Structure for flexible vacuum moisture regaining technology of large-heavy-nine intelligent manufacturing silk making
By using heat dissipation components and temperature control systems in the vacuum reflux device, the problem of heat accumulation inside the device is solved, effective cooling and life extension are achieved, and manual maintenance costs are reduced through cleaning components and net cleaning components.
Patent Information
- Application Number
- CN202410349467.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-26
- Publication Date
- 2025-05-30
AI Technical Summary
When the existing vacuum reflux device is used for a long time, the heat generated by the drive system cannot be effectively exported, which increases the internal temperature, shortens the component life, reduces the device service life, and is heavy and difficult to move.
A flexible vacuum tidal reflux process structure for Dazhongjiu intelligent manufacturing wire making is designed, using a heat dissipation component and a temperature control system to derive the heat of the drive system through the heat dissipation component, and intelligently control the work of the heat dissipation component through the temperature control system to save energy.
It effectively reduces the internal temperature of the device, extends the life of the component, and improves the service life of the device. At the same time, the labor intensity of manual cleaning is reduced through cleaning components and net cleaning components, and the cost is reduced.
Smart Images

Figure CN120052572A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a structure for a vacuum conditioning process, specifically to a structure for the intelligent manufacturing of cigarette making and silk making flexible vacuum conditioning process of Dazhongjiu, belonging to the technical field of vacuum conditioning. Background Art
[0002] Generally speaking, vacuum conditioning is the first process in cigarette production. It involves sending tobacco leaves into a conditioning box, closing it, and then using a water ring pump to evacuate it to a vacuum. If the moisture content is too low, the tobacco leaves are prone to breakage and difficult to use for cigarette making. If the moisture content is too high, the tobacco leaves are likely to have no elasticity, be difficult to separate, and not easy to ignite. Therefore, vacuum conditioning is required for processing.
[0003] Nowadays, when the current vacuum conditioning device conducts long-term conditioning on tobacco leaves, the drive system inside the device is always in a working state, continuously generating heat inside, causing the internal temperature to continuously rise. This situation easily leads to the components in the drive system having a shortened lifespan in a high-temperature environment, thus greatly reducing the service life of the device and resulting in poor usage effects. At the same time, the equipment is relatively heavy and difficult to move.
[0004] After retrieval, a Chinese invention patent with the publication number CN 214047544 U discloses a drum-type thin plate tobacco dryer in tobacco leaf making, including a frame assembly (1), a drying device arranged on the frame assembly (1), and a pipeline control cabinet (15) arranged on one side of the frame assembly (1). The drying device is electrically connected to a control device. The drying device includes a drying cylinder (2), a wind hood (4), a drying cylinder rotation mechanism (5), a hot air pipe (6), a hot air generator (7), and a moisture exhaust pipe (8). Among them, the drying cylinder (2) is a straight cylinder structure with openings at both ends. One end is the feeding end, and the other end is the discharging end. Drying cylinder rotation mechanisms (5) are coaxially arranged outside the feeding end and the discharging end respectively. The drying cylinder rotation mechanism (5) drives the drying cylinder (2) to rotate inside the wind hood (4). The wind hood (4) is arranged outside the drying cylinder (2). Openings connecting the feeding end and the discharging end are respectively arranged at both ends of the wind hood (4). Rotary joints are arranged on the openings to connect the feeding end and the discharging end of the drying cylinder (2). The wind hood (4) is arranged on the frame assembly (1). A hot air pipe (6) communicating with it is arranged at the bottom of the wind hood (4). The air inlet of the hot air pipe (6) is connected to the hot air generator (7). Moisture exhaust pipes (8) are arranged at the tops of the front section and the middle section of the wind hood (4). The deficiencies of the above patent are that the device does not have a matching heat dissipation device. As the dryer continuously operates, the internal temperature will continuously rise. The device will have a reduced service life when operating in a high-temperature environment for a long time. At the same time, during the continuous operation of the dryer, dust and dirt are likely to accumulate on the outer wall of the drying cylinder, and there is no matching cleaning device, which is time-consuming and laborious during subsequent manual cleaning. Secondly, it is difficult to move.
[0005] Therefore, developing a structure for the flexible vacuum conditioning process in the intelligent manufacturing of Dazhongjiu cigarettes with good cooling effect is the key to solving the above technical problems. Summary of the Invention
[0006] In view of the many defects and deficiencies in the above-mentioned background technology, the present invention has made improvements and innovations. The purpose is to provide a structure for the flexible vacuum conditioning process in the intelligent manufacturing of Dazhongjiu cigarettes with good cooling effect and strong practicability, effectively achieving the export of the heat generated inside the driving system of the device to the outside, continuously reducing the internal temperature, avoiding the shortening of the service life of the components inside the driving system in a high-temperature environment, thereby greatly reducing the service life of the device, and achieving the purpose of improving the service life of the device.
[0007] Another object of the present invention is to set up a temperature control system, which can intelligently control the start-up of the heat dissipation component, realize that the motor does not need to work continuously, effectively save energy, and thus reduce costs.
[0008] To solve the above problems and achieve the above object of the invention, the structure for the flexible vacuum conditioning process in the intelligent manufacturing of Dazhongjiu cigarettes of the present invention is realized by adopting the following design structure and the following technical solutions:
[0009] As an improvement of the structure for the flexible vacuum conditioning process in the intelligent manufacturing of Dazhongjiu cigarettes of the present invention, it includes a base (1), a mounting table (2) installed on one side above the base (1), and a vacuum conditioning module (3) arranged on the mounting table (2), and further includes:
[0010] A housing (4), the housing (4) is installed on the other side above the base (1);
[0011] A heat dissipation component (5), the heat dissipation component (5) is arranged inside the housing (4);
[0012] A cleaning component (6), the cleaning component (6) is arranged above the vacuum conditioning module (3);
[0013] A heat dissipation net (7), the heat dissipation net (7) is connected to the outer wall of the housing (4).
[0014] As an improvement of the above of the present invention, it further includes a temperature control system. The temperature control system includes a temperature threshold setting module, a data comparison module, a control chip module, an information transmission module arranged inside the housing (4), and a temperature sensing module arranged inside the vacuum conditioning module (3). Among them, the information transmission module is connected to the motor (51) of the heat dissipation component (5).
[0015] As a further improvement of the above of the present invention, the control chip module is bidirectionally connected to the signal transmission module and the data comparison module respectively;
[0016] The output end of the temperature sensing module is electrically connected to the input end of the signal transmission module, and the output end of the information transmission module is electrically connected to the input end of the motor (51); the output end of the temperature threshold setting module is electrically connected to the input end of the data comparison module.
[0017] As a further improvement of the present invention described above, the heat dissipation component (5) includes:
[0018] A motor (51), the motor (51) is arranged at the top of the housing (4), and the output shaft of the motor (51) passes through the top plate of the housing (4) and is located inside the housing (4);
[0019] A power rod (53), the middle part of the power rod (53) is drivingly connected to the output shaft of the motor (51);
[0020] A first gear member (58), one end of the first gear member (58) is drivingly connected to one end of the power rod (53);
[0021] A second gear member (59), the second gear member (59) is respectively meshed and connected on both sides of the first gear member (58);
[0022] Two first transmission rods (512), one end of the first transmission rod (512) is drivingly connected to one end of the corresponding second gear member (59);
[0023] Two fan blades (516), the middle part of the fan blade (516) is drivingly connected to the other end of the first transmission rod (512).
[0024] As a further improvement of the present invention described above, it further includes:
[0025] A first bevel gear (52), the first bevel gear (52) is connected to the end of the output shaft of the motor;
[0026] A second bevel gear (54), the second bevel gear (54) is connected to the middle part of the power rod (53);
[0027] A first pulley (55), the first pulley (55) is connected to the end of one end of the power rod (53);
[0028] A second pulley (57), the second pulley (57) is connected to the middle part of one end of the first gear member (58);
[0029] A third bevel gear (510), the third bevel gear (510) is respectively connected to the middle part of one end of each second gear member (59);
[0030] A fourth bevel gear (514), the fourth bevel gear (514) is respectively connected to the two ends of each first transmission rod (512);
[0031] The driving bevel gear (515) is connected to the middle of one end of the fan blade (516);
[0032] Among them, the first bevel gear (52) and the second bevel gear (54) are meshed and connected; the first pulley (55) and the second pulley (57) are drivingly connected by the first belt (56); the third bevel gear (510) is meshed with the fourth bevel gear (514) at the corresponding end of the first transmission rod (512); the driving bevel gear (515) is meshed with the fourth bevel gear (514) at the corresponding end of the first transmission rod (512).
[0033] As a further improvement of the above of the present invention, it further includes:
[0034] The mounting plate (511), one end of the mounting plate (511) is sleeved on the first transmission rod (512);
[0035] The mounting rod (513), one end of the mounting rod (513) is connected to the driving bevel gear (515);
[0036] Among them, the other end of the power rod (53) is rotatably mounted on the inner wall of the top of the housing (4) through a bracket; the other ends of the first gear (58) and the second gear (59) are both rotatably mounted on the inner wall of the housing (4) through brackets, and the radius of the first gear (58) is greater than the radius of the second gear (59); the other ends of the mounting plate (511) and the mounting rod (513) are both mounted on the inner wall of the housing (4).
[0037] As a further further improvement of the above of the present invention, it further includes: a net cleaning assembly (8), the net cleaning assembly (8) is arranged on the inner wall of the heat dissipation net (7); the net cleaning assembly (8) includes:
[0038] The driving bevel gear (81), the driving bevel gear (81) is connected to the other end of the power rod (53);
[0039] The driven bevel gear (82), the driven bevel gear (82) is connected to the top end of the second reciprocating lead screw (83);
[0040] The second reciprocating lead screw (83), the bottom of the second reciprocating lead screw (83) is rotatably mounted on the inner wall of the bottom of the housing (4);
[0041] The second internal thread ring (84), the second internal thread ring (84) is threadedly connected to the second reciprocating lead screw (83);
[0042] The connecting block (85), one end of the connecting block (85) is connected to the outer wall of the second internal thread ring (84);
[0043] The net cleaning long rod (86) is connected to the other end of the connection block (85);
[0044] Among them, the driving bevel gear (81) and the driven bevel gear (82) are meshed and connected; a chute (88) is also opened at the inner end of the net cleaning long rod (86), and a first scraping plate (810) is provided on the side wall of one end of the net cleaning long rod (86).
[0045] As a further improvement of the above of the present invention, it further includes:
[0046] A slider (89), one end of the slider (89) is slidably connected in the chute (88) of the net cleaning long rod (86);
[0047] A net cleaning telescopic rod (87), the net cleaning telescopic rod (87) is connected to the other end of the slider (89);
[0048] Several telescopic rods (811), one ends of several telescopic rods (811) are coaxially connected to the net cleaning telescopic rod (87) respectively;
[0049] A second scraping plate (813), the second scraping plate (813) is connected to the other ends of several telescopic rods (811);
[0050] A spring (812), the spring (812) is sleeved outside the telescopic rod (811), one end of the spring (812) is fixedly connected to the net cleaning telescopic rod (87), and the other end of the spring (812) is fixedly connected to the outer wall of the second scraping plate (813).
[0051] As a further improvement of the above of the present invention, the cleaning assembly (6) includes:
[0052] A second transmission rod (61), one end of the second transmission rod (61) is connected to the power rod (53) near the first pulley (55);
[0053] A third pulley (62), the third pulley (62) is connected to the second transmission rod (61);
[0054] A first reciprocating lead screw (65), the first reciprocating lead screw (65) is symmetrically arranged on both sides of the second transmission rod (61) and both penetrate through the housing (4) and are rotatably connected to the housing (4);
[0055] A fourth pulley (63), the fourth pulley (63) is respectively connected to the same end of two first reciprocating lead screws (65);
[0056] A first internal thread ring (66), the first internal thread ring (66) is respectively connected to each first reciprocating lead screw (65);
[0057] Link rod (67), one end of the link rod (67) is connected to the first internal thread ring (66);
[0058] Connecting block (68), one end of the connecting block (68) is connected to the other end of the link rod (67);
[0059] Cleaning connecting plate (69), both ends of the cleaning connecting plate (69) are respectively connected to the other ends of the corresponding connecting blocks (68);
[0060] Cleaning brush (610), the cleaning brush (610) is arranged on the inner wall of the cleaning connecting plate (69);
[0061] Wherein, both of the two fourth belt pulleys (63) are in transmission connection with the third belt pulley (62) through the second belt (64).
[0062] As a further improvement of the present invention, a sliding connection is provided between the connecting block (68) and the top surface of the mounting table (2);
[0063] The cleaning connecting plate (69) is integrally in an arc-shaped structure;
[0064] The cleaning brush (610) is in sliding connection with the outer wall of the vacuum conditioning module (3).
[0065] The working principle is as follows: When in use, the operator turns on the motor (51). One end of the output shaft of the motor (51) drives the first bevel gear (52) to rotate. The first bevel gear (52) is meshed with the second bevel gear (54), so that the second bevel gear (54) rotates synchronously. The second bevel gear (54) drives the power rod (53) to rotate. The power rod (53) drives the first belt pulley (55) to rotate. The first belt pulley (55) drives the second belt pulley (57) to rotate through the first belt (56), and further drives the first gear (58) connected to the second belt pulley (57) to rotate. The first gear (58) is meshed with the second gear (59), so that the second gear (59) rotates simultaneously. The second gear (59) drives the third bevel gear (510) connected thereto to rotate. The third bevel gear (510) is meshed with the fourth bevel gear (514) at this end of the first transmission rod (512), so that the first transmission rod (512) rotates synchronously. The fourth bevel gear (514) at the other end of the first transmission rod (512) is meshed with the transmission bevel gear (515), so that the transmission bevel gear (515) rotates synchronously. Thus, the transmission bevel gear (515) drives the fan blade (516) to rotate, so that the heat dissipation assembly (5) generates an exhaust air field;
[0066] When the motor (51) is turned on and running, the power rod (53) rotates and drives the second transmission rod (61) to rotate. Further, the second transmission rod (61) drives the third pulley (62) to rotate. The third pulley (62) drives two fourth pulleys (63) on both sides to rotate through the second belt (64). The fourth pulleys (63) respectively drive the first reciprocating lead screws (65) connected thereto to rotate. There is a threaded connection between the outer wall of the first reciprocating lead screw (65) and the first internal thread ring (66). When the first reciprocating lead screw (65) rotates, it drives the first internal thread ring (66) to displace on the outer wall of the first reciprocating lead screw (65). The first internal thread ring (66) drives the link rod (67) to displace. The link rod (67) drives the connecting block (68) at its bottom end to displace. The connecting block (68) drives the cleaning connecting plate (69) to displace. The cleaning connecting plate (69) drives the cleaning brush (610) connected thereto to displace on the outer wall of the vacuum conditioning module (3).
[0067] The beneficial effects of the present invention compared with the prior art are as follows:
[0068] 1. By providing a heat dissipation component, the present invention effectively realizes the heat generated inside the drive system of the vacuum conditioning module being exported to the outside, continuously reducing the internal temperature, avoiding the shortening of the service life of the components inside the drive system in a high-temperature environment, and thus greatly reducing the service life of the device, achieving the purpose of improving the service life of the device.
[0070] 2. By providing a screen cleaning component, the present invention effectively realizes the cleaning of the inner wall of the heat dissipation screen, cleaning the dust attached to the inner wall of the heat dissipation screen, thereby greatly increasing the heat dissipation effect of the vacuum conditioning module;
[0071] 3. By providing a cleaning component, the present invention effectively realizes the displacement of the outer wall of the vacuum conditioning module. The large-sized vacuum conditioning module does not require regular cleaning by staff, thus greatly reducing the labor intensity of the staff and reducing the labor cost;
[0072] 4. By providing a temperature control system, when the temperature value exceeds the set value, the control chip module transmits a signal through the information transmission module to control the motor to start the heat dissipation function. When the temperature value detected by the temperature sensing module is within the set value, the motor is controlled to stop working, which can intelligently control the temperature inside the vacuum conditioning module, does not require the motor to continuously work, and effectively saves energy;
[0073] 5. The present invention is ingeniously designed, has a good cooling effect and strong practicability. As long as the heat dissipation component starts to operate, it can drive the cleaning component and the screen cleaning component to operate synchronously;
[0074] 6. The design of the present invention is reasonable, novel and ingenious, and can achieve a structure for the large Chongjiu intelligent manufacturing silk reeling flexible vacuum conditioning process with good cooling effect and strong practicability. It can effectively export the heat generated inside the driving system of the device to the outside world, continuously reduce the internal temperature, avoid shortening the service life of the components inside the driving system in a high-temperature environment, and thus greatly reduce the service life of the device.
[0075] 7. By setting up a temperature control system, the present invention can intelligently control the opening and working of the heat dissipation component, realize that the motor does not need to work continuously, effectively save energy, and thus reduce costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0076] The following further details the specific embodiments of the present invention with reference to the drawings, where:
[0077] Figure 1 is one of the overall structural schematic diagrams of the present invention;
[0078] Figure 2 is the second overall structural schematic diagram of the present invention;
[0079] Figure 3 is the front view of the present invention;
[0080] Figure 4 is one of the partial connection relationship schematic diagrams of the heat dissipation component (5), the cleaning component (6) and the screen cleaning component (8) of the present invention;
[0081] Figure 5 is the second partial connection relationship schematic diagram of the heat dissipation component (5), the cleaning component (6) and the screen cleaning component (8) of the present invention;
[0082] Figure 6 is the present invention Figure 5 top view;
[0083] Figure 7 is one of the partial connection relationship schematic diagrams of the present invention;
[0084] Figure 8 is the second partial connection relationship schematic diagram of the present invention;
[0085] Figure 9 is the third partial connection relationship schematic diagram of the present invention;
[0086] Figure 10 is the fourth partial connection relationship schematic diagram of the present invention;
[0087] Figure 11 is one of the partial structural schematic diagrams of the screen cleaning component (8) of the present invention;
[0088] Figure 12It is the second partial structural schematic diagram of the cleaning net component (8) part of the present invention;
[0089] Figure 13 It is the first overall structural schematic diagram of another design structure of the present invention;
[0090] Figure 14 It is the second overall structural schematic diagram of another design structure of the present invention;
[0091] Figure 15 It is the overall structural schematic diagram of the liftable and movable device (9) part of the present invention;
[0092] Among them, the reference numerals in the figure: 1 - base;
[0093] 2 - mounting table;
[0094] 3 - vacuum conditioning module;
[0095] 4 - outer shell;
[0096] 5 - heat dissipation component; 51 - motor; 52 - first bevel gear; 53 - power rod; 54 - second bevel gear; 55 - first pulley; 56 - first belt; 57 - second pulley; 58 - first gear; 59 - second gear; 510 - third bevel gear; 511 - mounting plate; 512 - first transmission rod; 513 - mounting rod; 514 - fourth bevel gear; 515 - transmission bevel gear; 516 - fan blade;
[0097] 6 - cleaning component; 61 - second transmission rod; 62 - third pulley; 63 - fourth pulley; 64 - second belt; 65 - first reciprocating lead screw; 66 - first internal thread ring; 67 - link rod; 68 - connecting block; 69 - cleaning connecting plate; 610 - cleaning brush;
[0098] 7 - heat dissipation net;
[0099] 8 - cleaning net component; 81 - driving bevel gear; 82 - driven bevel gear; 83 - second reciprocating lead screw; 84 - second internal thread ring; 85 - connecting block; 86 - cleaning long rod; 87 - cleaning telescopic rod; 88 - chute; 89 - slider; 810 - first scraper; 811 - telescopic rod; 812 - spring; 813 - second scraper;
[0100] 9 - liftable and movable device, 91 - lifting connecting piece, 92 - liftable and movable device, 911 - turbine, 912 - worm, 913 - hand-cranking mechanism. Detailed implementation manners
[0101] In order to make the technical means, creative features, achieved purposes and effects realized by the present invention easy to understand, the technical solutions of the present invention will be further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and embodiments.
[0102] In summary, a more specific embodiment of the present invention is as follows:
[0103] Before the structure for the Dazhongjiu intelligent manufacturing cigarette making flexible vacuum conditioning process of the above design structure is used, it needs to be installed as a standby.
[0104] Embodiment 1
[0105] As shown in the attached Figures 1 - 3 、 Figures 7 - 9 The structure for the Dazhongjiu intelligent manufacturing cigarette making flexible vacuum conditioning process includes a base 1, a mounting table 2 installed on one side above the base 1, and a vacuum conditioning module 3 arranged on the mounting table 2. It further includes: a housing 4, the housing 4 is installed on the other side above the base 1; a heat dissipation component 5, the heat dissipation component 5 is arranged in the housing 4; a cleaning component 6, the cleaning component 6 is arranged above the vacuum conditioning module 3; a heat dissipation net 7, the heat dissipation net 7 is connected to the outer wall of the housing 4.
[0106] Furthermore, the heat dissipation component 5 includes:
[0107] A motor 51, the motor 51 is arranged at the top end of the housing 4, and the output shaft of the motor 51 passes through the top plate of the housing 4 and is located inside the housing 4;
[0108] A power rod 53, the middle part of the power rod 53 is in transmission connection with the output shaft of the motor 51;
[0109] A first gear member 58, one end of the first gear member 58 is in transmission connection with one end of the power rod 53;
[0110] A second gear member 59, the second gear member 59 is respectively meshed and connected on both sides of the first gear member 58;
[0111] Two first transmission rods 512, one end of the first transmission rod 512 is in transmission connection with one end of the corresponding second gear member 59;
[0112] Two fan blades 516, the middle part of the fan blades 516 is in transmission connection with the other end of the first transmission rod 512.
[0113] Specifically, it further includes: a first bevel gear 52, the first bevel gear 52 is connected to the end of the output shaft of the motor;
[0114] A second bevel gear 54, the second bevel gear 54 is connected to the middle part of the power rod 53;
[0115] A first pulley 55, the first pulley 55 is connected to one end of the power rod 53;
[0116] A second pulley 57, the second pulley 57 is connected to the middle of one end of the first gear member 58;
[0117] A third bevel gear 510, the third bevel gear 510 is respectively connected to the middle of one end of each second gear member 59;
[0118] A fourth bevel gear 514, wherein the fourth bevel gear 514 is connected to both ends of each first transmission rod 512;
[0119] A transmission bevel gear 515, the transmission bevel gear 515 is connected to the middle of one end of the fan blade 516;
[0120] Among them, the first bevel gear 52 and the second bevel gear 54 are meshed and connected; the first pulley 55 and the second pulley 57 are connected through the first belt 56; the third bevel gear 510 is meshed and connected with the fourth bevel gear 514 at the corresponding end of the first transmission rod 512; the transmission bevel gear 515 is meshed and connected with the fourth bevel gear 514 at the corresponding end of the first transmission rod 512.
[0121] Furthermore, it also includes:
[0122] A mounting plate 511, one end of which is sleeved on the first transmission rod 512;
[0123] A mounting rod 513, one end of which is connected to the transmission bevel gear 515;
[0124] Among them, the other end of the power rod 53 is rotatably mounted on the inner wall of the top of the outer shell 4 through a bracket; the other ends of the first gear 58 and the second gear 59 are rotatably mounted on the inner wall of the outer shell 4 through a bracket, and the radius of the first gear 58 is greater than the radius of the second gear 59; the other ends of the mounting plate 511 and the mounting rod 513 are both mounted on the inner wall of the outer shell 4.
[0125] In the present invention, the first transmission rod 512 is rotatably connected in a sleeve at one end of the mounting plate 511 .
[0126] Furthermore, the cleaning component 6 includes:
[0127] A second transmission rod 61, one end of which is connected to the power rod 53 near the end of the first pulley 55;
[0128] A third pulley 62, the third pulley 62 is connected to the second transmission rod 61;
[0129] The first reciprocating lead screw 65 is symmetrically arranged on both sides of the second transmission rod 61 and penetrates through the housing 4 and is rotatably connected to the housing 4;
[0130] The fourth pulley 63 is respectively connected to the same end of the two first reciprocating lead screws 65;
[0131] The first internal thread ring 66 is respectively connected to each first reciprocating lead screw 65;
[0132] The link rod 67, one end of the link rod 67 is connected to the first internal thread ring 66;
[0133] The connecting block 68, one end of the connecting block 68 is connected to the other end of the link rod 67;
[0134] The cleaning connecting plate 69, both ends of the cleaning connecting plate 69 are respectively connected to the other ends of the corresponding connecting blocks 68;
[0135] The cleaning brush 610 is arranged on the inner wall of the cleaning connecting plate 69;
[0136] Among them, both of the two fourth pulleys 63 are in transmission connection with the third pulley 62 through the second belt 64.
[0137] Specifically, the connecting block 68 is in sliding connection with the top surface of the mounting table 2;
[0138] The cleaning connecting plate 69 is integrally in an arc-shaped structure;
[0139] The cleaning brush 610 is in sliding connection with the outer wall of the vacuum conditioning module 3.
[0140] In the present invention, on the mounting table 2, a chute adapted to the connecting block 68 can be provided, so that the cleaning connecting plate 69 reciprocates along the chute to clean the vacuum conditioning module 3, thereby increasing the stability of the cleaning assembly 6. At the same time, a cleaning brush 610 can also be provided on the lower end surface of the connecting block 68.
[0141] In this embodiment, during use, the operator turns on the motor 51. One end of the output shaft of the motor 51 drives the first bevel gear 52 to rotate. The first bevel gear 52 is meshed and connected with the second bevel gear 54, causing the second bevel gear 54 to rotate synchronously. The second bevel gear 54 drives the power rod 53 to rotate. The power rod 53 drives the first pulley 55 to rotate. The first pulley 55 drives the second pulley 57 to rotate through the first belt 56, and then drives the first gear 58 connected to the second pulley 57 to rotate. The first gear 58 is meshed and connected with the second gear 59, causing the second gear 59 to rotate simultaneously. The second gear 59 drives the third bevel gear 510 connected thereto to rotate. The third bevel gear 510 is meshed and connected with the fourth bevel gear 514 at this end of the first transmission rod 512, causing the first transmission rod 512 to rotate synchronously. The fourth bevel gear 514 at the other end of the first transmission rod 512 is meshed and connected with the transmission bevel gear 515, causing the transmission bevel gear 515 to rotate synchronously. Thus, the transmission bevel gear 515 drives the fan blade 516 to rotate, generating an exhaust air field for the heat dissipation assembly 5;
[0142] When the motor 51 is turned on and running, while the power rod 53 rotates, it will drive the second transmission rod 61 to rotate. Then, the second transmission rod 61 drives the third pulley 62 to rotate. The third pulley 62 drives the two fourth pulleys 63 on both sides to rotate through the second belt 64. The fourth pulleys 63 respectively drive the first reciprocating lead screws 65 connected thereto to rotate. The outer wall of the first reciprocating lead screw 65 is threadedly connected with the first internal thread ring 66. While the first reciprocating lead screw 65 rotates, it drives the first internal thread ring 66 to displace on the outer wall of the first reciprocating lead screw 65. The first internal thread ring 66 drives the link rod 67 to displace. The link rod 67 drives the connection block 68 at its bottom end to displace. The connection block 68 drives the cleaning connection plate 69 to displace. The cleaning connection plate 69 drives the cleaning brush 610 connected thereto to displace on the outer wall of the vacuum tempering module 3.
[0143] Embodiment 2
[0144] Embodiment 2 is the same as Embodiment 1, and the only difference is that it further includes a temperature control system. The temperature control system includes a temperature threshold setting module, a data comparison module, a control chip module, an information transmission module arranged inside the housing 4, and a temperature sensing module arranged inside the vacuum tempering module 3. Among them, the information transmission module is connected to the motor 51 of the heat dissipation assembly 5.
[0145] Specifically, the control chip module is bidirectionally connected to the signal transmission module and the data comparison module respectively;
[0146] The output end of the temperature sensing module is electrically connected to the input end of the signal transmission module, and the output end of the information transmission module is electrically connected to the input end of the motor 51; the output end of the temperature threshold setting module is electrically connected to the input end of the data comparison module.
[0147] In the present invention, a monitoring machine can also be provided. The monitoring machine is respectively connected to the temperature threshold setting module, the data comparison module, the information transmission module, the information transmission module, and the temperature sensing module. By setting the monitoring machine, the operation conditions of each module can be monitored, and interactions and data transmissions can be carried out with each module.
[0148] In the present invention, the temperature control system can be an existing product that can be purchased on the market, and the control panel of the temperature control system is arranged outside the housing 4 for performing corresponding control operations on the temperature control system.
[0149] When this embodiment is working, the temperature sensing module continuously detects the heat inside the vacuum conditioning module 3, and feeds the temperature information back to the control chip module through the information transmission module. The staff sets the appropriate working temperature of the vacuum conditioning module 3 through the temperature threshold setting module. The control chip module transmits the temperature information to the data comparison module. The data comparison module compares the temperature information with the set temperature information. When the temperature value exceeds the set value, the control chip module transmits a signal through the information transmission module to control the motor 51 to work and turn on the heat dissipation function. When the temperature value detected by the temperature sensing module is within the set value, the control motor stops working. Through this design, the temperature inside the vacuum conditioning module 3 can be intelligently controlled, and there is no need to control the motor to work continuously, effectively saving energy.
[0150] During the above use process, the working principles of the heat dissipation component 5 and the cleaning component 6 of this embodiment are the same as those of Embodiment 1, and will not be elaborated here.
[0151] Embodiment 3
[0152] As shown in the attached Figure 2 , Figure 5 , Figures 10 - 12 shown, Embodiment 3 is the same as Embodiment 2, and the only difference is that it further includes: a screen cleaning component 8, and the screen cleaning component 8 is arranged on the inner wall of the heat dissipation net 7; the screen cleaning component 8 includes:
[0153] a driving bevel gear 81, and the driving bevel gear 81 is connected to the other end of the power rod 53;
[0154] a driven bevel gear 82, and the driven bevel gear 82 is connected to the top of the second reciprocating lead screw 83;
[0155] a second reciprocating lead screw 83, and the bottom of the second reciprocating lead screw 83 is rotatably installed on the inner wall of the bottom of the housing 4;
[0156] a second internal thread ring 84, and the second internal thread ring 84 is threadedly connected to the second reciprocating lead screw 83;
[0157] The connecting block 85, one end of the connecting block 85 is connected to the outer wall of the second internal thread ring 84;
[0158] The screen cleaning long rod 86, the screen cleaning long rod 86 is connected to the other end of the connecting block 85;
[0159] Wherein, the driving bevel gear 81 and the driven bevel gear 82 are meshed and connected; an internal end of the screen cleaning long rod 86 is also provided with a chute 88, and a first scraping plate 810 is arranged on the side wall of one end of the screen cleaning long rod 86.
[0160] In the present invention, the screen cleaning long rod 86 is integrally in a trapezoidal structure with both ends open and internally hollow; the first scraping plate 810 and the screen cleaning long rod 86 are of an integrally formed structure or a split structure; the first scraping plate 810 is arranged on the hypotenuse of the screen cleaning long rod 86.
[0161] Specifically, it further includes:
[0162] The slider 89, one end of the slider 89 is slidably connected in the chute 88 of the screen cleaning long rod 86;
[0163] The screen cleaning telescopic rod 87, the screen cleaning telescopic rod 87 is connected to the other end of the slider 89;
[0164] Several telescopic rods 811, one ends of the several telescopic rods 811 are respectively coaxially connected to the screen cleaning telescopic rod 87;
[0165] The second scraping plate 813, the second scraping plate 813 is connected to the other ends of the several telescopic rods 811;
[0166] The spring 812, the spring 812 is sleeved outside the telescopic rod 811, one end of the spring 812 is fixedly connected to the screen cleaning telescopic rod 87, and the other end of the spring 812 is fixedly connected to the outer wall of the second scraping plate 813.
[0167] In the present invention, the screen cleaning long rod 86, the chute 88 and the first scraping plate 810 are of an integrally formed structure, and the second scraping plate 813 can be accommodated inside the screen cleaning long rod 86 under the compression of the spring 812.
[0168] When this embodiment works, when the heat dissipation component 5 is operating, while the power rod 53 rotates, it will drive the driving bevel gear 81 connected to the other end of the power rod 53 to rotate synchronously. The driving bevel gear 81 is meshed with the driven bevel gear 82, causing the driven bevel gear 82 to rotate synchronously. The driven bevel gear 82 drives the second reciprocating lead screw 83 to rotate. The outer wall of the second reciprocating lead screw 83 is threadedly connected to the second internal thread ring 84. When the second reciprocating lead screw 83 rotates, it will drive the second internal thread ring 84 to displace on the outer wall of the second reciprocating lead screw 83. Furthermore, the second internal thread ring 84 drives the connecting block 85 to displace, the connecting block 85 drives the net cleaning long rod 86 to displace, and the net cleaning long rod 86 synchronously drives the net cleaning telescopic rod 87 to displace. Thus, the net cleaning long rod 86 drives the first scraper 810 to displace, and the net cleaning telescopic rod 87 drives the second scraper 813 to displace through the telescopic rod 811.
[0169] During the use process, if the second scraper 813 is squeezed by the partition on the side wall of the heat dissipation net 7, the net cleaning telescopic rod 87 will retract into the interior of the net cleaning long rod 86. At the same time, the second scraper 813 also retracts into the interior of the net cleaning telescopic rod 87, causing the spring 812 to be in a compressed state; the second scraper 813 can extend or retract into the interior of the net cleaning long rod 86. On the one hand, it can protect the components on the net cleaning telescopic rod 87, and on the other hand, it can facilitate the installation and disassembly process for the installers during the disassembly and assembly process.
[0170] During the above use process, the working principles of the heat dissipation component 5, the cleaning component 6, and the temperature control system in this embodiment are the same as those in Embodiment 2, and will not be elaborated here.
[0171] Embodiment 4
[0172] This embodiment is the same as other embodiments. The only difference is that several liftable and movable devices 9 are further provided at the lower part of the base 1, and the liftable and movable devices 9 are arranged inside the base legs.
[0173] Furthermore, the liftable and movable device 9 includes:
[0174] A lift connecting member 91, one end of the lift connecting member 91 is connected to the lower part of the base 1;
[0175] A moving wheel 92, the moving wheel 92 is connected to the lower end of the lift connecting member 91;
[0176] Among them, a braking device is provided on the moving wheel 92 to cooperate with it to complete the work.
[0177] Specifically, the lift connecting member 91 includes:
[0178] A turbine 911, the lower end of the turbine 911 is detachably connected to the upper part of the moving wheel 92;
[0179] A worm 912, wherein the lower end of the worm 912 is connected inside the worm 912, and the upper end of the worm 912 is connected to the lower part of the base 1;
[0180] The hand-crank mechanism 913 is connected with the turbine.
[0181] In the present invention, the lifting and moving device 92 is a fixed wheel or a universal wheel. The fixed wheels or universal wheels are symmetrically arranged in pairs at the lower part of the base 1.
[0182] In the present invention, the hand-crank mechanism 913 is a Z-shaped structure, wherein a matching anti-skid protective cover is provided on the hand-holding part of the hand-crank mechanism 913 of the Z-shaped structure.
[0183] A plurality of rubber protective protrusions of a connected structure are arranged on the outer surface of the anti-slip protective sleeve, and the rubber protective protrusions are granular or annular protrusions.
[0184] In the invention, since an anti-slip cover is provided, the anti-slip cover is a rubber cover, and a plurality of rubber protective protrusions of a connected structure are provided on the outer surface of the rubber cover, and the rubber protective protrusions are granular or annular protrusions. Therefore, since a protective cover is provided on the hand-holding part of the hand-crank mechanism 913, it can protect the operator's hands from wear and tear due to long-term work, thereby ensuring the safety of construction.
[0185] When the above structure is in use, according to the needs of actual use, when the present invention needs to be moved or raised for use, the operator only needs to drive the turbine 911 to rotate through the handle of the hand-cranked mechanism 913, and at the same time drive the worm 912 connected thereto to move up or down, thereby driving the base 1 to move up or down.
[0186] When the height of each liftable movable device 9 is higher than the height of the base legs, the operator can use the liftable movable device 9 to achieve the overall movement of the present invention.
[0187] In the implementation process, under normal circumstances, the present invention does not move, and is supported by the supports on all sides for use. If the equipment needs to be repaired or inspected or needs to be moved, the operator can manually lift the multiple liftable movable devices 9 at the same time to make their height higher than the four supports for movement.
[0188] Finally, it should be noted that the above description is only a preferred embodiment of the present invention, and is not a limitation on the present invention in other forms. Any person skilled in the art may use the technical content disclosed above to make changes or modifications into equivalent embodiments with equivalent changes. However, any simple modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the technical solution content of the present invention still fall within the protection scope of the technical solution of the present invention.
Claims
1. A structure for a flexible vacuum rehydration process for intelligently manufacturing silk, comprising a base (1), a mounting platform (2) mounted on one side above the base (1), and a vacuum rehydration module (3) arranged on the mounting platform (2), characterized in that: Also includes: A housing (4), the housing (4) being mounted on the other side above the base (1); A heat dissipation component (5), the heat dissipation component (5) being arranged in the housing (4); A cleaning component (6), the cleaning component (6) is arranged above the vacuum rehumidification module (3); A heat dissipation net (7) is connected to the outer wall of the housing (4).
2. According to the structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 1, it is characterized in that: It also includes a temperature control system, which includes a temperature threshold setting module, a data comparison module, a control chip module, an information transmission module and a temperature sensor module arranged inside the vacuum rehumidification module (3), wherein the information transmission module is connected to the motor (51) of the heat dissipation component (5).
3. The structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 2 is characterized in that: The control chip module is bidirectionally connected to the signal transmission module and the data comparison module respectively; The output end of the temperature sensing module is electrically connected to the input end of the signal transmission module, the output end of the information transmission module is electrically connected to the input end of the motor (51); the output end of the temperature threshold setting module is electrically connected to the input end of the data comparison module.
4. The structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 1 is characterized in that: The heat dissipation component (5) comprises: A motor (51), the motor (51) is arranged at the top of the housing (4), and an output shaft of the motor (51) passes through a top plate of the housing (4) and is located inside the housing (4); A power rod (53), the middle portion of which is drivingly connected to the output shaft of the motor (51); A first gear member (58), one end of which is drivingly connected to one end of the power rod (53); A second gear member (59), the second gear member (59) is meshedly connected to both sides of the first gear member (58); Two first transmission rods (512), one end of the first transmission rod (512) being transmission-connected to one end of the second gear member (59) on the corresponding side; The two fan blades (516) have middle portions thereof drivingly connected to the other end of the first transmission rod (512).
5. The structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 4 is characterized in that: Also includes: A first bevel gear (52), the first bevel gear (52) being connected to the end of the motor output shaft; A second bevel gear (54), the second bevel gear (54) is connected to the middle part of the power rod (53); A first pulley (55), the first pulley (55) is connected to one end of the power rod (53); A second pulley (57), the second pulley (57) is connected to the middle of one end of the first gear member (58); A third bevel gear (510), the third bevel gear (510) is respectively connected to the middle part of one end of each second gear member (59); A fourth bevel gear (514), the fourth bevel gear (514) being respectively connected to both end portions of each first transmission rod (512); A transmission bevel gear (515), the transmission bevel gear (515) is connected to the middle of one end of the fan blade (516); The first bevel gear (52) and the second bevel gear (54) are meshedly connected; the first belt pulley (55) and the second belt pulley (57) are transmission-connected via a first belt (56); the third bevel gear (510) is meshedly connected to the fourth bevel gear (514) at the corresponding end of the first transmission rod (512); and the transmission bevel gear (515) is meshedly connected to the fourth bevel gear (514) at the corresponding end of the first transmission rod (512).
6. The structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 4 is characterized in that: Also includes: A mounting plate (511), one end of the mounting plate (511) being sleeved on the first transmission rod (512); A mounting rod (513), one end of which is connected to a transmission bevel gear (515); The other end of the power rod (53) is rotatably mounted on the inner wall of the top of the outer shell (4) through a bracket; the other ends of the first gear (58) and the second gear (59) are both rotatably mounted on the inner wall of the outer shell (4) through a bracket, and the radius of the first gear (58) is greater than the radius of the second gear (59); the other ends of the mounting plate (511) and the mounting rod (513) are both mounted on the inner wall of the outer shell (4).
7. The structure for the flexible vacuum rehumidification process of Dazhongjiu intelligent manufacturing silk making according to claim 1 is characterized in that: Also includes: A net cleaning component (8), the net cleaning component (8) being arranged on the inner wall of the heat dissipation net (7); The screen cleaning component (8) comprises: A driving bevel gear (81), the driving bevel gear (81) is connected to the other end of the power rod (53); A driven bevel gear (82), the driven bevel gear (82) being connected to the top end of the second reciprocating screw (83); A second reciprocating screw (83), the bottom of which is rotatably mounted on the inner wall of the bottom of the housing (4); A second internally threaded ring (84), the second internally threaded ring (84) being threadedly connected to the second reciprocating screw (83); A connecting block (85), one end of which is connected to the outer wall of the second internal thread ring (84); A net-clearing long rod (86), which is connected to the other end of the connecting block (85); The driving bevel gear (81) and the driven bevel gear (82) are meshedly connected; a sliding groove (88) is provided at one end of the inner part of the long net cleaning rod (86); and a first scraper (810) is provided on the side wall of one end of the long net cleaning rod (86).
8. The structure for the flexible vacuum rehydration process of Dazhongjiu intelligent manufacturing silk making according to claim 7 is characterized in that: Also includes: A slider (89), one end of which is slidably connected in a slide groove (88) of the net cleaning rod (86); A net-clearing telescopic rod (87), the net-clearing telescopic rod (87) being connected to the other end of the slider (89); A plurality of telescopic rods (811), one end of each of the telescopic rods (811) is coaxially connected to a net-cleaning telescopic rod (87); A second scraper (813), the second scraper (813) is connected to the other ends of the plurality of telescopic rods (811); A spring (812) is sleeved on the outside of the telescopic rod (811), one end of the spring (812) is fixedly connected to the net cleaning telescopic rod (87), and the other end of the spring (812) is fixedly connected to the outer wall of the second scraper (813).
9. The structure for the flexible vacuum rehumidification process of Dazhongjiu intelligent manufacturing silk making according to claim 1 is characterized in that: The cleaning component (6) comprises: A second transmission rod (61), one end of which is connected to a power rod (53) near an end of the first pulley (55); A third pulley (62), the third pulley (62) is connected to the second transmission rod (61); A first reciprocating screw (65), the first reciprocating screw (65) being symmetrically arranged on both sides of the second transmission rod (61), and both of the first reciprocating screws (65) passing through the housing (4) and being rotatably connected to the housing (4); A fourth pulley (63), the fourth pulley (63) is respectively connected to the same end of the two first reciprocating screws (65); A first internal thread ring (66), the first internal thread ring (66) is respectively connected to each first reciprocating screw (65); A connecting rod (67), one end of which is connected to the first internal thread ring (66); A connecting block (68), one end of which is connected to the other end of the link rod (67); A cleaning connecting plate (69), wherein two ends of the cleaning connecting plate (69) are respectively connected to the other end of the corresponding connecting block (68); A cleaning brush (610), the cleaning brush (610) being arranged on the inner wall of the cleaning connecting plate (69); Wherein, the two fourth pulleys (63) are both connected to the third pulley (62) through the second belt (64).
10. The structure for the flexible vacuum rehumidification process of Dazhongjiu intelligent manufacturing silk making according to claim 9 is characterized in that: The connection block (68) is slidably connected to the top surface of the mounting platform (2); The cleaning connecting plate (69) is in an arc-shaped structure as a whole; The cleaning brush (610) is slidably connected to the outer wall of the vacuum rehumidification module (3).
Citation Information
Patent Citations
Drum-type thin-plate cut-tobacco dryer in tobacco cut-tobacco production
CN214047544U