Forging forming processing device
By using gear design in the forging molding and processing device to reduce the blade friction and resonance mechanism to release stress, the problems of blade pump wear and uneven plastic deformation of forgings are solved, and the blade life is extended and the quality of forgings is improved.
Patent Information
- Application Number
- CN202411686393.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2044-11-22
AI Technical Summary
The existing forging molding and processing devices have problems such as severe wear of the blade pump, which leads to increased internal leakage, reduced volume efficiency, and uneven plastic deformation of the forgings, which leads to large internal stress and cracks.
The design of the first gear, the second gear and the circular rack is adopted to reduce the friction between the blade and the inner wall of the blade pump, release the internal stress of the forging through the resonance mechanism, and realize the buffering and vibration effects by the cooperation of the buffer plate and the spring.
It extends the service life of the blade, improves the volume efficiency of the pump, reduces operating noise, improves the dimensional stability and plasticity of the forgings, and reduces the difficulty and scrapping rate of subsequent processing.
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Figure CN119387472B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of forging forming, and in particular relates to a forging forming processing device. Background Art
[0002] Forging is an ancient and important process in metalworking. It deforms metal by applying pressure to achieve the desired shape and properties. Hydraulic technology provides powerful, controllable force and pressure, making it ideal for forging, a process that requires high energy density. Hydraulic systems can precisely control the magnitude and duration of the forging force, enabling a precise forging process. Advances in hydraulic technology, such as high-pressure hydraulic components and precision control systems, have driven the continuous development and improvement of hydraulic forging equipment. The growing demand for high-performance materials is driving improvements in forging processes and equipment. Certain high-strength, high-toughness, and high-temperature-resistant alloy materials can only achieve their optimal microstructure and mechanical properties through forging. This, in turn, places higher demands on forging equipment, such as greater forging force and more precise control.
[0003] Existing forging forming processing devices still have many defects: Existing forging forming processing devices generally use hydraulic presses to complete the forging of workpieces, and the vane pump is the core of the hydraulic system. During the long-term use of the existing vane pump, the vanes, as the key components of the vane pump, will cause blade wear during long-term operation, which will gradually increase the gap between the vanes and the inner wall of the vane pump, resulting in increased internal leakage and decreased volumetric efficiency, which means that the actual output capacity of the pump is reduced, and ultimately affects the performance and life of the pump, and the operating noise of the pump will increase, affecting the working environment; in addition, due to the complex shape of the forging and uneven force, the degree of plastic deformation of different parts is often different, and areas with a large degree of deformation will produce greater internal stress. The existing forging forming processing device can only further process the workpiece after the forging is completed, which is time-consuming and labor-intensive. If it is not processed, it will cause cracks in the forging, reduce the fatigue strength of the workpiece and affect the plastic deformation ability of the forging. Summary of the Invention
[0004] The object of the present invention is to provide a forging forming processing device to solve the problems raised in the above background technology.
[0005] In order to achieve the above-mentioned purpose, the present invention provides the following technical solutions: a forging forming processing device, comprising a base, the upper surface of the base is movably sleeved with four evenly distributed guide cylinders, the outer circumferential surfaces of the four groups of guide cylinders are fixedly connected to a guide platform, the middle of the guide platform is fixedly connected to a hydraulic column, the lower surface of the guide platform is fixedly connected to one end of four evenly distributed buffer columns, the middle of the lower surface of the guide platform is movably sleeved with one end of four first springs evenly distributed on the outer edges of the four buffer columns, the first springs are movably sleeved with the outer circumferential surfaces of the buffer columns, the other end of the first springs is fixedly connected to a buffer plate, the buffer columns The other end is fixedly connected to the upper surface of the buffer plate, one end of the outer cylindrical surface of the hydraulic column is fixedly connected to the top plate, one end of the outer cylindrical surface of the hydraulic column is fixedly connected to the oil outlet, the inner bottom surface of the base is fixedly connected to the bottom plate, the upper surface of the bottom plate is provided with a resonance mechanism fixedly connected thereto, one end of the oil outlet is fixedly connected to a vane pump, one end of the vane pump is movably sleeved with the outer cylindrical surface of the output shaft of the motor, the output shaft end of the motor is fixedly connected to the first gear, a rotor is placed inside the vane pump, and three evenly distributed fixed rods are movably sleeved on one side of the rotor, and one end of the three groups of fixed rods is fixedly connected to three second gears.
[0006] Preferably, an oil suction port is provided on the upper surface of the vane pump, a plurality of sliding grooves are provided on the outer edge of the rotor, vanes are movably sleeved on the inner side of the sliding grooves, one end of a circular rack is fixedly connected to the inner wall of the vane pump, the first gear is meshed with three second gears, and the outer edges of the three groups of second gears are meshed with the inner tooth surfaces of the circular rack.
[0007] Preferably, the resonance mechanism includes a circular ring block, the upper surface of the base plate is fixedly connected to the lower surface of the circular ring block, the upper surface of the base plate is fixedly connected to one end of two second springs located on the inner side of the circular ring block, the other ends of the two groups of second springs are fixedly connected to the mold table, the lower surface of the mold table is fixedly connected to a circular ring column, the inner side of the circular ring column is movably connected to the second spring, the lower surface of the base plate is fixedly connected to one end of a hydraulic rod, and the other end of the hydraulic rod is fixedly connected to the lower surface of the mold table.
[0008] Preferably, the upper surface of the base plate is fixedly connected to two vertical plates, and one side of the vertical plate is movably sleeved with a first rotating rod, a second rotating rod, and a third rotating rod that are evenly distributed. One end of the outer circular surface of the first rotating rod is fixedly connected to a first linkage block, one end of the outer circular surface of the second rotating rod is fixedly connected to a second linkage block, and one end of the outer circular surface of the third rotating rod is fixedly connected to a third linkage block.
[0009] Preferably, one end of the first linkage block is fixedly connected to one end of the third spring, the other end of the first linkage block is fixedly connected to one end of the fourth spring, the other end of the third spring is fixedly connected to one side of the second linkage block, and the other end of the fourth spring is fixedly connected to one side of the third linkage block.
[0010] Preferably, the outer circular surface of the annular column is provided with two triangular notches, the outer edge of the third linkage block is adapted to the notches on the cylindrical surface of the annular column, and the outer edge of the second linkage block is adapted to the outer edge of the third linkage block.
[0011] Preferably, two evenly distributed linkage columns are fixedly connected to the lower surface of the guide platform, the protrusion at the lower end of the first linkage block is an isosceles trapezoidal prism, and the linkage column acts on the inclined surface of the isosceles trapezoidal prism when it descends to a certain position, and the protrusion at the upper end of the first linkage block is a rectangular parallelepiped, and the first linkage block acts on one end of the second linkage block when it rotates.
[0012] The beneficial effects of the present invention are as follows:
[0013] 1. The present invention uses the design of the first gear, the second gear, and the annular rack so that when the motor output end rotates, the first gear is driven to rotate, and the first gear drives the second gear to rotate. Under the action of the annular rack, the second gear rotates on itself while revolving around the first gear. The second gear drives the rotor to rotate synchronously through the fixed rod. The speed transmitted to the rotor by the motor output end is reduced, and the torque is increased, so that the tangential force on the blade is relatively reduced, and the relative sliding speed between the blade and the inner wall of the vane pump is reduced, and the friction between the blade and the inner wall of the vane pump is relatively reduced, which greatly extends the service life of the blade and also improves the volumetric efficiency and overall efficiency of the pump. It reduces the operating temperature to avoid excessive degradation of the oil and also improves the noise problem caused by friction.
[0014] 2. The present invention sets a resonance mechanism so that when the hydraulic column moves the forging downward, the hydraulic column drives the guide table, buffer plate, and buffer column to move downward. Since the buffer plate first contacts the mold platform and generates a downward force on it, the second spring is compressed at this time, and the notch at the lower end of the circular column acts on the lower end protrusion of the third linkage block. Under the action of the third rotating rod, the upper end protrusion of the third linkage block also engages with the upper end of the circular column. Under the action of the second linkage block and the third spring, the circular column is locked. When the hydraulic column contacts the workpiece, the linkage rod also acts on the lower end protrusion of the first linkage rod at the same time, and the second linkage block is deflected accordingly. Then, through the action of the fourth spring, the upper end protrusion of the third linkage block is separated from the upper end notch of the circular column. When the buffer plate leaves the surface of the workpiece, the second spring releases and cooperates with the hydraulic rod to achieve a vibration effect. Vibration can promote the adjustment of the microstructure inside the material, thereby more effectively releasing residual stress, improving the dimensional stability of the forging, and reducing the difficulty and scrap rate of subsequent processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0016] Figure 2 Schematic cross-sectional view of the vane pump of the present invention;
[0017] Figure 3 For the present invention Figure 2 A in the middle is an enlarged schematic diagram;
[0018] Figure 4 It is a schematic diagram of the internal cross-section of the overall structure of the present invention;
[0019] Figure 5 For the present invention Figure 4 The enlarged schematic diagram of point B in the middle;
[0020] Figure 6 This is a rear cross-sectional view of the vane pump of the present invention;
[0021] Figure 7 For the present invention Figure 4 The enlarged schematic diagram of point C in the middle;
[0022] Figure 8 It is a front view of the resonance mechanism of the present invention.
[0023] In the figure: 1. base; 2. guide cylinder; 3. guide table; 4. hydraulic column; 5. buffer column; 6. first spring; 7. buffer plate; 8. top plate; 9. oil outlet; 10. vane pump; 11. motor; 12. first gear; 13. rotor; 14. fixing rod; 15. second gear; 16. oil suction port; 17. vane; 18. circular rack; 19. mold table; 20. vertical plate; 21. first rotating rod; 22. second rotating rod; 23. third rotating rod; 24. first linkage block; 25. second linkage block; 26. third linkage block; 27. third spring; 28. fourth spring; 29. linkage column; 101. bottom plate; 102. circular ring block; 103. second spring; 104. circular ring column; 105. hydraulic rod. DETAILED DESCRIPTION
[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0025] like Figures 1 to 8As shown, an embodiment of the present invention provides a forging forming processing device, including a base 1, the upper surface of the base 1 is movably sleeved with four evenly distributed guide cylinders 2, the outer circumferential surfaces of the four groups of guide cylinders 2 are fixedly connected to a guide platform 3, the middle part of the guide platform 3 is fixedly connected to a hydraulic column 4, the lower surface of the guide platform 3 is fixedly connected to one end of four evenly distributed buffer columns 5, the middle part of the lower surface of the guide platform 3 is movably sleeved with one end of four first springs 6 evenly distributed on the outer edges of the four buffer columns 5, the first spring 6 is movably sleeved with the outer circumferential surface of the buffer column 5, the other end of the first spring 6 is fixedly connected to a buffer plate 7, the other end of the buffer column 5 is fixed to the upper surface of the buffer plate 7 The surfaces are fixedly connected, one end of the outer cylindrical surface of the hydraulic column 4 is fixedly connected to the top plate 8, one end of the outer cylindrical surface of the hydraulic column 4 is fixedly connected to the oil outlet 9, the inner bottom surface of the base 1 is fixedly connected to the bottom plate 101, and the upper surface of the bottom plate 101 is provided with a resonance mechanism fixedly connected thereto, one end of the oil outlet 9 is fixedly connected to the vane pump 10, one end of the vane pump 10 is movably sleeved with the outer cylindrical surface of the output shaft of the motor 11, the output shaft end of the motor 11 is fixedly connected to the first gear 12, and a rotor 13 is placed inside the vane pump 10, and one side of the rotor 13 is movably sleeved with three evenly distributed fixed rods 14, and one end of the three groups of fixed rods 14 is fixedly connected to three second gears 15.
[0026] Among them, an oil suction port 16 is provided on the upper surface of the vane pump 10, and a plurality of sliding grooves are provided on the outer edge of the rotor 13. A vane 17 is movably sleeved on the inner side of the sliding groove. One end of a circular rack 18 is fixedly connected to the inner wall of the vane pump 10, and the first gear 12 is meshed with the three second gears 15. The outer edges of the three groups of second gears 15 are meshed with the inner tooth surfaces of the circular rack 18. The output end of the motor 11 drives the first gear 12 to rotate, and the first gear 12 drives the three second gears 15 to rotate. Under the action of the circular rack 18, the three second gears 15 realize orbital motion around the first gear. The three second gears 15 drive the rotor 13 to rotate through the fixed rod 14. Due to the eccentric rotation of the rotor 13, the vanes 17 in the sliding groove of the rotor 13 are thrown out. Through this planetary-like mechanism design, the speed of the rotor transmitted to the output end of the motor 11 can be reduced without affecting the normal suction and discharge of hydraulic oil by the vane pump, and the torque is increased, thereby achieving the purpose of reducing blade wear.
[0027] Among them, the resonance mechanism includes a circular ring block 102, the upper surface of the base plate 101 is fixedly connected to the lower surface of the circular ring block 102, the upper surface of the base plate 101 is fixedly connected to one end of two second springs 103 located on the inner side of the circular ring block 102, the other ends of the two groups of second springs 103 are fixedly connected to the mold table 19, the lower surface of the mold table 19 is fixedly connected to a circular ring column 104, the inner side of the circular ring column 104 is movably connected to the second spring 103, the lower surface of the base plate 101 is fixedly connected to one end of a hydraulic rod 105, the other end of the hydraulic rod 105 is fixedly connected to the lower surface of the mold table 19, driving the hydraulic column 4 to descend, the hydraulic column 4 drives the guide table 3 to move downward, the guide table 3 drives the buffer plate 7 and the buffer column 5 and the linkage column 29 to move downward, when the buffer plate 7 acts on the workpiece surface, the mold table 19 is subjected to a downward force, and the mold table 19 drives the circular ring column 104 and the hydraulic rod 105 to move downward, thereby achieving the fixation of the mold table 19 and the guidance and buffering of the hydraulic column 4.
[0028] Among them, the upper surface of the bottom plate 101 is fixedly connected to two vertical plates 20, and one side of the vertical plate 20 is movably sleeved with a uniformly distributed first rotating rod 21, a second rotating rod 22, and a third rotating rod 23. One end of the outer circular surface of the first rotating rod 21 is fixedly connected to the first linkage block 24, one end of the outer circular surface of the second rotating rod 22 is fixedly connected to the second linkage block 25, and one end of the outer circular surface of the third rotating rod 23 is fixedly connected to the third linkage block 26. One end of the first linkage block 24 is fixedly connected to one end of the third spring 27, and the other end of the first linkage block 24 is fixedly connected to one end of the fourth spring 28. The other end of the third spring 27 is fixedly connected to one side of the second linkage block 25, and the other end of the fourth spring 28 is fixedly connected to one side of the third linkage block 26. When the mold table 19 moves downward, the notch of the circular column 104 acts on the lower end protrusion of the third linkage block 26, and under the action of the third rotating rod 23 , the upper protrusion of the third linkage block 26 also engages with the upper notch of the circular column 104, and the third linkage block 26 drives the first linkage block 24 to deflect through the fourth spring 28, and the first linkage block 24 drives the second linkage block 25 to deflect through the third spring 27, so that the outer edge of the second linkage block 25 engages with the upper outer edge of the third linkage block 26. At this time, under the action of the second spring 103, the resonance mechanism is realized to achieve locking. When the hydraulic column 4 contacts the workpiece to complete the forging, the linkage column 29 also acts on the first linkage block 24. Similarly, the first linkage block 24 is deflected and, under the action of the third spring 27 and the fourth spring 28, the upper protrusion of the third linkage block 26 is separated from the upper notch of the circular column 104. When the hydraulic column 4 and the buffer plate 7 leave the mold table 19, the second spring 103 cooperates with the hydraulic rod 105 to drive the mold table 19 to resonate, thereby releasing the stress on the workpiece.
[0029] Among them, two triangular notches are provided on the outer cylindrical surface of the circular column 104, the outer edge of the third linkage block 26 is adapted to the notch on the cylindrical surface of the circular column 104, and the outer edge of the second linkage block 25 is adapted to the outer edge of the third linkage block 26. Through the design of the notch of the circular column 104 and the protrusion of the third linkage block 26, the circular column can be locked when the circular column 104 descends.
[0030] Among them, two evenly distributed linkage columns 29 are fixedly connected to the lower surface of the guide platform 3. The protrusion at the lower end of the first linkage block 24 is an isosceles trapezoidal prism. When the linkage column 29 drops to a certain position, it acts on the inclined surface of the isosceles trapezoidal prism. The protrusion at the upper end of the first linkage block 24 is a rectangular parallelepiped. When the first linkage block 24 rotates, it acts on one end of the second linkage block 25. The deflection of the first linkage block 24 interacts with the third spring 27 and the fourth spring 28 to cooperate with the second linkage block 25 to unlock the circular column 104.
[0031] Working principle:
[0032] When the equipment is operating normally, the motor 11 is driven, and the output end of the motor 11 drives the first gear 12 to rotate, and the first gear 12 drives the three second gears 15 to rotate. Under the action of the circular rack 18, the three second gears 15 realize the orbital motion around the first gear, and the three second gears 15 drive the rotor 13 to rotate through the fixed rod 14. Due to the eccentric rotation of the rotor 13, the blades 17 in the sliding groove of the rotor 13 are thrown out, realizing the suction and extrusion of the hydraulic oil. Through the action of the first gear 12, the second gear 15 and the circular rack 18, the speed of the motor 11 is reduced and the torque of the rotor 13 is increased, thereby reducing the tangential force acting on the blades 17, and the friction of the blades 17 on the inner wall of the vane pump 10 when the blades 17 extend and rotate is also reduced.
[0033] When the equipment is forging the workpiece, the hydraulic column 4 is driven to descend, and the hydraulic column 4 drives the guide table 3 to move downward, and the guide table 3 drives the buffer plate 7, the buffer column 5 and the linkage column 29 to move downward. When the buffer plate 7 acts on the surface of the workpiece, the die table 19 is subjected to a downward force, and the die table 19 drives the annular column 104 and the hydraulic rod 105 to move downward. The notch of the annular column 104 acts on the lower end protrusion of the third linkage block 26. Under the action of the third rotating rod 23, the upper end protrusion of the third linkage block 26 also engages with the upper end notch of the annular column 104. The third linkage block 26 drives the first linkage block 24 to deflect through the fourth spring 28. The first linkage block 24 is deflected by the third The spring 27 drives the second linkage block 25 to deflect, so that the outer edge of the second linkage block 25 engages with the outer edge of the upper end of the third linkage block 26. At this time, under the action of the second spring 103, the resonance mechanism is realized to achieve locking. When the hydraulic column 4 contacts the workpiece to complete the forging, the linkage column 29 also acts on the first linkage block 24. Similarly, the first linkage block 24 is deflected under the action of the third spring 27 and the fourth spring 28, completing the separation of the upper end protrusion of the third linkage block 26 from the upper end notch of the circular column 104. When the hydraulic column 4 and the buffer plate 7 leave the mold table 19, the second spring 103 cooperates with the hydraulic rod 105 to drive the mold table 19 to resonate, thereby releasing the stress on the workpiece.
[0034] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0035] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A forging forming processing device, comprising a base (1), wherein the upper surface of the base (1) is movably sleeved with four uniformly distributed guide cylinders (2), the outer cylindrical surfaces of the four groups of guide cylinders (2) are fixedly connected to a guide platform (3), the middle of the guide platform (3) is fixedly connected to a hydraulic column (4), the lower surface of the guide platform (3) is fixedly connected to one end of four uniformly distributed buffer columns (5), the middle of the lower surface of the guide platform (3) is movably sleeved with one end of four first springs (6) uniformly distributed and located on the outer edges of the four buffer columns (5), the first springs (6) are movably sleeved with the outer cylindrical surfaces of the buffer columns (5), the other end of the first springs (6) is fixedly connected to a buffer plate (7), the other end of the buffer column (5) is fixedly connected to the upper surface of the buffer plate (7), one end of the outer cylindrical surface of the hydraulic column (4) is fixedly connected to a top plate (8), and one end of the outer cylindrical surface of the hydraulic column (4) is fixedly connected to an oil outlet (9), characterized in that: The inner bottom surface of the base (1) is fixedly connected to a bottom plate (101), and the upper surface of the bottom plate (101) is provided with a resonance mechanism fixedly connected thereto; one end of the oil outlet (9) is fixedly connected to a vane pump (10); one end of the vane pump (10) is movably sleeved with the outer cylindrical surface of the output shaft of the motor (11); the output shaft end of the motor (11) is fixedly connected to a first gear (12); a rotor (13) is placed inside the vane pump (10); one side of the rotor (13) is movably sleeved with three evenly distributed fixing rods (14); one end of the three groups of fixing rods (14) is fixedly connected to three second gears (15); The resonance mechanism comprises a circular ring block (102), the upper surface of the base plate (101) is fixedly connected to the lower surface of the circular ring block (102), the upper surface of the base plate (101) is fixedly connected to one end of two second springs (103) located inside the circular ring block (102), the other ends of the two groups of second springs (103) are fixedly connected to a mold table (19), the lower surface of the mold table (19) is fixedly connected to a circular ring column (104), the inner side of the circular ring column (104) is movably connected to the second spring (103), the lower surface of the base plate (101) is fixedly connected to one end of a hydraulic rod (105), and the other end of the hydraulic rod (105) is fixedly connected to the lower surface of the mold table (19); Two vertical plates (20) are fixedly connected to the upper surface of the bottom plate (101); a first rotating rod (21), a second rotating rod (22), and a third rotating rod (23) are movably sleeved on one side of the vertical plate (20); one end of the outer circular surface of the first rotating rod (21) is fixedly connected to a first linkage block (24); one end of the outer circular surface of the second rotating rod (22) is fixedly connected to a second linkage block (25); and one end of the outer circular surface of the third rotating rod (23) is fixedly connected to a third linkage block (26); One end of the first linkage block (24) is fixedly connected to one end of a third spring (27), the other end of the first linkage block (24) is fixedly connected to one end of a fourth spring (28), the other end of the third spring (27) is fixedly connected to one side of the second linkage block (25), and the other end of the fourth spring (28) is fixedly connected to one side of the third linkage block (26).
2. A forging forming processing device according to claim 1, characterized in that: An oil suction port (16) is provided on the upper surface of the vane pump (10), a plurality of sliding grooves are provided on the outer edge of the rotor (13), and vanes (17) are movably sleeved on the inner sides of the sliding grooves. One end of a circular rack (18) is fixedly connected to the inner wall of the vane pump (10), the first gear (12) is meshed with three second gears (15), and the outer edges of the three groups of second gears (15) are meshed with the inner tooth surfaces of the circular rack (18).
3. A forging forming processing device according to claim 2, characterized in that: The outer cylindrical surface of the annular column (104) is provided with two triangular notches, the outer edge of the third linkage block (26) is adapted to the notches on the cylindrical surface of the annular column (104), and the outer edge of the second linkage block (25) is adapted to the outer edge of the third linkage block (26).
4. A forging forming processing device according to claim 3, characterized in that: The lower surface of the guide platform (3) is fixedly connected with two evenly distributed linkage columns (29); the lower end protrusion of the first linkage block (24) is an isosceles trapezoidal prism; when the linkage column (29) descends to a certain position, it acts on the inclined surface of the isosceles trapezoidal prism; the upper end protrusion of the first linkage block (24) is a rectangular parallelepiped; when the first linkage block (24) rotates, it acts on one end of the second linkage block (25).
Citation Information
Patent Citations
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