titanium alloy are very high, and the requirements for machine tools, tools, and processing technologies are extremely strict. Therefore, traditional titanium alloy processing methods often can only be carried out at a low cutting parameter level, which not only prolongs the production cycle but also increases the processing cost. In addition, the operation steps are cumbersome during processing, still relying on manual loading and unloading, and the cutting accuracy cannot be guaranteed. Due to the reasons of traditional fixtures, the influence of factors such as cutting force, cutting vibration, and cutting heat is more significant, resulting in problems such as tool deflection, deformation, and vibration during processing, and the operation steps are complex and lack coherence, thus making it difficult to control the processing quality.

[0003] Therefore, it is necessary to provide a cutting device for processing titanium alloy materials to solve the above technical problems. Summary of the Invention

[0004] The purpose of this part is to outline some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this part, as well as in the abstract and title of the specification of this application, to avoid obscuring the purpose of this part, the abstract, and the title. However, such simplifications or omissions cannot be used to limit the scope of the present invention.

[0005] In view of the above existing problems, the present invention is proposed.

[0006] To solve the above technical problems, the present invention provides the following technical solution: A cutting device for processing titanium alloy materials, characterized in that it includes a feeding assembly. Among them, the feeding assembly is installed on the surface of the supporting block. The feeding assembly is composed of a first telescopic member, a blocking block, and a feeding member. The first telescopic member is installed on the upper surface of the supporting block, the blocking block is installed at the tail of the first telescopic member, and the blocking block is connected to the feeding member.

[0007] The delivery assembly further includes a stop plate, which is arranged at one end of the blocking block. The stop plate is connected to the second telescopic member. An extrusion member is arranged at one end of the second telescopic member. A number of placement cylinders are placed on one side of the extrusion member, and the placement cylinders are arranged in sequence. Among them, the placement cylinders pass through the blocking block and are fixedly connected to the blocking block. A pushing block is arranged inside the placement cylinder, and one side of the pushing block is fixedly connected to the extrusion member. An anti-slip ring is arranged inside the placement cylinder, and an opening is arranged at one end of the placement cylinder.

[0008] The landing unit is arranged on the upper part of the supporting block and is connected to the landing unit. The landing unit includes a pair of electric telescopic members. A lifting platform is arranged on the upper part of the pair of electric telescopic members, and the lifting platform is connected to the landing component.

[0009] The interruption starting member includes a starting rotary piston, which is arranged on one side of the stabilizing block. A scribing rod is arranged at the position of the extending end of the starting rotary piston. Rotary columns are arranged on both sides of the scribing rod, and the rotary columns are fixedly connected to the movable sliding groove.

[0010] As a preferred solution of the cutting device for titanium alloy material processing according to the present invention, the lifting component includes a lifting column, which is arranged on one side of the portal concave hole. A lifting platform is installed beside the lifting column, and a pair of connecting cables are arranged opposite to each other at the gap between the lifting platform and the lower part of the portal concave hole.

[0011] As a preferred solution of the cutting device for titanium alloy material processing according to the present invention, the stop component includes a stop frame, which is arranged on the sliding groove. A movable hole is arranged on the frame side of the stop frame away from the sliding groove. A blocking member is arranged inside the stop frame, and the blocking member is movably connected to the stop frame. An elastic member is arranged at the position of the frame wall between the blocking block and the stop frame, and a roller is installed in the movable hole on one side of the blocking member.

[0012] As a preferred solution of the cutting device for titanium alloy material processing according to the present invention, the delivery assembly further includes a stop plate, which is arranged at one end of the blocking block. The stop plate is connected to the fourth telescopic member. An extrusion member is arranged at one end of the second telescopic member. A number of placement cylinders are placed on one side of the extrusion member, and the placement cylinders are arranged in sequence. Among them, the placement cylinders pass through the blocking block and are fixedly connected to the blocking block. A pushing block is arranged inside the placement cylinder, and one side of the pushing block is fixedly connected to the extrusion member. An anti-slip ring is arranged inside the placement cylinder, and an opening is arranged at one end of the placement cylinder.

[0013] As a preferred solution of the cutting device for titanium alloy material processing according to the present invention, a number of U-shaped notches are arranged at the bottom of the lifting platform.

[0014] As a preferred embodiment of the cutting device for titanium alloy material processing according to the present invention, the adjustment assembly includes a pair of stabilizing blocks, the stabilizing blocks are arranged on the supporting blocks, the stabilizing blocks are provided with rotating columns, the rotating columns pass through the stabilizing blocks and are rotationally connected to the stabilizing blocks, and the two rotating columns are respectively fixedly connected to both sides of the sliding groove.

[0015] As a preferred embodiment of the cutting device for titanium alloy material processing according to the present invention, the first electric telescopic member and the third electric telescopic rod are electrically connected to the controllable power supply. When the circular tube rotates to the bottom of the lifting platform, the first electric telescopic member is activated. The first electric telescopic member is provided as a pair, and the pair of electric telescopic members guide the lifting platform to move closer to the upper surface of the sliding groove.

[0016] As a preferred embodiment of the cutting device for titanium alloy material processing according to the present invention, the third electric telescopic rod guides the descending plate to move downward, the descending plate guides the support column to move downward to place the circular tube, and the blocking blocks arranged on both sides restrict the position of the lifting platform. After the restriction, the lifting member cooperates with the aperture concave hole and the support column to complete the fixation and cutting of the circular tube.

[0017] As a preferred embodiment of the cutting device for titanium alloy material processing according to the present invention, the fixing claw guides the support column to be connected to the guiding plate. The support column will guide the fixing claw to move due to the reaction force of the guiding plate, and the fixing claw will guide the non-polygonal plate to move by using the connecting block.

[0018] As a preferred embodiment of the cutting device for titanium alloy material processing according to the present invention, one surface of the polygonal plate presses the matching cylinder, and the cylinder guides the blocking key to move into the blocking frame to compress the elastic member.

[0019] The beneficial effects of the present invention: By restricting the position of the lifting platform with the blocking block, after the restriction, the lifting member cooperates with the aperture concave hole and the support column to make the stressed stop member return to its original state to restrict the circular tube in the aperture concave hole, and at the same time, it can ensure the accurate position of the circular tube, prevent the inaccurate position of the circular tube from occurring, and thus ensure the accuracy of the cutting position. After cutting, the third electric telescopic rod uses the descending plate to guide several support columns to move upward and return to their original state, and the first electric telescopic rod guides the lifting platform to move upward and return to its original state. During the cutting of the circular tube, the feeding assembly will cycle the previous circular tube fixing steps, place the uncut circular tube in the appropriate aperture concave hole, and complete the function of continuous placement of the circular tube. It optimizes the integration of loading and unloading of circular tubes and shortens the process of unloading circular tubes after cutting, enhancing the progress of circular tube cutting. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0021] Wherein:

[0022] Figure 1 It is the front view of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0023] Figure 2 It is the cross-sectional view of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0024] Figure 3 It is the front perspective structure schematic diagram of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0025] Figure 4 It is the rear perspective structure schematic diagram of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0026] Figure 5 It is the left view of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0027] Figure 6 It is the enlarged view of the elastic component of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0028] Figure 7 It is the front cross-sectional view of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0029] Figure 8 It is the structure schematic diagram of the interruption starting part of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention;

[0030] Figure 9 It is the structure schematic diagram of the stop component and the adjustment component of a cutting device for titanium alloy material processing according to an embodiment provided by the present invention.

[0031] 100, Support block; 101, Adjustment component; 102, Sliding groove; 143, Adjusting component; 103, Path recess; 142, Lifting component; 141, Lifting column; 112, Lifting platform; 140, Connecting cable; 111, Blocking part; 139, Stopping component; 138, Stopping frame; 109, Elastic component; 108, Cylinder; 137, Guide plate; 136, Adjusting part; 106, Connecting rod; 104, Fixed claw; 105, Support column; 135, Sleeve plate; 107, Polygonal plate; 134, Stabilizing block; 133, Rotating column; 132, Interrupt starting part; 131, Rotating piston; 110, Scratching rod; 130, Movable sliding groove; 129, Landing unit; 114, First electric telescopic part; 115, Lifting and lowering platform; 128, U-shaped notch; 127, Landing component; 117, Third electric telescopic rod; 118, Landing plate; 113, Support pillar; 116, Feeding component; 126, First telescopic part; 42; 125, Blocking block; 124, Feeding part; 123, Stop baffle; 122, Second telescopic part; 121, Extruding part; 120, Placing cylinder; 119, Pushing block Detailed implementation manners

[0032] To make the above objects, features and advantages of the present invention more obvious and understandable, the following will describe the detailed implementation manners of the present invention in conjunction with the accompanying drawings of the specification. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all embodiments.

[0033] Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0034] In the following description, many specific details are set forth to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar generalizations without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0035] Embodiment 1

[0036] Referring to Figures 1-9 , according to an embodiment of the present invention, a cutting device for titanium alloy material processing includes a feeding component 116. Among them, the feeding component 116 is installed on the surface of the support block 100. The feeding component 116 is composed of a first telescopic part 126, a blocking block 125 and a feeding part 124. The first telescopic part 126 is installed on the upper surface of the support block 100. The blocking block 125 is arranged at the tail of the first telescopic part 126. The blocking block 125 is connected to the feeding part 124.

[0037] The delivery component 116 further includes a stop plate 123 which is installed at one end of the blocking block 125. The stop plate 431 is connected to the second telescopic member 122. An extrusion member 121 is installed at one end of the second telescopic member 122. A plurality of placement cylinders 120 are placed on one side of the extrusion member 121. The placement cylinders 120 are arranged in sequence. Among them, the placement cylinder 120 passes through the blocking block 125 and is fixedly connected to the blocking block 125. A push block 119 is arranged inside the placement cylinder 120. One side of the push block 119 is fixedly connected to the extrusion member 121. An anti-slip ring is arranged inside the placement cylinder 120. An opening is arranged at one end of the placement cylinder 120.

[0038] During use, the first telescopic member 126 and the second telescopic member 122 are both connected to the telescopic member controller. When in use, the first telescopic member 126 uses the blocking block 125 to guide the delivery member 124 at a long distance from the extended end of the first telescopic member 126, and the second telescopic member 122 guides the push block 119 at a short distance of the second telescopic member 122. At this time, the push block 119 is outside the placement cylinder 120. By arranging a plurality of retractable claws inside the placement cylinder 120, by opening the second telescopic member 122, the extrusion member 121 is used to guide the push block 119 to push into the placement cylinder 120. When pushed to a certain position, the retractable claws are used to fix the raw material to be cut to prevent it from falling off. Then, the first telescopic member 126 uses the blocking block 125 to guide the placement cylinder to move.

[0039] A cutting device for titanium alloy material processing includes an adjustment component 101. The adjustment component is arranged on the upper part of the support block 100 and is connected to the support block 100. Among them, the adjustment component 101 includes a support block 100. The support block 100 is connected to the adjustment component. The adjustment component 101 includes a sliding groove 102. A plurality of adjustment components 101 are installed on the sliding groove 102. The plurality of adjustment components 101 are arranged at equal distances. A stop plate 23 is installed at one end of the sliding groove 102. Adjusting members 136 are arranged on the peripheral side of the sliding groove 102.

[0040] In use, the first telescopic member 126 is opened. The first telescopic member 126 guides the placement cylinder 120 to slide close to the sliding groove 102 through the blocking block 125. The placement cylinder 120 approaches the path concave hole 103. Then, the second telescopic member 122 is opened. The second telescopic member 122 uses the extrusion member 121 to guide the pushing block 119 to tightly fix the circular tube, and extrudes the circular tube into the path concave hole 103. At this time, when the position of the circular tube changes, the stop member 139 is extruded, so that the interception of the path concave hole 103 can be eliminated, which is beneficial to the circular tube sliding into the path concave hole 103. When the circular tube slides, the lifting member 142 can also be extruded. The support of the lifting member 142 slides in the sliding groove 102 to extrude the two sliding balls. The two sliding balls and the lifting member 142 are at the same horizontal position to extrude the two sliding balls. In addition, when the lifting member 142 is lifted, the cut circular tube can be extruded from the path concave hole 103, which makes it more convenient to place or remove the circular tube. At the same time, when the circular tube slides from the placement cylinder 120 into the corresponding path concave hole 103, the first telescopic member 126 uses the blocking block 125 to guide the placement cylinder 120 to leave the sliding groove 102. At this time, the stressed stop member 139 returns to its original state to restrict the circular tube in the path concave hole 103, and at the same time, it can ensure the accurate position of the circular tube, prevent the inaccurate position of the circular tube from occurring, and thus ensure the accuracy of the cutting position.

[0041] The stop member 139 includes a stop frame 138. The stop frame 138 is installed on the sliding groove 102. A movable hole is provided on the side of the stop frame 138 away from the sliding groove 102. A blocking member is provided inside the stop frame 138. The blocking member is movably connected to the stop frame 138. An elastic member 109 is installed at the place where the blocking block 2262 and the wall of the stop frame 138 meet. A cylinder 108 is provided in the movable hole on one side of the blocking member.

[0042] In use, when the circular tube falls into the path concave hole 103, due to the addition of the circular tube, a pair of blocking members are squeezed and slide into the stop frame 138 while pressing the elastic member 109, and then the interception of the path concave hole 103 is eliminated. When the circular tube falls into the same-diameter concave hole 223, at this time, the elastic member 109 will guide the blocking member to return to its initial state, and at this time, a pair of blocking members return to their original state to restrict the elastic member.

[0043] The lifting member 142 includes a lifting column 141. The lifting column 141 is arranged on one side of the path concave hole 103. A lifting platform 112 is installed beside the lifting column 141. A pair of connecting cables 140 are arranged opposite to each other at the gap between the lifting platform 112 and the lower part of the path concave hole 103.

[0044] During use, the height of the lifting platform 112 is the same as the width of the sliding ball, ensuring that when several sliding balls slide, the lifting column 141 can guide the lifting platform 112 to lift to a height higher than the position of the path concave hole 103, guaranteeing the function of pushing the round tube out of the path concave hole 103. When the round tube is inserted, the round tube will push the lifting platform 112 open. At the same time, due to the extrusion of the lifting platform 112, it will guide the lifting column 141 to move and squeeze the sliding ball, and the second lifting column 141 will guide the lifting platform 112 to change its position. At the same time, the cut round tube can be taken out of the path concave hole 103.

[0045] To better align and fix the round tube, the adjustment assembly 101 includes a pair of stabilizing blocks 134. The stabilizing blocks 134 are arranged on the upper surface of the supporting block 100. A rotating column 133 is provided on the stabilizing block 134. The adjusting member 143 passes through the stabilizing block 134 through the rotating column 133 and is rotatably connected to the stabilizing block 134. Each of the pair of rotating columns 133 is fixedly connected to both sides of the sliding groove 102. At the same time, on the left side of the right stabilizing block 134, it is fixedly connected to the stop baffle 23, and the right stabilizing block 134 is connected to the interruption starting member 132.

[0046] The interruption starting member 132 includes a starting rotating piston 131. The starting rotating piston 131 is arranged on one side of the stabilizing block 134. A sliding rod 110 is arranged at the position of the extending end of the starting rotating piston 131. Rotating columns 133 are provided on both sides of the sliding rod 110, and the rotating columns 133 are fixedly connected to the movable sliding groove 130.

[0047] During use, the rotating piston 131 is started by power. When the round tube falls into the path concave hole 103, the rotating piston 131 is started at this time. The rotating piston 131 guides the sliding rod 110 to rotate, and the rotation of the sliding rod 110 guides the movable sliding groove 130 to twist. At the same time, the round tube in the path concave hole 103 twists to the upper part.

[0048] The lowering unit 129 of the lifting member 142. The lowering unit 129 is arranged on the upper part of the supporting block 100 and is connected to the lowering unit 129. The lowering unit 129 includes a pair of first electric telescopic members 114. A lifting platform 115 is arranged on the upper part of the pair of first electric telescopic members 114, and the lifting platform 115 is connected to the lowering member 127.

[0049] A number of U-shaped notches 128 are provided at the bottom of the lifting platform 115.

[0050] During use, the first electric telescopic member 114 and the third electric telescopic rod 117 are electrically connected to a controllable power supply. When the circular tube rotates to the bottom of the lifting platform 115, the first electric telescopic member 114 is activated at this time. The first electric telescopic member 114 is provided as a pair, and the pair of first electric telescopic members 114 guide the lifting platform 115 to move closer to the upper surface of the sliding groove 102. Among them, the U-shaped notch 128 has an effect of dodging the stop member 139, which can prevent the stop member 139 from interfering with the lifting platform 115 and the sliding groove 102. At the same time, the switch of the third electric telescopic rod 117 is turned on, and the third electric telescopic rod 117 guides the landing plate 118 to move downward. The landing plate 118 guides the support pillar 113 to move downward to place the circular tube. Among them, the blocking members 111 provided on both sides restrict the position of the lifting platform 112. After the restriction, the lifting column 141, the path concave hole 103 and the support pillar 113 cooperate to complete the fixation and cutting of the circular tube. After the cutting is completed, the third electric telescopic rod 117 uses the landing plate 118 to guide a plurality of support pillars 113 to move upward and return to their original state, and the first electric telescopic rod 31 guides the lifting platform 115 to move upward and return to its original state. When the circular tube is being cut, the feeding assembly 116 will cycle the previous circular tube fixing steps and place the uncut circular tube in the appropriate path concave hole 103 to complete the function of continuously placing the circular tube.

[0051] After the circular tube is cut, the sliding rod 110 will guide the movable path wheel 273 to rotate. The movable path wheel 273 uses the rotating roller 26 to guide the sliding groove 102 to rotate. The sliding groove 102 rotates the cut circular tube to the front of the sliding groove 102, and then rotates the circular tube to the bottom of the lifting platform 115.

[0052] When the sliding groove 102 rotates, the pair of connecting rods 106 and the pair of sleeve plates 135 above are used to guide the upper fixing claws 104 to rotate. The fixing claws 104 guide the support column 105 to be connected to the guiding plate 137. At the same time, as the support column 105 rotates, the support column 105 will be guided by the reaction force of the guiding plate 137 to move the fixing claws 104, and the fixing claws 104 will use the coupling block to guide the polygonal plate 107 to move.

[0053] One side of the polygonal plate 107 squeezes the matching cylinder 108. The cylinder 108 guides the blocking member to move into the blocking frame and compress the elastic member 109, and then releases the stop in the path concave hole 103. If the sliding groove 102 has completed rotation, the feeding assembly will place the uncut circular tube. At the same time, the integration of the loading and unloading of the circular tube is optimized, the process of unloading the cut circular tube is reduced, and the progress of circular tube cutting is enhanced.

[0054] Importantly, it should be noted that the construction and arrangement of the present application shown in multiple different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who refer to this disclosure should easily understand that many modifications are possible without materially departing from the novel teachings and advantages of the subject matter described in this application (e.g., changes in the dimensions, scales, structures, shapes and proportions of various elements, as well as parameter values (such as temperature, pressure, etc.), installation arrangements, use of materials, colors, orientations, etc.). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of the element may be inverted or otherwise changed, and the nature, number or position of discrete elements may be altered or changed. Accordingly, all such modifications are intended to be included within the scope of the present invention. The order or sequence of any process or method steps may be changed or re-ordered according to alternative embodiments. In the claims, any "means-plus-function" clauses are intended to cover the structures that perform the recited functions herein, and not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes and omissions may be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the present invention. Therefore, the present invention is not limited to a particular embodiment, but extends to various modifications that still fall within the scope of the appended claims.

[0055] In addition, in order to provide a concise description of the exemplary embodiments, not all features of the actual embodiments may be described (i.e., those features that are not relevant to the currently contemplated best mode of carrying out the present invention or those that are not relevant to the implementation of the present invention).

[0056] It should be understood that in the development of any actual implementation, as in any engineering or design project, numerous specific implementation decisions may be made. Such development efforts may be complex and time-consuming, but for those of ordinary skill in the art who benefit from this disclosure, without undue experimentation, such development efforts will be a routine task of design, fabrication and production.

[0057] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention may be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and all of them should be covered by the scope of the claims of the present invention.

Claims

1. A cutting device for processing titanium alloy materials, characterized in that, Including a delivery component (116), a surface-mounted delivery component (116) of the support block (100), the delivery component (116) is composed of a first telescopic member (126), a blocking block (125) and a delivery member (124). The first telescopic member (126) is installed on the upper surface of the support block (100). The blocking block (125) is installed at the tail of the first telescopic member (126). The blocking block (125) is connected to the delivery member (124). The delivery component (116) further includes a stop baffle (123). The stop baffle (123) is installed at one end of the blocking block (125). The stop baffle (123) is connected to the second telescopic member (122). An extrusion member (121) is installed at one end of the second telescopic member (122). A placement cylinder (120) is placed on one side of the extrusion member (121). The placement cylinders (120) are arranged in sequence. Among them, the placement cylinder (120) passes through the blocking block (125) and is fixedly connected to the blocking block (125). A pushing block (119) is arranged inside the placement cylinder (120). One side of the pushing block (119) is fixedly connected to the extrusion member (121). An anti-slip ring is arranged inside the placement cylinder (120). An opening is arranged at one end of the placement cylinder (120). A landing unit (129), the landing unit (129) is arranged on the upper part of the support block (100) and is connected to the landing unit (129). The landing unit (129) includes a pair of first electric telescopic members (114). A landing platform (115) is installed on the upper part of the pair of first electric telescopic members (114). The landing platform (115) is connected to the landing component (127). The interruption starting member (132) includes a starting rotary piston (131). The starting rotary piston (131) is installed on one side of the stabilizing block (134). A scribing rod (110) is installed at the position of the extending end of the starting rotary piston (131). Rotating columns (133) are arranged on both sides of the scribing rod (110). The rotating columns (133) are fixedly connected to the movable sliding groove (130).

2. The cutting device for titanium alloy material processing according to claim 1, characterized in that, The lifting component (142) includes a lifting column (141). The lifting column (141) is arranged on one side of the path concave hole (103). A lifting platform (112) is installed beside the lifting column (141). A pair of connecting cables (140) are arranged facing each other at the gap between the lifting platform (112) and the lower part of the path concave hole (103).

3. The cutting device for titanium alloy material processing according to claim 1, wherein, The stop component (139) includes a stop frame (138). The stop frame (138) is installed on the sliding groove (102). A movable hole is arranged on the side of the stop frame (138) away from the sliding groove (102). A blocking member is arranged inside the stop frame (138). The blocking member is movably connected to the stop frame (138). An elastic member (109) is arranged at the wall of the stop frame (138) between the blocking member and the stop frame (138). A cylinder (108) is arranged in the movable hole on one side of the blocking member.

4. The cutting device for titanium alloy material processing according to claim 1, wherein A number of U-shaped notches (128) are arranged at the bottom of the landing platform (115).

5. The cutting device for titanium alloy material processing according to claim 1, characterized in that, The adjustment component (101) includes a pair of stabilizing blocks (134) which are arranged on the upper surface of the supporting block (100). A rotating column (133) is provided on the stabilizing block (134). The rotating column (133) passes through the stabilizing block (134) and is rotatably connected to the stabilizing block (134). Each of the pair of rotating columns (133) is fixedly connected to both sides of the sliding groove (102).

6. The cutting device for titanium alloy material processing according to claim 1, wherein The first electric telescopic member (114) and the third electric telescopic rod (117) are electrically connected to a controllable power source. When the round tube rotates to the bottom of the lifting platform (115), the first electric telescopic member (114) is activated. The first electric telescopic member (114) is provided as a pair, and the pair of first electric telescopic members (114) guides the lifting platform (115) to move closer to the upper surface of the sliding groove (102).

7. The cutting device for titanium alloy material processing according to claim 1, characterized in that, The third electric telescopic rod (117) guides the landing plate to move downward, and the landing plate guides the support column (113) to move downward to place the round tube. The blocking members (111) arranged on both sides restrict the position of the lifting platform (112). After the restriction, the lifting column (141) cooperates with the path concave hole (103) and the support column (113) to complete the fixation and cutting of the round tube.

8. The cutting device for titanium alloy material processing according to claim 1, wherein The fixed claw (104) guides the support column (105) to be connected to the guiding plate (137). The support column (105) will guide the fixed claw (104) to move due to the reaction force of the guiding plate (137). The fixed claw (104) will use the coupling block to guide the polygonal plate (107) to move.

9. The cutting device for titanium alloy material processing according to claim 8, characterized in that, One surface of the polygonal plate (107) presses the matching cylinder (108). The cylinder (108) guides the blocking member to move into the blocking frame to compress the elastic member (109).