A spray water quantitative device and quantitative taking method

By designing a spray water quantitative equipment including a centrifugal mechanism, an air pump, a jet disk and a heating mechanism, the pollution problem caused by the contamination of droplets on the head of the infusion tube is solved, and the timely droplets are dropped and the smooth removal of the liquid bottle is achieved.

CN115893287BActive Publication Date: 2025-05-16SHAANXI BAOTAILONG IND GRP CO LTD
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Patent Information

Application Number
CN202211423102.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-12
Publication Date
2025-05-16
Estimated Expiration
2042-11-12

AI Technical Summary

Technical Problem

During the production process of spray water, the head of the infusion tube is prone to adhesion of liquid droplets, which causes the liquid droplets to fail to fall into the liquid bottle in time, causing contamination and affecting the subsequent removal of the liquid bottle.

Method used

Design a spray water quantitative equipment, including a chassis, bottle turntable, metering rack, mounting rack, upper storage tube, lower feed inner tube, centrifugal mechanism, air pump, jet disk and heating mechanism. Through the cooperation of the centrifugal mechanism, air pump and jet disk, the droplets attached to the inner wall of the lower feeding inner tube are reduced, and the surface of the lower feeding inner tube is heated through the heating mechanism to promote the droplets falling.

Benefits of technology

It effectively reduces the droplets attached to the inner wall of the feeding tube, ensuring that the droplets can fall into the liquid bottle in time, avoid contamination, and achieve the smooth removal of the liquid bottle.

✦ Generated by Eureka AI based on patent content.

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    Figure CN115893287B_ABST
Patent Text Reader

Abstract

The invention discloses a spray water quantitative device and a quantitative taking method, comprising a chassis and a bottle body turntable arranged on the chassis, a quantitative frame is arranged on the chassis at the outer side of the bottle body turntable, a mounting frame is arranged on the quantitative frame, two upper material storage tubes are arranged on the top of the mounting frame, a material guiding cavity is opened in the upper material storage tube, the top of the upper material storage tube is connected with an external liquid storage tank through a quantitative hose, a lower material feeding outer tube corresponding to the upper material storage tube is arranged at the bottom of the mounting frame, a lower material feeding inner tube connected with the upper material storage tube is arranged in the lower material feeding outer tube, a centrifugal mechanism for driving the lower material feeding inner tube to rotate centrifugally is arranged on the mounting frame, an air pump is arranged on the mounting frame, and the air pump is connected with an air jet disk arranged on the upper part of the material guiding cavity. The invention cooperates with the heating mechanism through the centrifugal mechanism, the air pump and the air jet disk to reduce the droplets adhering to the inner wall of the lower material feeding inner tube while facilitating the droplets to fall and taking the objects at the same time.
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Description

Technical Field

[0001] The invention relates to the technical field of spray water production, in particular to a spray water quantitative device and a quantitative taking method. Background Art

[0002] Meteorite spray water contains strontium, which has the effects of anti-oxidation, anti-aging, and beauty. Principle: Collagenase (also known as collagen hydrolase) can act on normal collagen metabolism and various rapid reconstruction processes, such as wound healing. In the collagenase catalysis process, Ca2+ has a dual role, one is as an enzyme activator, and the other is as a critical thermal stabilizer at physiological temperature and pH. Strontium has special therapeutic effects on skin diseases such as chronic eczema and psoriasis, and can also relieve skin allergies. The principle is that strontium salts have a significant inhibitory effect on TNF-α (tumor necrosis factor α). Therefore, strontium salts have anti-inflammatory effects [56,57]. Strontium has special therapeutic effects on skin diseases such as chronic eczema and psoriasis, and can also relieve skin allergies. Using meteorite water for hydration and beauty can accelerate blood circulation, open up meridians, be easily absorbed by the skin, improve facial microcirculation, increase nutrition of facial skin, promote the elimination of facial spots and the disappearance of acne marks, achieve the effect of whitening, brightening the skin, keeping the skin youthful and wrinkle-reducing, and at the same time keep the skin delicate and rosy for a long time.

[0003] In the production of spray water, it is necessary to perform quantitative operation on the spray water. In the prior art, the liquid in the liquid storage tank is generally transported to the liquid bottle through an infusion tube, and then the liquid bottle enters the next process. During the infusion process of the infusion tube, the head of the infusion tube is easily attached to the inner wall of the head of the infusion tube due to the influence of tension. Since the droplets attached to the inner wall cannot fall into the liquid bottle in time, when the next liquid bottle enters the quantitative station or the liquid bottle enters the next process after the quantitative measurement, the droplets are easy to fall and drip on the surface of the liquid bottle or the surface of the workbench, causing pollution and affecting the subsequent removal of the liquid bottle. Therefore, it is very necessary to design a spray water quantitative device and a quantitative retrieval method. Summary of the invention

[0004] The object of the present invention is to provide a spray water quantitative device and a quantitative taking method to solve the problems raised in the above background technology.

[0005] In order to solve the above technical problems, the present invention provides the following technical solutions: a spray water quantitative device, comprising a chassis and a bottle body turntable arranged on the chassis, a quantitative frame is arranged on the chassis outside the bottle body turntable, a mounting frame is arranged on the quantitative frame, two upper material storage pipes are arranged on the top of the mounting frame, a material guide cavity is opened in the upper material storage pipe, the top of the upper material storage pipe is connected to an external liquid storage tank through a quantitative hose, and a lower material feeding outer pipe corresponding to the upper material storage pipe is arranged at the bottom of the mounting frame, and the lower material feeding outer pipe has a material guide cavity opened in the upper material storage pipe. The top of the upper material storage pipe is connected to an external liquid storage tank through a quantitative hose, and the bottom of the mounting frame is provided with a lower material feeding outer pipe corresponding to the upper material storage pipe. A lower feeding inner tube connected to the upper material storage tube is provided, a centrifugal mechanism for driving the lower feeding inner tube to rotate centrifugally is provided on the mounting frame, an air pump is provided on the mounting frame, and the air pump is connected to the jet disk provided on the upper part of the material guiding cavity, a heating mechanism for heating the surface of the lower feeding inner tube is provided on the lower feeding outer tube, and a picking mechanism is provided on the outer side of the bottle body turntable at one side of the quantitative frame, and the centrifugal mechanism, the air pump and the jet disk cooperate with the heating mechanism to reduce the droplets adhering to the inner wall of the lower feeding inner tube and facilitate the droplets to fall;

[0006] The centrifugal mechanism comprises a centrifugal motor arranged on a mounting frame, the output end of the centrifugal motor extends into the mounting frame and is connected to a driving wheel, transmission wheels are installed on both sides of the driving wheel through a transmission shaft, the top end of the lower feeding inner tube extends into the mounting frame and is connected to a driven wheel, and the transmission wheel is meshed with adjacent driving wheels and driven wheels;

[0007] The heating mechanism comprises a heat preservation cover arranged on the lower feeding outer tube, a heating tube is arranged inside the heat preservation cover, a heat conduction cover is arranged on the surface of the lower feeding inner tube inside the lower feeding outer tube, and a plurality of heat conduction columns are arranged on the heat conduction cover and extend into the heat preservation cover.

[0008] In a further embodiment, the inner wall of the lower feeding inner tube is arranged in a ramp shape, and the inner wall of the upper storage tube and the inner wall of the lower feeding inner tube are both covered with a polysiloxane or fluorocarbon waterproof coating.

[0009] In a further embodiment, a cleaning rack is provided on the outside of the bottle body turntable at a position adjacent to the quantitative rack, and a first adjusting cylinder is provided on the cleaning rack, and an output end of the first adjusting cylinder is connected to a lifting plate, and a rotating motor is provided on the lifting plate, and an output end of the rotating motor is connected to a mounting seat, and a drying mechanism for drying the bottle mouth is provided on the mounting seat.

[0010] In a further embodiment, the drying mechanism includes an adjusting frame arranged on a mounting base, a servo motor is provided on the adjusting frame, an output end of the servo motor extends into the adjusting frame and is connected to a bidirectional screw, and sliders are threadedly connected on the threaded sections of the bidirectional screw with opposite rotation directions, the sliders are connected to a moving block below the adjusting frame, and a drying head is provided at the bottom of the moving block.

[0011] In a further embodiment, the picking mechanism includes a cover mechanism, a screw cover mechanism and a grasping mechanism which are sequentially arranged on one side of the quantitative rack, wherein the cover mechanism includes a lifting module arranged on one side of the quantitative rack, the lifting module is provided with a translation module, the translation module is connected to the suction cup, and a bottle cap feeding tray which cooperates with the cover mechanism is provided on the outside of the chassis; the screw cover mechanism includes a second adjusting cylinder arranged on an adjacent side of the lifting module, the output end of the second adjusting cylinder is connected to an electric clamp, and a clamping rod is provided in the middle of the electric clamp; the grasping mechanism is arranged on a picking module on an adjacent side of the second adjusting cylinder, the picking module is connected to a grabbing claw, and a discharge transmission belt module which cooperates with the grabbing claw is provided on the outside of the chassis.

[0012] In a further embodiment, a fixing frame is provided adjacent to the other side of the lifting module, and a liquid level sensing rod is provided on the fixing frame.

[0013] In a further embodiment, a quantitative extraction method of a spray water quantitative device comprises the following steps;

[0014] S1: Place the liquid bottle on the bottle turntable, start the bottle turntable, and rotate the liquid bottle to the bottom of the quantitative rack;

[0015] S2: The liquid in the external liquid storage tank is transported to the upper storage tube through the quantitative hose. The centrifugal motor drives the driving wheel to rotate, and drives the driven wheel to rotate through the transmission wheel, thereby driving the lower feeding inner tube to rotate. The air pump works, and the liquid in the upper storage tube is jetted and pushed through the jet disk. The liquid in the upper storage tube enters the lower feeding inner tube for centrifugal feeding, and is transported to the liquid bottle through the discharge port of the lower feeding outer tube, reducing the droplets attached to the inner wall of the lower feeding inner tube. The heating tube works, and the heat-conducting column and the heat-conducting cover cooperate to appropriately increase the surface temperature of the lower feeding inner tube, so as to facilitate the falling of the droplets.

[0016] S3: The quantitative liquid bottle enters the next station, the first regulating cylinder pushes the lifting plate down, the servo motor drives the bidirectional screw to rotate, the slider drives the moving block to move, the drying head clamps the mouth of the liquid bottle, and the rotating motor drives the mounting seat to rotate to achieve the drying operation at the mouth of the liquid bottle;

[0017] S4: The lifting module and the translation module cooperate to suck the bottle caps on the bottle cap feeding tray through the suction cup, and then place them on the rotating liquid bottle;

[0018] S5: The second regulating cylinder pushes the electric clamp downward, and the bottle cap of the liquid bottle rotated to the bottom of the electric clamp is tightened by the tightening rod, and then the bottle cap is tightened by the electric clamp;

[0019] S6: The material picking module adjusts the height and front and rear positions of the material grabbing claws, clamps the liquid bottle rotated under the material grabbing claws and places it on the material discharging transmission belt module to achieve material picking.

[0020] Compared with the prior art, the beneficial effects achieved by the present invention are:

[0021] 1. Through the cooperation of the centrifugal mechanism, air pump and jet disc with the heating mechanism, the droplets adhering to the inner wall of the lower feeding inner tube are reduced and the droplets are convenient to fall;

[0022] 2. The lifting plate is pushed down by the first regulating cylinder, and the rotating motor drives the mounting seat to rotate, and cooperates with the drying mechanism to dry the mouth of the liquid bottle;

[0023] 3. Through the cooperation of the cover mechanism, the capping mechanism and the grasping mechanism, the quantitative liquid bottle is capped, clamped and placed on the discharge belt module to achieve object retrieval. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 , Figure 2 and Figure 3 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 4 yes Figure 2 Schematic diagram of the structure of region A;

[0026] Figure 5 It is a schematic diagram of the structure of the lower feeding outer tube and the lower feeding inner tube of the present invention;

[0027] Figure 6 It is a schematic diagram of the mounting seat structure of the present invention;

[0028] Figure 7 yes Figure 3 Schematic diagram of the structure of region B;

[0029] Figure 8 yes Figure 1 Schematic diagram of the C region structure;

[0030] The accompanying drawings are marked as: chassis 1, bottle body turntable 2, discharging transmission belt module 3, bottle cap feeding disc 4, quantitative frame 5, quantitative hose 6, mounting frame 7, upper storage tube 8, material guide cavity 9, air pump 10, jet disc 11, lower feeding outer tube 12, lower feeding inner tube 13, centrifugal motor 14, driving wheel 15, transmission wheel 16, driven wheel 17, insulation cover 18, heating tube 19, heat-conducting column 20, heat-conducting cover 21, cleaning frame 22, first adjusting cylinder 23, lifting plate 24, mounting seat 25, adjusting frame 26, rotating motor 27, servo motor 28, bidirectional screw 29, slider 30, moving block 31, drying head 32, fixed frame 33, liquid level sensing rod 34, lifting module 35, translation module 36, suction cup 37, second adjusting cylinder 38, electric clamp 39, tightening rod 40, material taking module 41, grabbing claw 42. DETAILED DESCRIPTION

[0031] In the following description, a large number of specific details are provided to provide a more thorough understanding of the present invention. However, it is apparent to those skilled in the art that the present invention can be implemented without one or more of these details. In other examples, in order to avoid confusion with the present invention, some technical features well known in the art are not described.

[0032] See also Figure 1-Figure 8 The present invention provides a technical solution: a spray water quantitative device, comprising a chassis 1 and a bottle body turntable 2 arranged on the chassis 1, a quantitative frame 5 is arranged on the chassis 1 outside the bottle body turntable 2, a mounting frame 7 is arranged on the quantitative frame 5, two upper storage pipes 8 are arranged on the top of the mounting frame 7, a material guide cavity 9 is opened in the upper storage pipe 8, the top of the upper storage pipe 8 is connected with an external liquid storage tank through a quantitative hose 6, a lower feeding outer pipe 12 corresponding to the upper storage pipe 8 is arranged at the bottom of the mounting frame 7, and a The lower feeding inner tube 13 and the mounting frame 7 are provided with a centrifugal mechanism for driving the lower feeding inner tube 13 to rotate centrifugally. The mounting frame 7 is provided with an air pump 10, and the air pump 10 is connected to the air jet disk 11 arranged on the upper part of the material guiding cavity 9. The lower feeding outer tube 12 is provided with a heating mechanism for heating the surface of the lower feeding inner tube 13. The outer side of the bottle body turntable 2 is located on one side of the quantitative frame 5 and a picking mechanism is provided. The centrifugal mechanism, the air pump 10 and the air jet disk 11 cooperate with the heating mechanism to reduce the droplets adhering to the inner wall of the lower feeding inner tube 13 and facilitate the falling of the droplets.

[0033] Through the above technical solution, the air pump 10 works, and the liquid entering the upper storage tube 8 is jetted through the jet disk 11, thereby accelerating the liquid to enter the lower feeding inner tube 13, and the lower feeding inner tube 13 is driven to rotate in the lower feeding outer tube 12 through the centrifugal mechanism, so that the liquid entering the lower feeding inner tube 13 is subjected to the centrifugal force and rotates and falls in the lower feeding inner tube 13. Compared with the existing straight material guide tube, the droplets attached to the inner wall of the lower feeding inner tube 13 are reduced, and the droplets are blown by the airflow to ensure that the droplets can fall into the liquid bottle in time. Through the setting of the heating mechanism, the lower feeding inner tube 13 is appropriately heated to ensure that the droplets fall quickly to prevent pollution.

[0034] The centrifugal mechanism includes a centrifugal motor 14 arranged on the mounting frame 7, the output end of the centrifugal motor 14 extends into the mounting frame 7 and is connected to the driving wheel 15, and transmission wheels 16 are installed on both sides of the driving wheel 15 through a transmission shaft. The top end of the lower feeding inner tube 13 extends into the mounting frame 7 and is connected to the driven wheel 17, and the transmission wheel 16 is meshed with the adjacent driving wheel 15 and the driven wheel 17.

[0035] Through the above technical solution, the centrifugal motor 14 drives the driving wheel 15 to rotate, and then the transmission wheel 16 drives the driven wheel 17 to rotate.

[0036] The heating mechanism includes a heat preservation cover 18 arranged on the lower feeding outer tube 12, a heating tube 19 is arranged inside the heat preservation cover 18, a heat conduction cover 21 is arranged on the surface of the lower feeding inner tube 13 inside the lower feeding outer tube 12, and a plurality of heat conduction columns 20 are arranged on the heat conduction cover 21 and extend into the heat preservation cover 18.

[0037] Through the above technical solution, heating is performed through the heating tube 19, the heat-insulating cover 18 has a heat-insulating effect, the heat is guided to the heat-conducting cover 21 through the heat-conducting column 20, and the surface of the lower feeding inner tube 13 is appropriately heated through heat transfer.

[0038] In a further embodiment, the inner wall of the lower feeding inner tube 13 is arranged in a ramp shape, and the inner wall of the upper storage tube 8 and the inner wall of the lower feeding inner tube 13 are both covered with a polysiloxane or fluorocarbon waterproof coating.

[0039] Through the above technical solution, the ramp is set to facilitate the falling of liquid, and the setting of the waterproof coating reduces the adhesion of droplets.

[0040] In a further embodiment, a cleaning rack 22 is provided on the outer side of the bottle body turntable 2 at a position adjacent to the quantitative rack 5, and a first adjusting cylinder 23 is provided on the cleaning rack 22, and an output end of the first adjusting cylinder 23 is connected to a lifting plate 24, and a rotating motor 27 is provided on the lifting plate 24, and an output end of the rotating motor 27 is connected to a mounting seat 25, and a drying mechanism for drying the bottle mouth is provided on the mounting seat 25.

[0041] Through the above technical solution, the first regulating cylinder 23 pushes the lifting plate 24 to move downward, and the rotating motor 27 drives the mounting seat 25 to rotate, and cooperates with the drying mechanism to perform drying operation on the mouth of the liquid bottle.

[0042] In a further embodiment, the drying mechanism includes an adjusting frame 26 arranged on a mounting base 25, a servo motor 28 is provided on the adjusting frame 26, an output end of the servo motor 28 extends into the adjusting frame 26 and is connected to a bidirectional screw 29, and sliders 30 are threadedly connected on the threaded sections of the bidirectional screw 29 with opposite rotation directions, the slider 30 is connected to a moving block 31 below the adjusting frame 26, and a drying head 32 is provided at the bottom of the moving block 31.

[0043] Through the above technical solution, the servo motor 28 drives the bidirectional screw 29 to rotate, and the slider 30 drives the moving block 31 to move, and the drying head 32 clamps the mouth of the liquid bottle.

[0044] In a further embodiment, the picking mechanism includes a cover mechanism, a capping mechanism and a grasping mechanism which are sequentially arranged on one side of the quantitative rack 5, wherein the cover mechanism includes a lifting module 35 arranged on one side of the quantitative rack 5, the lifting module 35 is provided with a translation module 36, the translation module 36 is connected to the suction cup 37, and a bottle cap feeding tray 4 which cooperates with the cover mechanism is provided on the outside of the chassis 1; the capping mechanism includes a second adjusting cylinder 38 arranged on an adjacent side of the lifting module 35, the output end of the second adjusting cylinder 38 is connected to an electric clamp 39, and a clamping rod 40 is provided in the middle of the electric clamp 39; the grasping mechanism is provided with a picking module 41 on an adjacent side of the second adjusting cylinder 38, the picking module 41 is connected to a grasping claw 42, and a discharge transmission belt module 3 which cooperates with the grasping claw 42 is provided on the outside of the chassis 1.

[0045] Through the above technical scheme, the lifting module 35 and the translation module 36 cooperate to suck the bottle caps on the bottle cap feeding tray 4 through the suction cup 37, and then place them on the rotating liquid bottle. The second adjusting cylinder 38 pushes the electric clamp 39 to move downward, and the bottle caps of the liquid bottles rotated to the bottom of the electric clamp 39 are tightened by the clamping rod 40, and then the bottle caps are tightened by the electric clamp 39. The material picking module 41 adjusts the height and front and rear position of the grabbing claw 42, clamps the liquid bottle rotated to the bottom of the grabbing claw 42 and places it on the discharge transmission belt module 3 to achieve object picking.

[0046] In a further embodiment, a fixing frame 33 is disposed adjacent to the other side of the lifting module 35 , and a liquid level sensing rod 34 is disposed on the fixing frame 33 .

[0047] Through the above technical solution, the liquid level in the liquid bottle is sensed and detected by the liquid level sensing rod 34.

[0048] Working principle: place the liquid bottle on the bottle body turntable 2, start the bottle body turntable 2, and rotate to drive the liquid bottle to the bottom of the quantitative rack 5; the liquid in the external liquid storage tank is transported to the upper storage tube 8 through the quantitative hose 6, the centrifugal motor 14 drives the driving wheel 15 to rotate, and drives the driven wheel 17 to rotate through the transmission wheel 16, and then drives the lower feeding inner tube 13 to rotate, the air pump 10 works, and the liquid in the upper storage tube 8 is jetted and pushed through the jet disk 11, and the liquid in the upper storage tube 8 enters the lower feeding inner tube 13 for centrifugal feeding, and is transported to the liquid bottle through the discharge port of the lower feeding outer tube 12, reducing the droplets attached to the inner wall of the lower feeding inner tube 13, and the heating tube 19 works, and the heat-conducting column 20 and the heat-conducting cover 21 cooperate to appropriately increase the surface temperature of the lower feeding inner tube 13 to facilitate the falling of the droplets; the quantitative liquid bottle enters the next station, and the first adjustment The cylinder 23 pushes the lifting plate 24 to move downward, the servo motor 28 drives the bidirectional screw 29 to rotate, and the moving block 31 is driven to move through the slider 30, and the liquid bottle mouth is clamped by the drying head 32, and the rotating motor 27 drives the mounting seat 25 to rotate, so as to realize the drying operation at the mouth of the liquid bottle; through the cooperation of the lifting module 35 and the translation module 36, the bottle cap on the bottle cap feeding tray 4 is sucked by the suction cup 37, and then placed on the rotating liquid bottle; the second adjusting cylinder 38 pushes the electric clamp 39 to move downward, and the liquid bottle cap rotated to the bottom of the electric clamp 39 is tightened by the tightening rod 40, and then the bottle cap is tightened by the electric clamp 39; the material taking module 41 adjusts the height and front and rear position of the grabbing claw 42, and the liquid bottle rotated to the bottom of the grabbing claw 42 is clamped and placed on the discharging transmission belt module 3 to realize the object taking.

[0049] The preferred embodiments of the present invention are described in detail above in conjunction with the accompanying drawings; however, the present invention is not limited to the specific details in the above embodiments; within the technical concept of the present invention, various equivalent transformations can be made to the technical scheme of the present invention, and these equivalent transformations all belong to the protection scope of the present invention.

Claims

1. A spray water quantitative device, comprising a housing (1) and a bottle body turntable (2) arranged on the housing (1), characterized in that: A quantitative frame (5) is provided on the chassis (1) outside the bottle body turntable (2), a mounting frame (7) is provided on the quantitative frame (5), two upper material storage pipes (8) are provided on the top of the mounting frame (7), a material guiding cavity (9) is provided in the upper material storage pipes (8), the top of the upper material storage pipes (8) is connected to an external liquid storage tank through a quantitative hose (6), a lower material feeding outer pipe (12) corresponding to the upper material storage pipes (8) is provided at the bottom of the mounting frame (7), a lower material feeding inner pipe (13) connected to the upper material storage pipes (8) is provided in the lower material feeding outer pipe (12), and the mounting frame (7) A centrifugal mechanism for driving the lower feeding inner tube (13) to rotate centrifugally is provided on the mounting frame (7), an air pump (10) is provided on the mounting frame (7), and the air pump (10) is connected to an air jet disk (11) provided on the upper part of the material guiding cavity (9). A heating mechanism for heating the surface of the lower feeding inner tube (13) is provided on the lower feeding outer tube (12), and a picking mechanism is provided on the outer side of the bottle body turntable (2) and on one side of the quantitative frame (5). The centrifugal mechanism, the air pump (10) and the air jet disk (11) cooperate with the heating mechanism to reduce the droplets adhering to the inner wall of the lower feeding inner tube (13) and facilitate the droplets to fall. The centrifugal mechanism comprises a centrifugal motor (14) arranged on a mounting frame (7), the output end of the centrifugal motor (14) extends into the mounting frame (7) and is connected to a driving wheel (15), both sides of the driving wheel (15) are provided with transmission wheels (16) via transmission shafts, the top end of the lower feeding inner tube (13) extends into the mounting frame (7) and is connected to a driven wheel (17), and the transmission wheel (16) is meshed with adjacent driving wheels (15) and driven wheels (17); The temperature raising mechanism comprises a heat-insulating cover (18) arranged on the lower feeding outer tube (12), a heating tube (19) being arranged inside the heat-insulating cover (18), a heat-conducting cover (21) being arranged on the surface of the lower feeding inner tube (13) inside the lower feeding outer tube (12), and a plurality of heat-conducting columns (20) being arranged on the heat-conducting cover (21) and extending into the heat-insulating cover (18).

2. A spray water quantitative device according to claim 1, characterized in that: The inner wall of the lower feeding inner tube (13) is arranged in a ramp shape, and the inner wall of the upper material storage tube (8) and the inner wall of the lower feeding inner tube (13) are both covered with a polysiloxane or fluorocarbon waterproof coating.

3. A spray water quantitative device according to claim 1, characterized in that: A cleaning rack (22) is provided outside the bottle body turntable (2) at a position adjacent to the quantitative rack (5); a first regulating cylinder (23) is provided on the cleaning rack (22); an output end of the first regulating cylinder (23) is connected to a lifting plate (24); a rotating motor (27) is provided on the lifting plate (24); an output end of the rotating motor (27) is connected to a mounting seat (25); and a drying mechanism for drying the bottle mouth is provided on the mounting seat (25).

4. A spray water quantitative device according to claim 3, characterized in that: The drying mechanism comprises an adjustment frame (26) arranged on a mounting seat (25), a servo motor (28) being arranged on the adjustment frame (26), an output end of the servo motor (28) extending into the adjustment frame (26) and connected to a bidirectional screw (29), a slider (30) being threadedly connected to the threaded sections of the bidirectional screw (29) with opposite rotation directions, the slider (30) being connected to a moving block (31) below the adjustment frame (26), and a drying head (32) being arranged at the bottom of the moving block (31).

5. A spray water quantitative device according to claim 1, characterized in that: The object-taking mechanism comprises a cover mechanism, a capping mechanism and a grasping mechanism which are sequentially arranged on one side of the quantitative frame (5), wherein the cover mechanism comprises a lifting module (35) arranged on one side of the quantitative frame (5), a translation module (36) being arranged on the lifting module (35), the translation module (36) being connected to a suction cup (37), and a bottle cap feeding tray (4) cooperating with the cover mechanism is arranged on the outer side of the chassis (1); the capping mechanism comprises a second regulating cylinder (38) arranged on an adjacent side of the lifting module (35), the output end of the second regulating cylinder (38) being connected to an electric clamp (39), and a clamping rod (40) being arranged in the middle of the electric clamp (39); the grasping mechanism comprises a material taking module (41) arranged on an adjacent side of the second regulating cylinder (38), the material taking module (41) being connected to a material grasping claw (42), and a material discharging transmission belt module (3) cooperating with the material grasping claw (42) is arranged on the outer side of the chassis (1).

6. A spray water quantitative device according to claim 5, characterized in that: A fixing frame (33) is provided adjacent to the other side of the lifting module (35), and a liquid level sensing rod (34) is provided on the fixing frame (33).

7. The quantitative extraction method of the spray water quantitative equipment according to claim 1, characterized in that: The method comprises the following steps: S1: placing a liquid bottle on the bottle turntable (2), starting the bottle turntable (2), and rotating the liquid bottle to the bottom of the quantitative rack (5); S2: The liquid in the external liquid storage tank is transported to the upper storage tube (8) through the quantitative hose (6), the centrifugal motor (14) drives the driving wheel (15) to rotate, and drives the driven wheel (17) to rotate through the transmission wheel (16), thereby driving the lower feeding inner tube (13) to rotate, and the air pump (10) works to perform jet pushing operation on the liquid in the upper storage tube (8) through the jet disc (11), and the liquid in the upper storage tube (8) enters the lower feeding inner tube (13) for centrifugal feeding, and is transported to the liquid bottle through the discharge port of the lower feeding outer tube (12), thereby reducing the droplets adhering to the inner wall of the lower feeding inner tube (13), and the heating tube (19) works, and the heat conductive column (20) and the heat conductive cover (21) cooperate to appropriately increase the surface temperature of the lower feeding inner tube (13), so as to facilitate the falling of the droplets; S3: After the quantitative liquid bottle enters the next station, the first regulating cylinder (23) pushes the lifting plate (24) to move downward, the servo motor (28) drives the bidirectional screw (29) to rotate, and the slider (30) drives the moving block (31) to move, and the drying head (32) clamps the mouth of the liquid bottle, and the rotary motor (27) drives the mounting seat (25) to rotate, thereby achieving the drying operation at the mouth of the liquid bottle; S4: by cooperating with the lifting module (35) and the translation module (36), the bottle caps on the bottle cap feeding tray (4) are sucked by the suction cup (37) and then placed on the rotating liquid bottle; S5: the second regulating cylinder (38) pushes the electric clamp (39) downward, and the bottle cap of the liquid bottle rotated to the bottom of the electric clamp (39) is tightened by the tightening rod (40), and then the bottle cap is tightened by the electric clamp (39); S6: The material taking module (41) adjusts the height and front-to-rear position of the material grabbing claw (42), clamps the liquid bottle rotated to the bottom of the material grabbing claw (42) and places it on the material discharging transmission belt module (3), thereby taking the object.

Citation Information

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