Textile dye mixing device

By using a rotating sleeve and an external stirring blade in a dye mixing device, the sedimentation problem of solid raw materials is solved, efficient mixing of liquid and solid raw materials is achieved, and the mixing effect is enhanced.

CN120618308BActive Publication Date: 2025-10-21SHANDONG ZHENQIAO WARP KNITTING CO LTD
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Patent Information

Application Number
CN202511120586.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-12
Publication Date
2025-10-21
Estimated Expiration
2045-08-12

AI Technical Summary

Technical Problem

In the prior art, solid raw materials are easily sedimented in liquid raw materials, resulting in a problem of reduced mixing efficiency.

Method used

The dye mixing device includes a containing mechanism, a stirring mechanism and a heating mechanism. The rotating part drives the rotating sleeve and the external stirring blade to stir, and the guide groove and the piston part are used to change the size of the containing cavity to suck in and discharge liquid and solid raw materials. At the same time, the built-in stirring blade is used for re-mixing.

Benefits of technology

The mixing efficiency of liquid and solid raw materials is improved, and the mixing effect is further enhanced through the cooperation of heating and stirring mechanisms.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of textile dye production, and particularly discloses a textile dye mixing device, which comprises a rotating part, a piston part, a rotating sleeve, a protrusion and an external stirring blade, the rotating part is rotationally connected in a mounting cylinder, the rotating sleeve is limitingly sleeved on the rotating part, the piston part is connected on the rotating part and is inserted with the rotating sleeve, a containing cavity is formed between the piston part and the rotating sleeve, a guide groove is arranged on the inner wall of the mounting cylinder, the protrusion is connected on the rotating sleeve and is limitingly and slidingly connected with the guide groove, the rotating part can drive the rotating sleeve to rotate and drive the protrusion to limitingly slide in the guide groove, so that the rotating sleeve slides on the rotating part, the size of the containing cavity is changed, and the external stirring blade is connected on the rotating sleeve; the textile dye mixing device can suck the solid raw materials and the liquid raw materials on the bottom of a containing jar into the containing cavity or discharge the solid raw materials and the liquid raw materials in the containing cavity.
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Description

Technical Field

[0001] The invention relates to the technical field of textile dye production, in particular to a textile dye mixing device. Background Art

[0002] Textile dyes are organic compounds that can color fiber materials and achieve color presentation by combining with fibers (physical adsorption or chemical bonding). In the dye processing process, stirring is a crucial operation link. Its purpose is to achieve uniform mixing, efficient reaction and stable dispersion of multiple materials through mechanical action. Its role runs through the entire production process and directly affects product quality, production efficiency and safety. When processing the dye, the liquid raw material with a set formula ratio will first be transported to the mixing device, and then the solid raw material with a set formula ratio will be added to the liquid raw material. The stirring element in the mixing device is then started, and the stirring element stirs and mixes the liquid and solid raw materials to form textile dyes.

[0003] The Chinese patent document with the announcement number CN117138678B discloses a liquid dye mixing machine for textiles, including a dye mixing cylinder and a connecting cylinder, wherein the connecting cylinder is fixedly mounted on the top of the dye mixing cylinder and is connected to the dye mixing cylinder through a connecting port, and a support plate is fixedly mounted on the connecting cylinder, and a dye stock barrel is fixedly mounted on the support plate; a dye mixing mechanism, wherein the dye mixing mechanism is respectively connected to the connecting cylinder and the support plate, and is connected to the dye stock barrel, wherein the dye mixing mechanism includes a rotary drive component, an intermittent discharge component, a ratio adjustment component and a batch mixing component; the rotary drive component is connected to the support plate, and the intermittent discharge component is connected to the ratio adjustment component and the batch mixing component; the rotary drive component is connected to the support plate, and the intermittent discharge component is connected to the ratio adjustment component and the batch mixing component; The material assembly is respectively connected to the connecting cylinder and the rotary drive assembly, the proportion adjustment assembly is respectively connected to the connecting cylinder and the intermittent discharge assembly, the batch mixing assembly is located in the dye mixing cylinder, and is connected to the intermittent discharge assembly; the rotary drive assembly includes: a drive motor, the drive motor is fixedly mounted on the support plate; a drive wheel group, the drive wheel group is located in the connecting cylinder and is rotatably connected to the support plate, and the drive wheel group is also fixedly connected to the output end of the drive motor; and a driven wheel 1 and a driven wheel 2, the driven wheel 1 and the driven wheel 2 are both rotatably connected to the inner wall of the connecting cylinder, and the driven wheel 1 and the driven wheel 2 are also meshed with the drive wheel group.

[0004] When mixing liquid dyes for textiles, first, the entire mixing equipment can be connected to the wall or other components by bolts through the provided mounting seat to ensure the stability of the equipment during the entire dye mixing operation, and different dye slurries can be added to the two dye slurry barrels through the provided feeding port. Then, the rotary drive component is started to drive the intermittent discharge component to rotate in the connecting barrel. During the rotation of the intermittent discharge component, it will contact the proportion adjustment component at intervals. During the contact between the two, a part of the dye slurry in the dye slurry barrel can flow into the connecting barrel through the intermittent discharge component, and under the action of the gravity of the dye slurry, a part of the preliminarily mixed dye slurry enters the dye mixing tank. During the rotation of the intermittent discharge component, it will also drive the batch mixing component to rotate in the dye mixing tank to fully mix the part of the dye slurry that first enters the dye mixing tank. The cycle is repeated in sequence, and the entire dye slurry in the dye slurry barrel can be discharged into the dye mixing tank in batches.

[0005] However, the above patent document still has the following deficiencies: after the solid raw material is put into the liquid raw material, since the density of the solid raw material is usually greater than the density of the liquid raw material, the solid raw material will naturally sink in the liquid raw material under the action of gravity. When the solid raw material is not sufficiently dispersed or the solid raw material is too large, the tendency of the solid raw material to settle in the liquid raw material will be aggravated. Excessive solid raw material will accumulate on the inner bottom wall of the mixing device, which will easily reduce the mixing efficiency of the liquid raw material and the solid raw material. Summary of the Invention

[0006] The present invention provides a textile dye mixing device, which aims to solve the problem in the related art that excessive solid raw materials are accumulated on the inner bottom wall of the mixing device, which easily reduces the mixing efficiency of liquid raw materials and solid raw materials.

[0007] The textile dye mixing device of the present invention includes a filling mechanism and a stirring mechanism. The stirring mechanism includes a mounting cylinder and a stirring member. The mounting cylinder is connected to the filling mechanism. The stirring member includes a rotating portion, a piston portion, a rotating sleeve, a protrusion and an external stirring blade. The rotating portion is rotatably connected to the mounting cylinder. The rotating sleeve limiting sleeve is arranged on the rotating portion. The piston portion is connected to the rotating portion and is plugged into the rotating sleeve. A filling cavity is formed between the piston portion and the rotating sleeve. A guide groove is provided on the inner wall of the mounting cylinder. The protrusion is connected to the rotating sleeve and is limitedly slidably connected to the guide groove. The rotating portion can drive the rotating sleeve to rotate and drive the protrusion to limit and slide in the guide groove so that the rotating sleeve slides on the rotating portion, changing the size of the filling cavity, so that the solid raw materials and liquid raw materials on the bottom of the filling tank can be sucked into the filling cavity, or the solid raw materials and liquid raw materials in the filling cavity can be discharged outwardly. The external stirring blade is connected to the rotating sleeve.

[0008] Beneficial effect: When producing dyes, the liquid raw materials and the solid raw materials are first put into the containing mechanism, and then the stirring mechanism is started, so that the rotating part drives the rotating sleeve to rotate, and when the rotating sleeve rotates, it drives the external stirring blades, so that the external stirring blades stir and mix the liquid raw materials and the solid raw materials in the containing tank. When the rotating sleeve rotates, it can drive the protrusions on the outside of the rotating sleeve to slide within the guide groove, so that the rotating sleeve slides within the limit of the rotating part. At this time, the size of the containing cavity is changed under the action of the piston part, so that the solid raw materials and liquid raw materials on the bottom of the containing tank can be sucked into the containing cavity, or the solid raw materials and liquid raw materials sucked into the containing cavity can be discharged outward, thereby improving the mixing efficiency of the liquid raw materials and the solid raw materials.

[0009] Preferably, the rotating part is connected to a guide part, and the rotating sleeve limiting sleeve is arranged on the guide part.

[0010] The effect thereof is that the guide portion can guide the rotating sleeve, so that when the rotating portion rotates, the rotating sleeve can be driven to rotate synchronously.

[0011] Preferably, the piston portion is connected to a connecting rod, and the connecting rod is connected to the guide portion.

[0012] The effect is that the piston part can be supported and connected by the connecting rod.

[0013] Preferably, a built-in stirring blade is connected to the containing cavity.

[0014] The effect is that the solid raw materials and liquid raw materials on the bottom of the container can be sucked into the container cavity through the built-in stirring blades, or when the solid raw materials and liquid raw materials sucked into the container cavity are discharged outward, the solid raw materials and liquid raw materials are stirred and mixed again, thereby further improving the mixing efficiency of the solid raw materials and liquid raw materials.

[0015] Preferably, the piston portion is made of rubber material.

[0016] Preferably, the guide groove is in the shape of an inclined ellipse.

[0017] The effect is that the projection can be guided by the guide groove in the inclined elliptical shape so that the rotating sleeve can move back and forth.

[0018] Preferably, the protrusion is cylindrical.

[0019] The effect is that the cylindrical protrusion can avoid the protrusion from being stuck when sliding in the guide groove, so that the protrusion can slide smoothly in the guide groove.

[0020] Preferably, the containing mechanism is connected to a mounting seat, the mounting cylinder is hinged in the mounting seat, an elastic part is connected between the mounting cylinder and the containing mechanism, and the stirring mechanism further includes a pushing member connected between the rotating sleeve and the containing mechanism.

[0021] The effect is that when the rotating sleeve rotates, the pushing member can push the mounting cylinder and the stirring member to swing, thereby changing the stirring position of the external stirring blade and the position of the containing cavity for sucking or discharging the solid raw materials and liquid raw materials at the bottom of the containing mechanism, so as to enhance the mixing effect between the liquid raw materials and the solid raw materials and improve the mixing efficiency of the liquid raw materials and the solid raw materials.

[0022] Preferably, the pushing member includes a pushing portion and a fixing portion, the pushing portion is connected to the rotating sleeve, and the fixing portion is connected to the containing mechanism.

[0023] The effect is that when the rotating sleeve rotates, the pushing member rotates, and when the pushing member rotates, it can apply a pushing force to the fixed part. At this time, since the fixed part cannot move, the pushing part can drive the rotating sleeve and the mounting tube to swing under the action of the mounting seat.

[0024] Preferably, the pushing portion is vortex-shaped, and has an arc-shaped pushing surface. The pushing surface has a vertex position and a low point position, and the radius of the pushing surface gradually increases from the low point position to the vertex position.

[0025] The beneficial effects of the present invention are:

[0026] 1. During the dye production process, the driving source is started, and the driving source drives the rotating part to rotate. When the rotating part rotates, the guide part drives the rotating sleeve to rotate, thereby driving the external stirring blade to stir the liquid material and solid material contained in the containing tank. During the rotation of the rotating sleeve, the protrusion slides in the guide groove. At this time, under the guidance of the guide groove, the rotating sleeve moves back and forth in the direction of approaching and moving away from the driving source under the guidance of the guide part. Under the action of the piston part, the size of the containing cavity is changed, thereby sucking the liquid raw material and solid raw material contained at the bottom of the containing tank into the containing cavity, or discharging the liquid raw material and solid raw material in the containing cavity outward, thereby improving the mixing efficiency of the liquid raw material and the solid raw material.

[0027] 2. When the liquid raw materials and solid raw materials at the bottom of the containing tank are sucked into the containing cavity, or when the liquid raw materials and solid raw materials in the containing cavity are discharged outward, the liquid raw materials and solid raw materials can be stirred and mixed again by the built-in stirring blades in the containing cavity, thereby improving the mixing efficiency of the liquid raw materials and solid raw materials.

[0028] 3. Under the pulling force of the elastic part, the fixed part is driven to pass through the notch on the mounting tube and contact the arc-shaped surface on the pushing part. When the rotating sleeve rotates, the pushing part is driven to rotate, so that the contact position between the pushing part and the fixed part gradually moves from the low point position of the arc-shaped surface to the top position, so that the rotating sleeve drives the mounting tube to flip in the direction away from the fixed part, thereby changing the stirring position of the external stirring blade and the position of the suction or discharge of the solid raw material and the liquid raw material at the bottom of the holding tank by the holding chamber, so as to increase the range of the stirring member to reciprocately suck and discharge the liquid raw material and the solid raw material at the bottom of the holding tank, further enhance the mixing effect of the liquid raw material and the solid raw material, and improve the mixing efficiency of the liquid raw material and the solid raw material.

[0029] 4. Hot water is transported to the hot water pipe through the water supply equipment, and cold water is transported to the cold water pipe. The cold water in the cold water pipe enters the hot water pipe and mixes with the hot water in the hot water pipe, thereby controlling the temperature of the hot water in the hot water pipe. The hot water in the hot water pipe is then transported to the heating ring, which heats the liquid raw materials and solid raw materials in the tank. The hot water in the heating ring is then transported back to the external water supply equipment through the return pipe to improve the mixing efficiency of the liquid raw materials and the solid raw materials.

[0030] 5. The hot water is transported to the inner cavity of the container through the water supply equipment through the water pipe, and the hot water in the inner cavity is transported back to the external water supply equipment through the circulation pipe, thereby realizing the circulation of hot water. The hot water can heat the container, and then the liquid raw materials and solid raw materials heated by the heating mechanism in the container are kept warm, so as to improve the mixing efficiency of the liquid raw materials and the solid raw materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is a main structural schematic diagram of the present invention.

[0032] Figure 2 It is a schematic diagram of the main cross-sectional structure of the present invention.

[0033] Figure 3 It is a schematic diagram of the main cross-sectional structure of the stirring mechanism of the present invention.

[0034] Figure 4 It is a schematic cross-sectional three-dimensional structural diagram of the stirring mechanism of the present invention.

[0035] Figure 5 It is a schematic diagram of the three-dimensional structure of the pushing member of the present invention.

[0036] Figure 6 It is a schematic diagram of the main cross-sectional structure of the stirring member of the present invention.

[0037] Reference numerals:

[0038] 1. Container mechanism; 11. Container tank; 111. Inner cavity; 12. Support legs; 13. Discharge pipe; 2. Water pipe; 3. Heating mechanism; 31. Heating ring; 32. Hot water pipe; 33. Cold water pipe; 34. Reflux pipe; 4. Stirring mechanism; 41. Mounting seat; 42. Mounting cylinder; 421. Guide groove; 422. Notch; 43. Elastic portion; 44. Driving source; 45. Stirring element; 451. Rotating portion; 452. Guide portion; 453. Connecting rod; 454. Piston portion; 455. Rotating sleeve; 456. Protrusion; 457. Container cavity; 458. External stirring blade; 459. Internal stirring blade; 46. Pushing element; 461. Pushing portion; 462. Fixed portion. DETAILED DESCRIPTION

[0039] The embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to be used to explain the present invention, but should not be understood as limiting the present invention.

[0040] like Figures 1 to 6 As shown, the textile dye mixing device of the present invention includes a containing mechanism 1, a water pipe 2, a heating mechanism 3 and a stirring mechanism 4. The containing mechanism 1 is used to contain liquid raw materials and solid raw materials. The water pipe 2 is connected to the containing mechanism 1 and can be connected to an external water supply device (the external water supply device is prior art, not shown in the figure, and will not be described in detail here). When the external water supply device is started, hot water can be transported into the containing mechanism 1 through the water pipe 2, thereby heating the containing mechanism 1 so that the containing mechanism 1 can keep the liquid raw materials and solid raw materials warm. The heating mechanism 3 is connected to the containing mechanism 1 and is connected to the external water supply device. Hot water is introduced into the heating mechanism 3 through the external water supply device to heat the liquid raw materials and solid raw materials to improve the mixing efficiency of the liquid raw materials and the solid raw materials. The stirring mechanism 4 is connected to the containing mechanism 1. The liquid raw materials and solid raw materials in the containing mechanism 1 can be stirred and mixed by the stirring mechanism 4, thereby mixing the liquid raw materials and the solid raw materials to form a dye.

[0041] When producing dyes, liquid raw materials and solid raw materials are transported to the containing mechanism 1 in turn, and the external water supply equipment is started to transport hot water to the heating mechanism 3. The heating mechanism 3 heats the liquid raw materials and solid raw materials in the containing mechanism 1. At the same time, the stirring mechanism 4 is started to stir and mix the liquid raw materials and solid raw materials in the containing mechanism 1 until the liquid raw materials and solid raw materials in the containing mechanism 1 are mixed to form dyes. During this process, hot water can also be transported to the containing mechanism 1 through the water pipe 2 by the external water supply equipment, thereby keeping the liquid raw materials and solid raw materials heated by the heating mechanism 3 in the containing mechanism 1 warm, so as to improve the mixing efficiency between the liquid raw materials and the solid raw materials.

[0042] like Figure 1 and Figure 2 As shown, the filling mechanism 1 includes a filling tank 11, a support leg 12 and a discharge pipe 13. The filling tank 11 can be used to hold liquid raw materials and solid raw materials. The support leg 12 is connected to the bottom of the filling tank 11, and the filling tank 11 can be supported at a certain height by the support leg 12. The discharge pipe 13 is connected to the bottom of the filling tank 11, and the dye formed by mixing the liquid raw material and the solid raw material can be discharged through the discharge pipe 13. A control valve is installed on the discharge pipe 13, and the discharge pipe 13 can be controlled to be opened or closed by the control valve. The inner wall of the filling tank 11 is provided with an inner cavity 111 for holding hot water. The water pipe 2 is connected to the bottom of the filling tank 11. It is connected to the holding tank 11, and the water pipe 2 is connected to the inner cavity 111. A circulation pipe is connected to the holding tank 11. The end of the circulation pipe away from the holding tank 11 is connected to an external water supply device (not shown in the figure). When the external water supply device is started, hot water can be transported to the inner cavity 111 through the water pipe 2, and the hot water in the inner cavity 111 is transported back to the external water supply device by the circulation pipe, thereby realizing the circulation of hot water. The hot water can heat the holding tank 11, and then the liquid raw material and solid raw material heated by the heating mechanism 3 in the holding tank 11 are kept warm, thereby improving the mixing efficiency of the liquid raw material and the solid raw material in the holding tank 11.

[0043] When producing dyes, liquid raw materials and solid raw materials are sequentially conveyed into the holding tank 11, and the external water supply equipment is started to convey hot water into the heating mechanism 3. The heating mechanism 3 heats the liquid raw materials and solid raw materials in the holding tank 11. At the same time, the stirring mechanism 4 is started to stir and mix the liquid raw materials and solid raw materials in the holding tank 11 until the liquid raw materials and solid raw materials in the holding tank 11 are stirred and mixed to form dyes. During this process, the external water supply equipment conveys hot water into the inner cavity 111 on the holding tank 11 through the water pipe 2, and the hot water in the inner cavity 111 is re-transported to the external water supply equipment through the circulation pipe, thereby realizing the circulation of hot water. The hot water can heat the holding tank 11, and then keep the liquid raw materials and solid raw materials heated by the heating mechanism 3 in the holding tank 11 warm. After the liquid raw materials and solid raw materials in the holding tank 11 are stirred and mixed into dyes, the control valve is opened to discharge the formed dyes through the discharge pipe 13.

[0044] like Figure 1 and Figure 2As shown, the heating mechanism 3 includes a heating ring 31, a hot water pipe 32, a cold water pipe 33 and a return pipe 34. The heating ring 31 is connected to the container 11, the hot water pipe 32 and the return pipe 34 are both connected to the heating ring 31, and the cold water pipe 33 is connected to the hot water pipe 32. The hot water pipe 32, the cold water pipe 33 and the return pipe 34 are all connected to an external water supply device. Starting the external water supply device can transport hot water to the hot water pipe 32 and transport cold water to the cold water pipe 33. After the cold water in the cold water pipe 33 enters the hot water pipe 32, it can be mixed with the hot water in the hot water pipe 32, thereby controlling the temperature of the hot water in the hot water pipe 32. After the hot water enters the heating ring 31, the heating ring 31 heats the liquid raw material and the solid raw material in the container 11, thereby accelerating the mixing efficiency between the liquid raw material and the solid raw material, and the hot water in the heating ring 31 can be transported back to the external water supply device through the return pipe 34 to realize the recycling of hot water.

[0045] Start the external water supply equipment, transport hot water to the hot water pipe 32, and transport cold water to the cold water pipe 33. The cold water in the cold water pipe 33 enters the hot water pipe 32 and mixes with the hot water in the hot water pipe 32, thereby controlling the temperature of the hot water in the hot water pipe 32. The hot water in the hot water pipe 32 is then transported to the heating ring 31, and the heating ring 31 heats the liquid raw materials and solid raw materials in the filling tank 11. The hot water in the heating ring 31 is then transported back to the external water supply equipment through the reflux pipe 34, realizing the recycling of hot water.

[0046] like Figures 1 to 6 As shown, the stirring mechanism 4 includes a mounting seat 41, a mounting cylinder 42, an elastic portion 43, a driving source 44, a stirring member 45 and a pushing member 46. The mounting seat 41 is connected to the upper end of the inner wall of the holding tank 11, the mounting cylinder 42 is hinged in the mounting seat 41, and the elastic portion 43 is connected between the mounting cylinder 42 and the holding tank 11 to pull the mounting seat 41 to reset. The stirring member 45 is connected to the mounting cylinder 42 to stir the liquid raw material and the solid raw material contained in the holding tank 11, and during the stirring process, the liquid raw material and the solid raw material contained in the bottom of the holding tank 11 can be reciprocally sucked and discharged to enhance the mixing effect of the liquid raw material and the solid raw material, thereby improving the mixing effect of the liquid raw material and the solid raw material. The mixing efficiency of liquid raw materials and solid raw materials is improved. The driving source 44 is connected to the top of the mounting cylinder 42. The driving source 44 is a motor. The output end of the driving source 44 is connected to the stirring member 45. The driving source 44 can provide power for the operation of the stirring member 45. The pushing member 46 is connected to the containing tank 11 and the stirring member 45. During the operation of the stirring member 45, the pushing member 46 can enable the stirring member 45 to drive the mounting cylinder 42 to swing on the mounting seat 41, so as to increase the range of the stirring member 45 to reciprocately suck and discharge the liquid raw materials and solid raw materials contained in the bottom of the containing tank 11, thereby further enhancing the mixing effect of the liquid raw materials and the solid raw materials.

[0047] When the liquid raw materials and solid raw materials in the container 11 are stirred and mixed, the driving source 44 is started, and the driving source 44 drives the stirring member 45 to operate, so that the stirring member 45 can stir and mix the liquid raw materials and the solid raw materials, and can also reciprocately suck and discharge the liquid raw materials and solid raw materials contained in the bottom of the container 11. At the same time, under the action of the pushing member 46, the stirring member 45 drives the mounting cylinder 42 to swing in a hinged manner on the mounting seat 41.

[0048] Continue to refer Figures 1 to 6 As shown, the stirring member 45 includes a rotating portion 451, a guide portion 452, a connecting rod 453, a piston portion 454, a rotating sleeve 455, a protrusion 456, an external stirring blade 458 and a built-in stirring blade 459. The rotating portion 451 is rotatably connected to the mounting cylinder 42. The rotating portion 451 is connected to the output end of the driving source 44. Starting the driving source 44 can drive the rotating portion 451 to rotate. The guide portion 452 is connected to the end of the rotating portion 451 away from the driving source 44. The rotating sleeve 455 is sleeved on the guide portion 45 2, the guide portion 452 is a quadrangular prism, and the guide portion 452 can guide the rotating sleeve 455 so that when the rotating sleeve 455 rotates, the guide portion 452 can drive the rotating sleeve 455 to rotate. The interior of the mounting cylinder 42 is provided with a guide groove 421, and the guide groove 421 is inclined elliptical. The protrusion 456 is connected to the outside of the rotating sleeve 455, and the protrusion 456 is slidably connected in the guide groove 421. The protrusion 456 is cylindrical, and the guide portion 452 drives the rotating sleeve 455 to rotate. When the rotating sleeve 455 is rotated, the protrusion 456 can drive the rotating sleeve 455 to move back and forth in the direction of approaching and moving away from the driving source 44 in the guiding direction of the guide part 452 through the inclined elliptical guide groove 421. The connecting rod 453 is connected to the end of the guide part 452 away from the rotating part 451, and the piston part 454 is connected to the end of the connecting rod 453 away from the guide part 452 and plugged into the interior of the rotating sleeve 455. The piston part 454 is made of rubber material, and a space is formed between the piston part 454 and the interior of the rotating sleeve 455. A holding chamber 457 is formed with an opening tilted downward. When the rotating sleeve 455 reciprocates in the direction of approaching and moving away from the driving source 44 under the guidance of the guide portion 452, the piston portion 454 in the holding chamber 457 can change the size of the holding chamber 457, thereby sucking the liquid raw material and solid raw material contained in the bottom of the holding tank 11 into the holding chamber 457, or discharging the liquid raw material and solid raw material in the holding chamber 457 to the outside, thereby improving the mixing efficiency of the liquid raw material and the solid raw material.

[0049] The external stirring blade 458 is connected to one end of the rotating sleeve 455 extending out of the mounting cylinder 42, so that when the rotating sleeve 455 rotates, the liquid raw material and solid raw material contained in the containing tank 11 can be stirred and mixed by the external stirring blade 458. The internal stirring blade 459 is connected to the inner wall of the containing cavity 457. When the liquid raw material and solid raw material contained in the bottom of the containing tank 11 enter the containing cavity 457 or are discharged from the containing cavity 457, the liquid raw material and the solid raw material can be stirred and mixed again by the internal stirring blade 459 to improve the mixing efficiency of the liquid raw material and the solid raw material.

[0050] When the liquid raw material and the solid raw material are stirred and mixed, the driving source 44 is started, and the driving source 44 drives the rotating part 451 to rotate. When the rotating part 451 rotates, the guide part 452 drives the rotating sleeve 455 to rotate, thereby driving the external stirring blade 458 to stir the liquid material and the solid material contained in the container 11. During the rotation of the rotating sleeve 455, the protrusion 456 slides in the guide groove 421. At this time, under the guidance of the guide groove 421, the rotating sleeve 455 moves back and forth in the direction of approaching and moving away from the driving source 44 under the guidance of the guide part 452, and under the action of the piston part 454, the size of the containing chamber 457 is changed, thereby sucking the liquid raw material and the solid raw material contained in the bottom of the container 11 into the containing chamber 457, or discharging the liquid raw material and the solid raw material in the containing chamber 457 outward. At the same time, the internal stirring blade 459 in the containing chamber 457 stirs and mixes the liquid raw material and the solid raw material again.

[0051] Continue to refer Figures 1 to 6As shown, the pushing member 46 includes a pushing portion 461 and a fixing portion 462. The pushing portion 461 is connected to the rotating sleeve 455, and the fixing portion 462 is connected to the inner wall of the container 11. The pushing portion 461 is vortex-shaped, and the pushing portion 461 has an arc-shaped pushing surface. The pushing surface has a vertex position and a low point position. The radius of the pushing surface gradually increases from the low point position to the vertex position. A notch 422 is provided on the mounting cylinder 42. The fixing portion 462 can pass through the notch 422 and contact the contact pushing surface on the pushing portion 461. The elastic portion 43 can apply a pulling force close to the fixing portion 462 to the mounting cylinder 42, so that the fixing portion 462 and the pushing portion 4 61 is in close contact with the pushing surface on the mounting tube 42 to prevent the mounting tube 42 from swinging excessively on the mounting seat 41. When the pushing portion 461 rotates, the fixing portion 462 can be in close contact with the pushing surface on the pushing portion 461. When the contact portion between the fixing portion 462 and the pushing surface moves from the low point position to the top position, the rotating sleeve 455 can drive the mounting tube 42 to flip in the direction away from the fixing portion 462 through the obstruction of the fixing portion 462, thereby changing the stirring position of the external stirring blade 458 and the position of the suction or discharge of the solid raw material and the liquid raw material at the bottom of the containing tank 11 by the containing chamber 457, so as to enhance the mixing effect between the liquid raw material and the solid raw material.

[0052] The fixing portion 462 is driven by the pulling force of the elastic portion 43 to pass through the notch 422 on the mounting tube 42 and contact the arc-shaped surface of the pushing portion 461. When the rotating sleeve 455 rotates, the pushing portion 461 is driven to rotate, so that the contact portion between the pushing portion 461 and the fixing portion 462 gradually moves from the low point position of the arc-shaped surface to the vertex position, so that the rotating sleeve 455 drives the mounting tube 42 to flip in the direction away from the fixing portion 462, changing the stirring position of the external stirring blade 458 and the position of the suction or discharge of the solid raw materials and liquid raw materials in the bottom of the filling tank 11 by the filling chamber 457, and stretching the elastic portion 43. After the vertex position of the arc-shaped surface is separated from the fixing portion 462, the mounting tube 42 is pulled back to its original position under the action of the elastic portion 43, so that the fixing portion 462 continues to be at the low point position on the arc-shaped surface of the pushing portion 461.

[0053] Working principle:

[0054] When producing dyes, liquid raw materials and solid raw materials are transported to the storage tank 11 in turn, the external water supply equipment is started, hot water is transported to the hot water pipe 32, and cold water is transported to the cold water pipe 33. The cold water in the cold water pipe 33 enters the hot water pipe 32 and mixes with the hot water in the hot water pipe 32, thereby controlling the temperature of the hot water in the hot water pipe 32. The hot water in the hot water pipe 32 is then transported to the heating ring 31, and the heating ring 31 heats the liquid raw materials and solid raw materials in the storage tank 11. The hot water in the heating ring 31 is then transported back to the external water supply equipment through the reflux pipe 34.

[0055] The driving source 44 is started, and the driving source 44 drives the rotating part 451 to rotate. When the rotating part 451 rotates, the guide part 452 drives the rotating sleeve 455 to rotate, thereby driving the external stirring blade 458 to stir the liquid material and solid material contained in the containing tank 11. During the rotation of the rotating sleeve 455, the protrusion 456 slides in the guide groove 421. At this time, under the guidance of the guide groove 421, the rotating sleeve 455 moves back and forth in the direction of approaching and moving away from the driving source 44 under the guidance of the guide part 452, and under the action of the piston part 454, the size of the containing chamber 457 is changed, thereby sucking the liquid raw material and solid raw material contained in the bottom of the containing tank 11 into the containing chamber 457, or discharging the liquid raw material and solid raw material in the containing chamber 457 outward, and at the same time, the liquid raw material and solid raw material are stirred and mixed again by the built-in stirring blade 459 in the containing chamber 457.

[0056] When the rotating sleeve 455 rotates, it drives the pushing part 461 to rotate, so that the contact part between the pushing part 461 and the fixed part 462 gradually moves from the low point position of the arc surface to the vertex position, so that the rotating sleeve 455 drives the mounting cylinder 42 to flip in the direction away from the fixed part 462, changes the stirring position of the external stirring blade 458 and the position of the suction or discharge of the solid raw materials and liquid raw materials in the bottom of the containing tank 11 by the filling chamber 457, and stretches the elastic part 43. After the vertex position of the arc surface is separated from the fixed part 462, the mounting cylinder 42 is pulled back to its original position under the action of the elastic part 43, so that the fixed part 462 continues to be at the low point position on the arc surface of the pushing part 461.

[0057] Start the external water supply equipment to transport hot water to the inner cavity 111 on the holding tank 11 through the water pipe 2, and the hot water in the inner cavity 111 is transported back to the external water supply equipment by the circulation pipe, thereby realizing the circulation of hot water. The hot water can heat the holding tank 11, and then keep the liquid raw materials and solid raw materials heated by the heating mechanism 3 in the holding tank 11 warm. After the liquid raw materials and solid raw materials in the holding tank 11 are stirred and mixed into dye, the control valve is opened to discharge the formed dye through the discharge pipe 13.

[0058] Although the embodiments of the present invention have been shown and described above, it will be understood that the above embodiments are illustrative and are not to be construed as limitations on the present invention. A person skilled in the art may change, modify, replace and modify the above embodiments within the scope of the present invention.

Claims

1. A textile dye mixing device, comprising a containing mechanism (1), characterized in that: The device further comprises a stirring mechanism (4), the stirring mechanism (4) comprising a mounting cylinder (42) and a stirring member (45), the mounting cylinder (42) being connected to the containing mechanism (1), the stirring member (45) comprising a rotating portion (451), a piston portion (454), a rotating sleeve (455), a protrusion (456) and an external stirring blade (458), the rotating portion (451) being rotatably connected to the mounting cylinder (42), the rotating sleeve (455) being limitedly sleeved on the rotating portion (451), the piston portion (454) being connected to the rotating portion (451) and plugged into the rotating sleeve (455), a containing cavity (457) being formed between the piston portion (454) and the rotating sleeve (455), an inclined elliptical guide groove (421) being provided on the inner wall of the mounting cylinder (42), the cylindrical protrusion (456) being connected to the rotating sleeve (455), The rotating portion (451) is connected to the guide groove (421) in a limited sliding manner. The guide portion (452) is connected to the rotating portion (451). The rotating sleeve (455) is provided on the guide portion (452). The connecting rod (453) is connected to the guide portion (452). The piston portion (454) is connected to the connecting rod (453). The rotating portion (451) can drive the rotating sleeve (455) to rotate and drive the protrusion (456) to slide in the guide groove (421) in a limited manner, so that the rotating sleeve (455) slides on the rotating portion (451) to change the size of the containing cavity (457), so that the solid raw materials and liquid raw materials on the bottom of the containing tank (11) can be sucked into the containing cavity (457), or the solid raw materials and liquid raw materials in the containing cavity (457) can be discharged outward. The external stirring blade (458) is connected to the rotating sleeve (455).

2. The textile dye mixing device according to claim 1, characterized in that: The containing chamber (457) is connected to a built-in stirring blade (459).

3. The textile dye mixing device according to claim 1, characterized in that: The piston portion (454) is made of rubber material.

4. The textile dye mixing device according to claim 1, characterized in that: The containing mechanism (1) is connected to a mounting seat (41), a mounting cylinder (42) is hinged in the mounting seat (41), an elastic portion (43) is connected between the mounting cylinder (42) and the containing mechanism (1), and the stirring mechanism (4) further comprises a pushing member (46), which is connected between the rotating sleeve (455) and the containing mechanism (1).

5. The textile dye mixing device according to claim 4, characterized in that: The pushing member (46) comprises a pushing portion (461) and a fixing portion (462), wherein the pushing portion (461) is connected to the rotating sleeve (455), and the fixing portion (462) is connected to the containing mechanism (1).

6. The textile dye mixing device according to claim 5, characterized in that: The pushing portion (461) is vortex-shaped, and the pushing portion (461) has an arc-shaped pushing surface, the pushing surface has a vertex position and a low point position, and the radius of the pushing surface gradually increases from the low point position to the vertex position.

Citation Information

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