Novel driving mechanism machine head reciprocating glass fiber drawing machine
By adopting a driving mode combining a reciprocating linear motor and an external rotor motor in a glass fiber drawing machine, the driving structure is simplified, uniform winding of the yarn is achieved, the volume of the drawing machine is reduced, and production efficiency and safety are improved.
Patent Information
- Application Number
- CN202422960088.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-02
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2034-12-02
AI Technical Summary
The existing glass fiber drawing machine has a complex driving mechanism structure, occupies a large space, and the transmission structure is not simple and reliable enough.
The drive method adopts a combination of reciprocating linear motor and outer rotor motor. The linear reciprocating motion and rotation are realized through the main shaft impeller mechanism. The arrangement mechanism only performs lateral movement, which simplifies the drive structure and reduces the occupied space.
The drive mechanism is simplified and safer, the yarn is wound evenly, the volume of the wire drawing machine is reduced, and the yarn quality and production efficiency are improved.
Smart Images

Figure CN223433391U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass fiber drawing machine technical field, in particular to a new type drive mechanism machine head reciprocating glass fiber drawing machine. BACKGROUND
[0002] Glass fiber drawing machine is a kind of mechanical equipment that high-speed glass melt is drawn into fiber and is wound into fiber roll according to certain rule.
[0003] Mainly through yoke mechanism to drive spindle mechanism and impeller mechanism reciprocating motion when drawing, the spindle of spindle mechanism rotates through external motor drive and impeller, and the glass fiber yarn is wound on the impeller on the bobbin by the transverse movement of cooperation arrangement mechanism, but the reciprocating motion of yoke mechanism and the transverse movement of arrangement mechanism are mainly driven by motor screw and slide rail at present, when drawing is completed, the overturning mechanism is driven by motor and speed reducer to cooperate with pulley and synchronous belt, so that the structure of driving mechanism is complex, and a large space is needed. UTILITY MODEL CONTENT
[0004] In order to solve the above problems, the utility model provides a new type drive mechanism machine head reciprocating glass fiber drawing machine.
[0005] The above technical purpose of the utility model is realized by the following technical scheme: a new type drive mechanism machine head reciprocating glass fiber drawing machine, including rack, the rack is provided with base plate, spindle impeller mechanism, blocking mechanism, overturning mechanism, arrangement mechanism, the overturning mechanism includes rotary disc rotatably arranged on base plate, the spindle impeller mechanism includes spindle slidably arranged in rotary disc and shaft core fixedly arranged on the inner side of rotary disc, the inner wall of the one end of shaft core away from rotary disc is provided with first step groove, the first step groove is fixedly provided with reciprocating linear motor stator, the spindle is fixedly provided with reciprocating linear motor rotor on the shaft of rotary disc inner side, the reciprocating linear motor rotor makes linear reciprocating motion relative to reciprocating linear motor stator, the one end of shaft core away from rotary disc is also provided with support sleeve, the inner wall of support sleeve near shaft core one end is provided with second step groove, the inner diameter of second step groove is consistent with the inner diameter of shaft core, the outer end of spindle is provided with outer rotor motor, the outer rotor motor is provided with impeller.
[0006] By adopting the technical scheme, the spindle impeller mechanism is provided with the shaft center tube, the first step groove, the linear motor stator, the linear motor rotor, the support sleeve, and the second step groove. Through the cooperation of the reciprocating linear motor stator and the reciprocating linear motor rotor, the spindle can perform linear reciprocating motion in the shaft center tube. When performing the drawing operation, the spindle drives the impeller to perform linear reciprocating motion, and the outer rotor motor drives the impeller to perform rotating motion. The arrangement mechanism only needs to perform horizontal motion. In this way, while the impeller itself performs reciprocating motion and rotation, the yarn is uniformly wound on the yarn tube. The driving mechanism is simple, safe and reliable, occupies small space, and greatly reduces the volume of the drawing machine.
[0007] Further, the outer rotor motor includes a motor housing, an outer rotor, and an inner stator. Two rotating bearings are arranged on the shaft of the spindle at intervals. The inner wall of the motor housing is fixedly connected to the outer rings of the two rotating bearings. The outer rotor is connected to the inner wall between the two rotating bearings of the motor housing. The inner stator is arranged on the shaft of the spindle between the two rotating bearings.
[0008] By adopting the above technical scheme, the rotating bearing, the motor housing, the outer rotor, and the inner stator are arranged. The motor housing and the impeller are driven to rotate by the outer rotor motor.
[0009] Further, the turnover mechanism is arranged on the support seat in the rack. The support seat is provided with a support bearing. A support shaft is arranged between the support seat and the turntable. One end of the support shaft is rotatably arranged in the support bearing, and the other end is fixedly connected to the middle part of the turntable. An annular arc-shaped motor rotor is arranged on the outer edge of the turntable. An arc-shaped arc-shaped motor stator is arranged on the substrate near the turntable.
[0010] By adopting the above technical scheme, the support seat, the support bearing, and the support shaft are arranged to support the inner side of the turntable. The arc-shaped motor rotor and the arc-shaped motor stator are arranged. The turntable is driven to rotate by the cooperation of the arc-shaped motor rotor and the arc-shaped motor stator. The driving structure is simple, the transmission structure is reduced, and the safety is reliable.
[0011] Further, the arrangement mechanism includes a hanging bracket arranged in the rack. The hanging bracket is provided with a precision adjustment mechanism, a horizontal movement mechanism, and a wire arranging mechanism. The precision adjustment mechanism is used to adjust the height of the horizontal movement mechanism and the wire arranging mechanism. The horizontal movement mechanism is used to drive the horizontal movement of the wire arranging mechanism seat. The wire arranging mechanism is used to arrange the yarn.
[0012] By adopting the above technical scheme, the precision adjustment mechanism, the horizontal movement mechanism, and the wire arranging mechanism are arranged to adjust the wire arranging mechanism.
[0013] Further, the precision adjusting mechanism comprises a suspension bottom plate arranged on the suspension support, a lifting plate is arranged below the suspension bottom plate, a plurality of guide sleeves are arranged on the suspension bottom plate, guide columns are arranged in the guide sleeves, the bottom parts of the guide columns are connected with the lifting plate, and two lifting machine groups are further arranged on the suspension bottom plate, the two lifting machine groups are connected through a connecting shaft, and lifting rods in the lifting machine groups extend downward through the suspension bottom plate and are connected with the lifting plate at the lower ends.
[0014] By adopting the above technical scheme, the suspension bottom plate, the lifting plate, the guide sleeve, the guide column, the lifting machine group and the connecting shaft are arranged, so that the lifting plate can be adjusted in lifting.
[0015] Further, two slide rails are arranged at the bottom surface of the lifting plate at intervals, the length direction of the slide rails is perpendicular to the length direction of the main shaft, the transverse moving mechanism comprises a transverse moving plate, a sliding block is arranged on the top surface of the transverse moving plate corresponding to the slide rails, the sliding block and the slide rails form a sliding fit, a transverse moving linear motor stator is arranged on the bottom surface of the lifting plate between the two slide rails, a transverse moving linear motor rotor is arranged on the top surface of the transverse moving plate correspondingly, and the movement direction of the transverse moving linear motor rotor relative to the transverse moving linear motor stator is consistent with the length direction of the slide rails.
[0016] By adopting the above technical scheme, the transverse moving plate, the sliding block, the transverse moving linear motor stator and the transverse moving linear motor rotor are arranged, the transverse moving plate is driven to move transversely through the cooperation of the transverse moving linear motor stator and the transverse moving linear motor rotor, and the driving structure is simple, safe and reliable.
[0017] Further, the wire arranging mechanism comprises two mounting seats arranged on the bottom surface of the transverse moving plate, hollow transverse moving shafts are arranged on the two mounting seats, a wire arranging motor is arranged on the inner end of the transverse moving shaft through a connecting seat, a crank arm is arranged at the front end, a wire arranging shaft is rotatably arranged on the crank arm and has the same core as the transverse moving shaft, a retaining shaft is arranged at the end of the crank arm away from the wire arranging shaft, a swing plate is arranged at the front end of the retaining shaft and connected with the wire arranging shaft, a fixed plate is further arranged on the retaining shaft, one end of the fixed plate away from the retaining shaft is connected with the wire arranging shaft, a transmission shaft is rotatably arranged in the transverse moving shaft, one end of the transmission shaft is connected with the output shaft of the wire arranging motor, and the other end is connected with the wire arranging shaft.
[0018] By adopting the above technical scheme, the mounting seat, the transverse moving shaft, the wire arranging motor, the crank arm, the wire arranging shaft, the retaining shaft, the swing plate, the fixed plate and the transmission shaft are arranged, the wire arranging shaft is driven to rotate through the wire arranging motor and the transmission shaft, and the wire arranging is facilitated.
[0019] In summary, the utility model has the following beneficial effects: in the application, through setting up the axle core tube, first step groove, linear motor stator, linear motor mobile, support sleeve, second step groove, through the cooperation of reciprocating linear motor stator and reciprocating linear motor mobile, the main shaft can be in the linear reciprocating motion in the axle core tube, so when carrying out the wire drawing operation, the impeller is driven by the main shaft to carry out the linear reciprocating motion, then the impeller is driven by the outer rotor motor to carry out the rotating action, and the arrangement mechanism only needs to carry out the horizontal movement, so that the yarn is uniformly wound on the yarn drum while the impeller is reciprocated and rotated, the driving mechanism is simple, safe and reliable, the occupied space is small, and the volume of the wire drawing machine is greatly reduced. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is the whole structure schematic diagram of the embodiment of the utility model;
[0021] Figure 2 It is the cross section structure schematic diagram of the embodiment of the utility model;
[0022] Figure 3 It is the cross section structure schematic diagram of the main shaft impeller structure of the embodiment of the utility model;
[0023] Figure 4 It is the structure schematic diagram of the turnover mechanism of the embodiment of the utility model;
[0024] Figure 5 It is the structure schematic diagram of the arrangement mechanism of the embodiment of the utility model;
[0025] Figure 6 It is the structure schematic diagram of the accurate adjusting mechanism of the embodiment of the utility model.
[0026] In the figure: 10, frame; 11, base plate; 20, spindle impeller mechanism; 21, spindle; 22, shaft core; 221, first step groove; 23, reciprocating linear motor stator; 24, reciprocating linear motor mover; 25, support sleeve; 251, second step groove; 26, outer rotor motor; 261, motor housing; 262, outer rotor; 263, inner stator; 27, impeller; 28, rotating bearing; 30, wire blocking mechanism; 40, turning mechanism; 41, turntable; 42, support seat; 43, support bearing; 44, support shaft; 45, arc motor rotor; 46, arc motor stator; 5 0. Arrangement mechanism; 51. Suspension bracket; 52. Precision adjustment mechanism; 521. Suspension base plate; 522. Lifting plate; 523. Guide sleeve; 524. Guide column; 525. Lifting unit; 526. Connecting shaft; 527. Slide rail; 53. Transverse movement mechanism; 531. Transverse movement plate; 532. Slider; 533. Transverse linear motor stator; 534. Transverse linear motor mover; 54. Wire arrangement mechanism; 541. Mounting seat; 542. Transverse movement axis; 543. Wire arrangement motor; 544. Crank arm; 545. Wire arrangement shaft; 546. Retaining shaft; 547. Swing plate; 548. Fixed plate. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application; it is obvious that the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.
[0028] like Figures 1-6 As shown, the embodiment of the present application discloses a novel drive mechanism head reciprocating glass fiber drawing machine, including a frame 10, on which a base plate 11, a main shaft impeller mechanism 20, a wire blocking mechanism 30, a turning mechanism 40, and an arrangement mechanism 50 are provided.
[0029] Specifically, the turning mechanism 40 includes a turntable 41, a support base 42, and a support shaft 44. The turntable 41 is rotatably mounted on the base plate 11, the support base 42 is disposed within the frame 10, and a support bearing 43 is disposed on the support base 42. One end of the support shaft 44 is rotatably mounted within the support bearing 43, and the other end is fixedly connected to the middle of the turntable 41, thereby supporting the inner side of the turntable 41 and ensuring the stability of the turntable 41 when rotating on the base plate 11. An annular arc-shaped motor rotor 45 is disposed on the outer edge of the turntable 41, and an arc-shaped arc-shaped motor stator 46 is disposed on the base plate 11 near the turntable 41. The turntable 41 can be rotated by the cooperation of the arc-shaped motor stator 46 and the arc-shaped motor rotor 45. The driving structure is simple and does not require additional transmission components, making the overall structure safe and reliable.
[0030] The spindle impeller mechanism 20 comprises a spindle 21 horizontally slidingly arranged in the rotating disc 41, an axial cylinder 22 fixedly arranged inside the rotating disc 41, a first stepped groove 221 arranged on the inner wall of the end of the axial cylinder 22 away from the rotating disc 41, a reciprocating linear motor stator 23 fixedly arranged in the first stepped groove 221, the reciprocating linear motor stator 23 being annular in shape and having a thickness consistent with the axial depth of the first stepped groove 221, i.e. the inner diameter of the reciprocating linear motor stator 23 is consistent with the inner diameter of the axial cylinder 22. A support sleeve 25 is further arranged at the end of the axial cylinder 22 away from the rotating disc 41, a second stepped groove 251 is arranged on the inner wall of the end of the support sleeve 25 adjacent to the axial cylinder 22, and the inner diameter of the second stepped groove 251 is consistent with the inner diameter of the axial cylinder 22, so that the end of the support sleeve 25 can limit the reciprocating linear motor stator 23. Meanwhile, the second stepped groove 251 and the inner wall of the axial cylinder 22 cooperate to form an annular groove. A reciprocating linear motor rotor 24 is fixedly sleeved on the spindle 21 inside the rotating disc 41, and the reciprocating linear motor rotor 24 is located in the annular groove, so that the reciprocating linear motor rotor 24 performs linear reciprocating motion relative to the reciprocating linear motor stator 23 under the cooperation of the reciprocating linear motor stator 23 and the reciprocating linear motor rotor 24, and is limited in the second stepped groove 251 and the axial cylinder 22, thereby driving the spindle 21 to perform reciprocating motion.
[0031] An outer rotor motor 26 is arranged on the spindle 21 at the outer end, and an impeller 27 is arranged on the outer rotor motor 26. Specifically, the outer rotor motor 26 comprises a motor shell 261, an outer rotor 262 and an inner stator 263, two rotating bearings 28 are arranged on the spindle 21 at the outer end, the inner wall of the motor shell 261 is fixedly connected to the outer rings of the two rotating bearings 28, and the outer wall of the motor shell 261 is connected with the impeller 27. The outer rotor 262 is connected with the inner wall of the motor shell 261 between the two rotating bearings 28, and the inner stator 263 is arranged on the spindle 21 between the two rotating bearings 28. The motor shell 261 rotates relative to the spindle 21 through the outer rotor 262 and the inner stator 263, thereby driving the impeller 27 to rotate.
[0032] When drawing, the rotation of the impeller 27 can wind the yarn on the yarn cylinder, and the reciprocating motion of the spindle 21 drives the impeller 27 and the yarn cylinder thereon to reciprocate, so that the yarn is uniformly wound on the yarn cylinder. After the drawing is completed, the thickness of the yarn roll product is uniform, and the quality of the yarn roll is high. In addition, the driving mechanism is simple, safe and reliable, and occupies small space, greatly reducing the volume of the drawing machine.
[0033] The arrangement mechanism 50 comprises a hanging support 51 arranged in the rack 10, and the hanging support 51 is provided with a precision adjusting mechanism 52, a transverse moving mechanism 53 and a wire arranging mechanism 54.
[0034] When arranged, the precision adjusting mechanism 52 comprises a hanging bottom plate 521 arranged on the hanging support 51, and one side of the hanging bottom plate 521 is provided with an L-shaped support plate, and the other side is provided with a support column, one side of the L-shaped support plate is fixedly connected with the hanging bottom plate 521 through a bolt, and the other side is fixedly connected with the hanging support 51 through a bolt, and the top of the support column is used to be connected with the rack 10, so as to ensure that the hanging bottom plate 521 is in a horizontal state.
[0035] A lifting plate 522 is arranged below the hanging bottom plate 521, and specifically, a plurality of guide sleeves 523 are arranged on the hanging bottom plate 521, a guide column 524 is arranged in each guide sleeve 523, and the bottoms of the guide columns 524 are connected with the lifting plate 522, so that the lifting plate 522 can move up and down relative to the hanging bottom plate 521. Two lifting machine groups 525 are further arranged on the hanging bottom plate 521, and the two lifting machine groups 525 are connected through a connecting shaft 526 and can realize linkage. The lifting rods in the lifting machine groups 525 extend downward through the hanging bottom plate 521 and are connected with the lifting plate 522 at the lower ends, so as to control the lifting plate 522 to lift and lower. Two slide rails 527 are arranged at the bottom surface of the lifting plate 522 in a spaced manner, and the length direction of the slide rails 527 is perpendicular to the length direction of the main shaft 21.
[0036] The transverse moving mechanism 53 comprises a transverse moving plate 531, and the top surface of the transverse moving plate 531 is provided with a sliding block 532 corresponding to the slide rails 527, and the sliding block 532 and the slide rails 527 form a sliding fit, so that the transverse moving plate 531 can move transversely relative to the lifting plate 522. A transverse moving linear motor stator 533 is arranged at the bottom surface of the lifting plate 522 between the two slide rails 527, and a transverse moving linear motor rotor 534 is arranged on the top surface of the transverse moving plate 531 in correspondence, and the movement direction of the transverse moving linear motor rotor 534 relative to the transverse moving linear motor stator 533 is consistent with the length direction of the slide rails 527. The transverse moving plate 531 slides on the slide rails 527 through the cooperation of the transverse moving linear motor stator 533 and the transverse moving linear motor rotor 534, and the driving mechanism is simple, safe and reliable.
[0037] The wire arranging mechanism 54 comprises two mounting seats 541 arranged on the bottom surface of the transverse plate 531, and a hollow transverse shaft 542 is arranged on the two mounting seats 541, the inner end of the transverse shaft 542 is provided with a wire arranging motor 543 through a connecting seat, the front end of the transverse shaft 542 is provided with a crank arm 544, the crank arm 544 is rotatably provided with a wire arranging shaft 545 with the same core as the transverse shaft 542, the end of the crank arm 544 away from the wire arranging shaft 545 is provided with a retaining shaft 546, the front end of the retaining shaft 546 is provided with a swing plate 547 connected with the front end of the wire arranging shaft 545, the middle part of the retaining shaft 546 is further provided with a fixed plate 548, the end of the fixed plate 548 away from the retaining shaft 546 is connected with the wire arranging shaft 545, the wire arranging shaft 545 is supported and reinforced through the retaining shaft 546, so that the wire arranging shaft 545 is prevented from being too long in overhanging and being deformed after long time use, and the service life of the wire arranging shaft 545 is improved. A transmission shaft (not shown in the figure) is rotatably arranged in the transverse shaft 542, one end of the transmission shaft is connected with the output shaft of the wire arranging motor 543, and the other end of the transmission shaft is connected with the wire arranging shaft 545, so that the wire arranging shaft 545 can be driven to rotate through the transmission shaft driven by the wire arranging motor 543, so that the friction between the wire arranging shaft 545 and the yarn is reduced during wire arranging.
[0038] The above only describes the preferred embodiments of the present application, and the protection scope of the present application is not limited to the above-mentioned embodiments. Any technical solution falling within the concept of the present application belongs to the protection scope of the present application. It should be noted that, for ordinary technical personnel in the technical field, some improvements and decorations without departing from the principle of the present application are also considered as the protection scope of the present application.
Claims
1. A novel drive mechanism head reciprocating glass fiber drawing machine, comprising a frame (10), on which a base plate (11), a main shaft impeller mechanism (20), a wire blocking mechanism (30), a turning mechanism (40), and an arrangement mechanism (50) are arranged, characterized in that: The turning mechanism (40) includes a turntable (41) rotatably arranged on a base plate (11); the main shaft impeller mechanism (20) includes a main shaft (21) horizontally slidably arranged in the turntable (41) and a shaft core cylinder (22) fixedly arranged on the inner side of the turntable (41); a first step groove (221) is provided on the inner wall of the shaft core cylinder (22) away from the turntable (41); a reciprocating linear motor stator (23) is fixedly arranged in the first step groove (221); a reciprocating linear motor stator (23) is fixedly sleeved on the shaft body of the main shaft (21) located on the inner side of the turntable (41); A motor mover (24) is provided. The reciprocating linear motor mover (24) performs linear reciprocating motion relative to the reciprocating linear motor stator (23). A support sleeve (25) is further provided at one end of the shaft cylinder (22) away from the turntable (41). A second step groove (251) is provided on the inner wall of the support sleeve (25) adjacent to one end of the shaft cylinder (22). The inner diameter of the second step groove (251) is consistent with the inner diameter of the shaft cylinder (22). An outer rotor motor (26) is provided at the outer end of the main shaft (21), and an impeller (27) is provided on the outer rotor motor (26).
2. A novel drive mechanism head reciprocating glass fiber drawing machine according to claim 1, characterized in that: The outer rotor motor (26) comprises a motor housing (261), an outer rotor (262) and an inner stator (263); two rotating bearings (28) are arranged on the shaft body at the outer end of the main shaft (21) at intervals; the inner wall of the motor housing (261) is fixedly connected to the outer rings of the two rotating bearings (28); the outer rotor (262) is connected to the inner wall of the motor housing (261) located between the two rotating bearings (28); and the inner stator (263) is arranged on the shaft body of the main shaft (21) located between the two rotating bearings (28).
3. A novel drive mechanism head reciprocating glass fiber drawing machine according to claim 1, characterized in that: The turning mechanism (40) is arranged on a support seat (42) in the frame (10), a support bearing (43) is arranged on the support seat (42), a support shaft (44) is arranged between the support seat (42) and the turntable (41), one end of the support shaft (44) is rotatably arranged in the support bearing (43), and the other end is fixedly connected to the middle of the turntable (41), an annular arc-shaped motor rotor (45) is arranged on the outer edge of the turntable (41), and an arc-shaped arc-shaped motor stator (46) is arranged on the base plate (11) near the turntable (41).
4. A novel drive mechanism head reciprocating glass fiber drawing machine according to claim 1, characterized in that: The arrangement mechanism (50) comprises a suspension bracket (51) arranged in a frame (10); a precision adjustment mechanism (52), a transverse movement mechanism (53) and a wire arrangement mechanism (54) are arranged on the suspension bracket (51); the precision adjustment mechanism (52) is used to adjust the height of the transverse movement mechanism (53) and the wire arrangement mechanism (54); the transverse movement mechanism (53) is used to drive the wire arrangement mechanism (54) to move transversely; and the wire arrangement mechanism (54) is used to arrange yarn.
5. A new type of drive mechanism head reciprocating glass fiber drawing machine according to claim 4, characterized in that: The precise adjustment mechanism (52) includes a suspension base plate (521) arranged on a suspension bracket (51), a lifting plate (522) is arranged below the suspension base plate (521), a plurality of guide sleeves (523) are arranged on the suspension base plate (521), a guide column (524) is arranged in the guide sleeve (523), and the bottoms of the plurality of guide columns (524) are connected to the lifting plate (522). Two lifting groups (525) are also arranged on the suspension base plate (521), and the two lifting groups (525) are connected by a connecting shaft (526). The lifting rod in the lifting group (525) passes through the suspension base plate (521) and extends downward, and the lower end is connected to the lifting plate (522).
6. A new type of drive mechanism head reciprocating glass fiber drawing machine according to claim 5, characterized in that: Two slide rails (527) are arranged at intervals on the bottom surface of the lifting plate (522), and the length direction of the slide rails (527) is perpendicular to the length direction of the main shaft (21). The transverse movement mechanism (53) includes a transverse movement plate (531), and a slider (532) is arranged on the top surface of the transverse movement plate (531) corresponding to the slide rail (527). The slider (532) and the slide rail (527) form a sliding fit. The bottom surface of the lifting plate (522) is provided with a transverse movement linear motor stator (533) located between the two slide rails (527), and the top surface of the transverse movement plate (531) is provided with a transverse movement linear motor mover (534), and the movement direction of the transverse movement linear motor mover (534) relative to the transverse movement linear motor stator (533) is consistent with the length direction of the slide rail (527).
7. A new type of drive mechanism head reciprocating glass fiber drawing machine according to claim 6, characterized in that: The wire arrangement mechanism (54) includes two mounting seats (541) arranged on the bottom surface of the transverse plate (531), and a hollow transverse shaft (542) is arranged on the two mounting seats (541). The inner end of the transverse shaft (542) is provided with a wire arrangement motor (543) through a connecting seat, and the front end is provided with a crank arm (544). A wire arrangement shaft (545) coaxial with the transverse shaft (542) is rotatably provided on the crank arm (544), and the end of the crank arm (544) away from the wire arrangement shaft (545) is provided with a A retaining shaft (546) is provided, and a swing plate (547) is provided at the front end of the retaining shaft (546) and is connected to the front end of the cable traversing shaft (545). A fixing plate (548) is also provided in the middle of the retaining shaft (546), and one end of the fixing plate (548) away from the retaining shaft (546) is connected to the cable traversing shaft (545). A transmission shaft is rotatably provided in the transverse shaft (542), and one end of the transmission shaft is connected to the output shaft of the cable traversing motor (543), and the other end is connected to the cable traversing shaft (545).