Spinning device
By designing a combination of spherical shell, beveled tube and bent tube in the spinning device, combined with the combination of heat-sensitive plate and driving components, the problems of low heat dissipation and heat gas recovery efficiency in the prior art are solved, and efficient hot gas recovery and stable spinning molding are achieved.
Patent Information
- Application Number
- CN202510279720.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2025-06-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing electrospinning device loses heat during auxiliary airflow transmission, affecting the raw materials and spinning molding state of the barrel, and the hot gas recovery efficiency is not high, resulting in an increase in processing costs.
A spinning device is designed, including a spinning mechanism body, a heat insulation hose, a heat recovery mechanism, a heat discharge mechanism and a shielding mechanism. The spherical shell wraps around the spinning around the nozzle, and uses the beveled tube and the bent tube to cooperate with each other to guide the hot gas for recycling, and use it in conjunction with the heat-sensitive plate and the driving component to ensure that the hot gas does not enter the spinning mechanism body.
It effectively improves the recovery efficiency of hot air flow, reduces heat loss, reduces processing costs, and ensures the stability of spinning molding.
Smart Images

Figure CN120119348A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of spinning, in particular to a spinning device. Background Art
[0002] The Chinese patent with the publication number CN116516502A discloses an electrostatic spinning device, including a spinning mechanism body and a shell sleeved on the outside of the spinning mechanism body, a heat supply mechanism is arranged on the outside of the shell, and the heat supply mechanism includes a connecting block, the body of the connecting block is provided with a through main channel, the outer surface of the connecting block is provided with an auxiliary channel, the inside of the auxiliary channel is connected to the inside of the main channel, the inside of the main channel is connected with a heat pipe, the outer surface of the heat pipe is fixedly connected to the body of the shell, the inside of the auxiliary channel is provided with a reversing component, and the outside of the connecting block is provided with an air intake pipe. The problem that the existing electrostatic spinning device is produced, on the one hand, heat is lost during the transmission of the auxiliary airflow, thereby affecting the state of the raw materials inside the barrel and the spinning forming, and at the same time, the auxiliary airflow is not effectively recycled after being ejected, resulting in increased heat energy loss, thereby increasing the processing cost. However, the existing device has defects when in use. Since there is no shielding measure around the spinning nozzle, the hot air sprayed to the spinning diffuses to the surroundings, and the effect of absorbing the hot air there through the suction pipe for reuse is not ideal, resulting in low recovery efficiency of the hot air flow. Summary of the invention
[0003] The present invention aims to solve the technical problems existing in the prior art; for this purpose, the present invention proposes a spinning device.
[0004] The purpose of the present invention can be achieved through the following technical solutions:
[0005] The spinning device comprises a spinning mechanism body and a heat-insulating hose arranged on the spinning mechanism body. A heat-sensitive plate is arranged on the spinning mechanism body, and a fixing frame is fixedly connected to the outside of the spinning mechanism body.
[0006] The heat recovery mechanism is arranged between the fixing frame and the spinning mechanism body, and is used for recycling heat.
[0007] The heat dissipation mechanism is arranged on the heat recovery mechanism, and is used for dissipating heat.
[0008] The shielding mechanism is arranged between the heat recovery mechanism and the heat dissipation mechanism, and the shielding mechanism prevents heat from entering into the thermal insulation hose.
[0009] As a further solution of the present invention: the heat recovery mechanism includes a spherical shell detachably connected to the outside of the spinning mechanism body, a driving assembly arranged on a fixed frame, and a bent pipe rotatably connected to the insulation hose, a bevel pipe is fixedly connected to the spherical shell, one end of the bend pipe is arranged in a bevel shape for use with the bevel pipe, and the bend pipe is connected to the driving assembly through a transmission member.
[0010] As a further solution of the present invention: the driving assembly includes a sleeve fixedly connected to the fixed frame, the outer surface of the sleeve is penetrated by a sliding groove, an airbag is arranged in the sleeve, a push plate is arranged on the airbag, a push strip is rotatably connected to the push plate, a bent rod is rotatably connected to the push strip, and the bent rod is slidably connected to the fixed frame.
[0011] As a further solution of the present invention: the transmission member includes a first gear fixedly connected to the bent pipe, and a first rack fixedly connected to the bent rod, and the first rack is meshed with the first gear.
[0012] As a further solution of the present invention: the heat exhaust mechanism includes a heat exhaust pipe fixedly connected to the spherical shell, and a connecting arm fixedly connected to the push plate, the connecting arm is fixedly connected to a connecting frame, and the connecting frame is fixedly connected to a cover plate for shielding the end of the heat exhaust pipe.
[0013] As a further solution of the present invention: a through hole is formed through the bottom of the spherical shell.
[0014] As a further solution of the present invention: the shielding mechanism includes a connecting rod fixedly connected to a connecting frame, the connecting rod is rotatably connected to a rotating shaft, the rotating shaft is fixedly connected to a baffle for shielding the end of the bevel tube, and a rotating assembly is arranged between the rotating shaft and the connecting frame.
[0015] As a further solution of the present invention: the rotating assembly includes a second gear fixedly connected to the rotating shaft, and a folding rod fixedly connected to the connecting frame, and the folding rod is fixedly connected to a second rack meshing with the second gear.
[0016] As a further solution of the present invention: three heat exhaust pipes are provided, and the connecting frame is provided in an isosceles triangle structure.
[0017] As a further solution of the present invention: the opening of the heat exhaust pipe is arranged upward, and the heat exhaust pipe is located above the inclined pipe.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. The present application utilizes a spherical shell to wrap around the spinning nozzle, so that the hot air sprayed to the spinning is restricted at the first time and will not diffuse to the surrounding immediately. At the same time, the inclined pipe and the bent pipe are attached to each other and the hot air is guided, so that a large amount of hot air can be recovered and reused, thereby improving the recovery efficiency of the hot air flow.
[0020] 2. The present application sets up a heat dissipation mechanism. When the temperature needs to be lowered after spinning, the temperature near the spinning is monitored by a heat-sensitive plate when the temperature is too high, and is used in conjunction with a driving component. The driving component separates the bent pipe from the inclined pipe to prevent hot air from entering the spinning mechanism body. At the same time, the cover plate moves with the driving component and is removed from the heat dissipation pipe, accelerating the dissipation of heat inside the spherical shell. When the temperature near the spinning is stable, the inclined pipe and the bent pipe are fitted together so that no hot air with excessively high temperature can enter the spinning mechanism body, which is beneficial to spinning.
[0021] 3. The present application sets up a shielding mechanism. When cooling is required after spinning, not only the inclined tube and the bent tube will be separated from each other, but the baffle will also shield the inclined tube to prevent hot air from flowing out of the inclined tube, thereby avoiding hot air from entering the bent tube, which is beneficial to spinning. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a first perspective stereogram of the present invention;
[0023] Figure 2 It is a second viewing angle stereogram of the present invention;
[0024] Figure 3 This is a three-dimensional cross-sectional view of the present invention after removing part of the structure;
[0025] Figure 4 A three-dimensional diagram of the driving assembly and the shielding mechanism of the present invention;
[0026] Figure 5 is a three-dimensional diagram of the spherical shell of the present invention;
[0027] Figure 6 It is a three-dimensional cross-sectional view of the sleeve of the present invention.
[0028] In the figure: 1. spinning mechanism body; 2. heat-insulating hose; 3. heat-sensitive plate; 4. fixing frame; 5. heat recovery mechanism; 51. spherical shell; 52. driving assembly; 521. sleeve; 522. slide groove; 523. air bag; 524. push plate; 525. push bar; 526. bending rod; 53. inclined tube; 54. bending tube; 55. transmission member; 551. first gear; 552. first rack; 6. heat dissipation mechanism; 61. heat dissipation pipe; 62. connecting arm; 63. connecting frame; 64. cover plate; 7. shielding mechanism; 71. connecting rod; 72. rotating shaft; 73. baffle; 74. rotating assembly; 741. second gear; 742. folding rod; 743. second rack; 8. through hole. DETAILED DESCRIPTION
[0029] The technical solution of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0030] Embodiment 1
[0031] See also Figure 1-Figure 6 As shown, the present application provides a spinning device, including a spinning mechanism body 1 and a heat-insulating hose 2 arranged on the spinning mechanism body 1, a heat-sensitive plate 3 is arranged on the spinning mechanism body 1, and a fixing frame 4 is fixedly connected to the outside of the spinning mechanism body 1; the spinning mechanism body 1, the heat-insulating hose 2 and the heat-sensitive plate 3 are all disclosed in the patent document with publication number CN116516502A.
[0032] A heat recovery mechanism 5 is arranged between the fixing frame 4 and the spinning mechanism body 1, and the heat recovery mechanism 5 is used to recycle heat;
[0033] A heat dissipation mechanism 6 is provided on the heat recovery mechanism 5, and the heat dissipation mechanism 6 is used to discharge heat;
[0034] The shielding mechanism 7 is arranged between the heat recovery mechanism 5 and the heat dissipation mechanism 6 , and the shielding mechanism 7 prevents heat from entering into the thermal insulation hose 2 .
[0035] The heat recovery mechanism 5 includes a spherical shell 51 detachably connected to the outside of the spinning mechanism body 1, a driving assembly 52 arranged on the fixed frame 4, and a bend pipe 54 rotatably connected to the heat-insulating hose 2, a bevel pipe 53 is fixedly connected to the spherical shell 51, one end of the bend pipe 54 is arranged in a bevel shape for use with the bevel pipe 53, and the bend pipe 54 is connected to the driving assembly 52 through a transmission member 55. By using the spherical shell 51 to wrap around the spinning at the nozzle, the hot air sprayed to the spinning is restricted at the first time, and when the hot air is sprayed from the nozzle, it will not immediately diffuse to the surroundings. The bevel pipe 53 and the bend pipe 54 are attached to each other, and under the action of the existing heating fan, the bevel pipe 53 and the bend pipe 54 guide the hot air, so that a large amount of hot air can be recycled and reused, thereby improving the recovery efficiency of the hot air flow.
[0036] The driving assembly 52 includes a sleeve 521 fixedly connected to the fixed frame 4, and a slide groove 522 is penetrated through the outer surface of the sleeve 521. An airbag 523 is arranged in the sleeve 521. The airbag 523 has been disclosed in the patent document with publication number CN116516502A. A push plate 524 is arranged on the airbag 523, and a push bar 525 is rotatably connected to the push plate 524. A bent rod 526 is rotatably connected to the push bar 525, and the bent rod 526 is slidably connected to the fixed frame 4.
[0037] The transmission member 55 includes a first gear 551 fixedly connected to the curved tube 54, and a first rack 552 fixedly connected to the curved rod 526, and the first rack 552 is meshed with the first gear 551. When the temperature needs to be lowered after spinning, when the temperature is too high, the temperature near the spinning is monitored by the heat-sensitive plate 3, the internal resistance of the heat-sensitive plate 3 changes, and an electrical signal is formed by the current change. At the same time, the heat-conducting plate conducts heat, thereby heating the active gas inside the airbag 523. The airbag 523 expands and pushes the push plate 524 to slide inside the sleeve 521, thereby driving the curved rod 526 to move through the push bar 525, and then driving the first rack 552 to move. The meshing transmission between the first rack 552 and the first gear 551 drives the curved tube 54 to rotate on the thermal insulation hose 2, so that the curved tube 54 is away from the inclined tube 53.
[0038] A through hole 8 is formed through the bottom of the spherical shell 51 .
[0039] Embodiment 2
[0040] Based on Example 1, see Figure 1-Figure 6 shown.
[0041] The heat dissipation mechanism 6 includes a heat dissipation pipe 61 fixedly connected to the spherical shell 51, and a connecting arm 62 fixedly connected to the push plate 524, a connecting frame 63 fixedly connected to the connecting arm 62, and a cover plate 64 fixedly connected to the connecting frame 63 for shielding the end of the heat dissipation pipe 61. When the airbag 523 expands in shape, the movement of the push plate 524 will also drive the movement of the connecting arm 62, and then drive the movement of the cover plate 64 through the connecting frame 63, so that the cover plate 64 is removed from the heat dissipation pipe 61, accelerating the dissipation of the heat inside the spherical shell 51. When the temperature near the spinning is stable, the airbag 523 shrinks, so that the cover plate 64 covers the heat dissipation pipe 61, and the bend pipe 54 fits with the bevel pipe 53. Since there is no large amount of hot air with excessive temperature in the spherical shell 51, after the bevel pipe 53 fits with the bend pipe 54, no hot air with excessive temperature will enter the spinning mechanism body 1, which is conducive to spinning molding.
[0042] The number of heat exhaust pipes 61 is three, and the connecting frame 63 is arranged in an isosceles triangle structure.
[0043] The opening of the heat exhaust pipe 61 is arranged upward, and the heat exhaust pipe 61 is located above the inclined pipe 53 .
[0044] Embodiment 3
[0045] Based on Example 1, see Figure 2 and Figure 4 shown.
[0046] The shielding mechanism 7 includes a connecting rod 71 fixedly connected to the connecting frame 63, a rotating shaft 72 is rotatably connected to the connecting rod 71, a baffle 73 for shielding the end of the inclined tube 53 is fixedly connected to the rotating shaft 72, and a rotating assembly 74 is provided between the rotating shaft 72 and the connecting frame 63.
[0047] The rotating assembly 74 includes a second gear 741 fixedly connected to the rotating shaft 72 and a folding rod 742 fixedly connected to the connecting frame 63 . A second rack 743 meshing with the second gear 741 is fixedly connected to the folding rod 742 . When the airbag 523 expands in shape, the movement of the push plate 524 will also drive the connecting arm 62 to move, and then drive the folding rod 742 to move through the connecting frame 63, and the movement of the folding rod 742 drives the second rack 743 to move, and the meshing transmission between the second rack 743 and the second gear 741 drives the rotating shaft 72 to rotate, thereby driving the baffle 73 to rotate, so that the baffle 73 blocks the bevel tube 53, thereby preventing hot air from flowing out of the bevel tube 53 and entering the curved tube 54, so that when the temperature near the spinning is stable, the airbag 523 shrinks, the baffle 73 moves away from the bevel tube 53, and the curved tube 54 fits with the bevel tube 53. Since there is no large amount of hot air with excessively high temperature in the spherical shell 51, after the bevel tube 53 and the curved tube 54 fit together, no hot air with excessively high temperature will enter the spinning mechanism body 1, which is beneficial to spinning molding.
[0048] Embodiment 4
[0049] In combination with Embodiment 1, Embodiment 2 and Embodiment 3, see Figure 1-Figure 6 shown.
[0050] By using the spherical shell 51 to wrap around the spinning nozzle, the hot air sprayed to the spinning is restricted at the first time, so that it will not immediately diffuse to the surroundings. At the same time, the inclined pipe 53 and the curved pipe 54 are used to fit each other and guide the hot air, so that a large amount of hot air can be recovered and reused, thereby improving the recovery efficiency of the hot air flow.
[0051] The working principle of the present invention is as follows: by utilizing the spherical shell 51 to wrap around the spinning nozzle, the hot air sprayed to the spinning is restricted at the first time. When the hot air is sprayed from the nozzle, it will not immediately diffuse to the surroundings. The bevel pipe 53 and the bend pipe 54 fit each other, and under the action of the existing heating fan, the bevel pipe 53 and the bend pipe 54 guide the hot air, so that a large amount of hot air can be recovered and reused, thereby improving the recovery efficiency of the hot air flow. When the temperature needs to be lowered after spinning, in the state of over-high temperature, the temperature near the spinning is monitored by the heat-sensitive plate 3, and the internal resistance of the heat-sensitive plate 3 changes, and an electrical signal is formed by the change of current. At the same time, the heat-conducting plate conducts heat, thereby heating the active gas inside the airbag 523. The airbag 523 expands and pushes the push plate 524 to slide inside the sleeve 521, thereby driving the bending rod 526 to move through the push bar 525, and then driving the first rack 552 to move, and utilizing the meshing transmission effect between the first rack 552 and the first gear 551 to drive the bent pipe 54 to rotate on the thermal insulation hose 2, so that the bent pipe 54 is away from the inclined pipe 53. At the same time, the movement of the push plate 524 will also drive the connecting arm 62 to move, and then drive the cover plate 64 and the folding rod 742 to move through the connecting frame 63, so that The cover plate 64 is removed from the heat exhaust pipe 61 to accelerate the dissipation of heat inside the spherical shell 51, and the movement of the folding rod 742 drives the second rack 743 to move, and the meshing transmission between the second rack 743 and the second gear 741 drives the rotating shaft 72 to rotate, thereby driving the baffle 73 to rotate, so that the baffle 73 blocks the bevel tube 53, thereby preventing hot air from flowing out of the bevel tube 53 and entering the curved tube 54. When the temperature near the spinning is stable, the airbag 523 shrinks, so that the cover plate 64 covers the heat exhaust pipe 61, the baffle 73 is away from the bevel tube 53, and the curved tube 54 fits with the bevel tube 53. Since there is no large amount of hot air with excessively high temperature in the spherical shell 51, no hot air with excessively high temperature will enter the spinning mechanism body 1 after the bevel tube 53 fits with the curved tube 54, which is beneficial to spinning molding.
[0052] The above embodiments are only used to illustrate the technical method of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical method of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical method of the present invention.
Claims
1. A spinning device, comprising a spinning mechanism body (1) and a heat-insulating hose (2) arranged on the spinning mechanism body (1), wherein a heat-sensitive plate (3) is arranged on the spinning mechanism body (1), characterized in that: The outside of the spinning mechanism body (1) is fixedly connected with a fixing frame (4); A heat recovery mechanism (5) is arranged between the fixing frame (4) and the spinning mechanism body (1), and the heat recovery mechanism (5) is used to recover and utilize heat; A heat dissipation mechanism (6) is arranged on the heat recovery mechanism (5), and the heat dissipation mechanism (6) is used to discharge heat; The shielding mechanism (7) is arranged between the heat recovery mechanism (5) and the heat dissipation mechanism (6), and the shielding mechanism (7) prevents heat from entering the thermal insulation hose (2).
2. The spinning device according to claim 1, characterized in that The heat recovery mechanism (5) comprises a spherical shell (51) detachably connected to the outside of the spinning mechanism body (1), a driving assembly (52) arranged on a fixed frame (4), and a curved pipe (54) rotatably connected to the heat-insulating hose (2), the spherical shell (51) being fixedly connected to a beveled pipe (53), one end of the curved pipe (54) being arranged in a beveled shape for use with the beveled pipe (53), and the curved pipe (54) being connected to the driving assembly (52) via a transmission member (55).
3. The spinning device according to claim 2, characterized in that The driving assembly (52) comprises a sleeve (521) fixedly connected to a fixing frame (4); a sliding groove (522) is formed through the outer surface of the sleeve (521); an air bag (523) is arranged in the sleeve (521); a push plate (524) is arranged on the air bag (523); a push bar (525) is rotatably connected to the push plate (524); a bending rod (526) is rotatably connected to the pushing bar (525); and the bending rod (526) is slidably connected to the fixing frame (4).
4. The spinning device according to claim 2, characterized in that The transmission member (55) comprises a first gear (551) fixedly connected to the curved tube (54), and a first rack (552) fixedly connected to the curved rod (526), wherein the first rack (552) is meshed with the first gear (551).
5. The spinning device according to claim 3, characterized in that The heat exhaust mechanism (6) comprises a heat exhaust pipe (61) fixedly connected to the spherical shell (51), and a connecting arm (62) fixedly connected to the push plate (524), a connecting frame (63) fixedly connected to the connecting arm (62), and a cover plate (64) for shielding the end of the heat exhaust pipe (61) fixedly connected to the connecting frame (63).
6. The spinning device according to claim 2, characterized in that A through hole (8) is formed through the bottom of the spherical shell (51).
7. The spinning device according to claim 5, characterized in that The shielding mechanism (7) comprises a connecting rod (71) fixedly connected to a connecting frame (63); a rotating shaft (72) is rotatably connected to the connecting rod (71); a baffle (73) for shielding the end of the inclined tube (53) is fixedly connected to the rotating shaft (72); and a rotating assembly (74) is provided between the rotating shaft (72) and the connecting frame (63).
8. The spinning device according to claim 7, characterized in that The rotating assembly (74) comprises a second gear (741) fixedly connected to the rotating shaft (72), and a folding rod (742) fixedly connected to the connecting frame (63), wherein the folding rod (742) is fixedly connected to a second rack (743) meshing with the second gear (741).
9. The spinning device according to claim 5, characterized in that Three heat exhaust pipes (61) are provided, and the connecting frame (63) is provided in an isosceles triangle structure.
10. The spinning device according to claim 5, characterized in that The opening of the heat exhaust pipe (61) is arranged upward, and the heat exhaust pipe (61) is located above the inclined pipe (53).
Citation Information
Patent Citations
Electrostatic spinning device
CN116516502A