Inorganic chemical modified material mixing processing equipment
By designing inorganic chemical modified material mixing and processing equipment and utilizing a combination of support tubes, supports, and knocking rods, the mixing problem of forced mixers under high-difficulty requirements was solved, and continuous, rapid, and synchronous mixing of modified materials was achieved, thereby improving mixing efficiency and ensuring the environmental friendliness of the equipment.
Patent Information
- Application Number
- CN202211203030.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-29
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2042-09-29
AI Technical Summary
Existing forced mixers are unable to effectively mix inorganic chemical modified materials under the high-difficulty requirements of continuous, rapid and synchronized loading and unloading.
An inorganic chemical modified material mixing processing equipment was designed, including a cylinder, a bracket, a support tube, a loading platform, a rubber tray, a knocking rod and a support frame. Through the cooperation of the knocking rod and the support frame, continuous vibration and mixing of the modified material in the cylinder are achieved, ensuring synchronous loading and unloading.
It achieves continuous, rapid and synchronous mixing of modified materials, improves mixing efficiency, and the equipment operates in a green and environmentally friendly manner without the need for transmission equipment support.
Smart Images

Figure CN115624887B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of chemical material mixing, in particular to inorganic chemical modified material mixing processing equipment. Background Art
[0002] The use of a forced mixer to mix two or more inorganic chemical modified materials is a commonly used material mixing method in the current production industry. For this mixing method, first, it has the advantage of being able to load a large amount of materials at one time, and secondly, it has a stirring effect that is proportional to the stirring time per unit time. Therefore, it has a wide range of uses. However, when combined with certain special needs, such as continuous, rapid and synchronous loading and unloading, the material mixing method configured by the forced mixer is obviously not suitable. For this reason, an inorganic chemical modified material mixing processing equipment specifically for the above-mentioned high-difficulty requirements is proposed. Summary of the Invention
[0003] The purpose of the present invention is to provide inorganic chemical modified material mixing processing equipment to solve the technical problem that the material mixing method configured by the forced mixer is obviously not suitable when the high difficulty requirements of continuous, rapid and synchronous loading and unloading are met.
[0004] In order to solve the above technical problems, the present invention adopts the following technical solutions:
[0005] Inorganic chemical modified material mixing and processing equipment, including a cylinder with multiple material ports on its side wall and a bracket installed at the bottom of the cylinder, with the bracket as the base and a support tube extending upward from the cylinder, the support tube wall being provided with a second slot and a first slot from top to bottom;
[0006] A loading platform and a rubber tray are provided between the second slot and the first slot, and are sleeved on the supporting tube. The loading platform moves to the second slot, and the rubber tray is located above the first slot.
[0007] A knock rod is arranged in the supporting tube, the knock rod protrudes outward from the second slot, the protrusion is always located below the loading platform, and the knock rod extends outward to the first slot and contacts the bottom of the rubber tray;
[0008] A plurality of supports are arranged on the top edge of the cylinder with the support tube as the axis and surrounding the support tube, and the support has an upward part and a downward part, wherein the upward part extends outward from the top opening of the cylinder, and the end extending outward is installed with a vibration guide tube that passes through the material opening and contacts the top of the rubber pallet, and the downward part extends from the top opening of the cylinder into the cylinder, and a pull rod for hanging the loading platform downward along the surface is arranged on the lower part of the support, and the pull rod is an elastic rod body, which is used for pulling the loading platform to the support tube by the pull rod when the material is alternately dumped to the loading platform, and the support is repeatedly impacted by the support and the knocking rod, so that the rubber pallet is always vibrating.
[0009] Preferably, the knocking rod is movably arranged in the supporting tube.
[0010] Preferably, a knocking rod adjustment portion bolted to the support tube is provided above the knocking rod, and the knocking rod adjustment portion includes a pipe plug and a handle and a receiving rod provided on both sides of the pipe plug, wherein the handle is fixed to the upper end of the pipe plug and extends outward relative to the support tube, and the receiving rod is rotatably connected to the bottom of the pipe plug for fixing the knocking rod.
[0011] Preferably, a plurality of channels are provided at the loading platform to connect the space above the loading platform and the space below the loading platform.
[0012] Preferably, a blowing piece parallel to the height direction of the cylinder is provided at the lower part of the support frame, and the blowing piece is connected to the vibration guide pipe.
[0013] Preferably, the blowing member includes an air cylinder and a poking rod, wherein the poking rod extends downward from the bottom of the inner edge of the air cylinder and directly points to the loading platform, and the bottom edge of the air cylinder is flush with the lowest point of the downward part of the support frame.
[0014] Preferably, the vibration guide tube passes through the material opening obliquely from top to bottom and contacts the rubber tray.
[0015] Preferably, a push rod is provided at the support frame, the push rod is located between the support frame and the cylinder, and both ends of the push rod are respectively connected to the support frame and the cylinder for fixing the support frame.
[0016] Preferably, the rubber tray is movably arranged in the cylinder, and the movable range of the rubber tray is limited to the material inlet.
[0017] The beneficial effects of the present invention are:
[0018] 1. The present invention pours the modified material onto the loading platform above the cylinder in a discharging manner that is sometimes interrupted and sometimes continued, so that the loading platform moves back and forth between the support frame and the knocking rod, and hits the support frame and the knocking rod, so that the vibration guide tube at the support frame transmits vibration, and the knocking rod knocks the rubber tray, so that the rubber tray maintains a certain vibration frequency, and the modified material dropped from the loading platform to the rubber tray is fully mixed, and the material is discharged synchronously from the material port.
[0019] 2. The continuous, rapid and synchronous loading and unloading mixing processing equipment can continuously and fully mix the modified materials. There is no need to unload and then load the whole material after one mixing. The equipment has good mixing efficiency and no related transmission equipment is supported in the entire mixing process, which is green and environmentally friendly. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic structural diagram of the inorganic chemical modified material mixing and processing equipment of the present invention;
[0021] Figure 2It is a structural schematic diagram of the present invention from another perspective;
[0022] Figure 3 This is a schematic diagram of the structure of the present invention after a portion of the cylinder is cut off;
[0023] Figure 4 Schematic diagram of the combined structure of the loading platform, supporting tube, bracket, knock rod, knock rod adjustment part and rubber tray in the present invention;
[0024] Figure 5 for Figure 4 Schematic diagram of the three-dimensional cross section after adding the cylinder;
[0025] Figure 6 for Figure 4 Schematic diagram of the structure after the loading platform is separated from the assembly after the cylinder is added;
[0026] Figure 7 for Figure 4 Schematic diagram of the structure from another perspective after removing the loading platform;
[0027] Figure 8 Schematic diagram of the combined structure of the knock rod adjustment part and the knock rod in the present invention;
[0028] Figure 9 Schematic diagram of the combined structure of the support frame, pull rod, blowing member and vibration guide tube in the present invention;
[0029] Figure numerals: 1, material inlet; 2, cylinder; 3, vibration guide tube; 4, support frame; 5, pull rod; 6, loading platform; 7, knock rod adjustment part; 71, handle; 72, pipe plug; 73, receiving rod; 8, support tube; 9, bracket; 10, rubber tray; 11, knock rod; 12, first slot; 13, second slot; 14, blowing part. DETAILED DESCRIPTION
[0030] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific embodiments and drawings. However, the following embodiments are only preferred embodiments of the present invention and are not exhaustive. Based on the embodiments in the implementation manner, other embodiments obtained by those skilled in the art without making any creative work are all within the scope of protection of the present invention.
[0031] Specific embodiments of the present invention are described below with reference to the accompanying drawings.
[0032] Example 1
[0033] In this embodiment, an inorganic chemical modified material mixing and processing device is proposed, which includes a barrel 2 with multiple material ports 1 on the side wall and a bracket 9 installed at the bottom of the barrel 2. Figure 2The bracket 9 is formed by combining a plurality of plates of the same specifications. Based on this, a supporting tube 8 extending upward from the cylinder 2 is provided with the bracket 9 as the bottom. The supporting tube 8 has a second slot 13 and a first slot 12 provided on its wall from top to bottom.
[0034] A loading platform 6 and a rubber tray 10 are provided between the second slot 13 and the first slot 12. The loading platform 6 is movable to the second slot 13 and the rubber tray 10 is located above the first slot 12.
[0035] A knock rod 11 is provided in the supporting tube 8. The knock rod 11 protrudes outward from the second slot 13. The protrusion is always located below the loading platform 6. The knock rod 11 extends outward to the first slot 12 and contacts the bottom of the rubber tray 10.
[0036] A plurality of supports 4 are provided on the top edge of the cylinder 2 with the support tube 8 as the axis and surrounding the support tube 8, and the support tube 4 has an upward part and a downward part;
[0037] As for the upward portion of the support 4, the top opening of the cylinder 2 extends outward, and the outwardly extended end is installed with a vibration guide tube 3 that passes through the material port 1 and contacts the top of the rubber tray 10. It should be noted that the number of the multiple supports 4 is consistent with the number of the multiple material ports 1. The reason is that each vibration guide tube 3 can pass through the corresponding material port 1 and contact the rubber tray 10;
[0038] As for the downward part of the support frame 4, it extends from the top of the cylinder 2 into the cylinder 2. In addition, a pull rod 5 is provided on the downward part for hanging the loading platform 6 downward along the surface. The pull rod 5 is an elastic rod body. When the material is alternately poured onto the loading platform 6, the pull rod 5 pulls the loading platform 6 to the support tube 8 to reciprocately impact the support frame 4 and the knocking rod 11, so that the rubber pallet 10 is always vibrating.
[0039] It should be noted that, in the present embodiment, one end of the knocking rod 11 is fixed to the inner wall of the supporting tube 8, that is, the relative position of the knocking rod 11 to the supporting tube 8 in the present embodiment cannot be adjusted. Accordingly, before the knocking rod 11 is pressed by the loading platform 6, the knocking rod 11 needs to be maintained in contact with the rubber tray 10 to ensure that the loading platform 6 makes the knocking rod 11 knock on the rubber tray 10 in the interval between pressing and releasing the pressing.
[0040] See also Figure 1-9In this embodiment, a mixing processing equipment is proposed that can load and unload materials continuously, quickly and synchronously. The mixing processing equipment comprises several components such as a material port 1, a cylinder 2, a vibration guide tube 3, a support frame 4, a pull rod 5, a loading platform 6, a support tube 8, a bracket 9, a rubber tray 10, a knocking rod 11, a first slot 12 and a second slot 13. The purpose is to pour the modified material (granular material) from the top of the cylinder 2 to the top of the loading platform 6 in a discharging manner that is sometimes interrupted and sometimes continued (the modified material falls downward at a certain rate at the loading platform 6), so that the loading platform 6 moves back and forth between the support frame 4 and the knocking rod 11, and hits the support frame 4 and the knocking rod 11, so as to transmit vibration to the vibration guide tube 3 at the support frame 4, and the knocking rod 11 knocks the rubber tray 10, so that the rubber tray 10 maintains a certain vibration frequency, fully mixes the modified material that falls from the loading platform 6 to the rubber tray 10, and unloads the material synchronously from the material port 1.
[0041] Example 2
[0042] In this embodiment, an inorganic chemical modified material mixing and processing device is proposed, which includes a barrel 2 with multiple material ports 1 on the side wall and a bracket 9 installed at the bottom of the barrel 2. Figure 2 The bracket 9 is formed by combining a plurality of plates of the same specifications. Based on this, a supporting tube 8 extending upward from the cylinder 2 is provided with the bracket 9 as the bottom. The supporting tube 8 has a second slot 13 and a first slot 12 provided on its wall from top to bottom.
[0043] A loading platform 6 and a rubber tray 10 are provided between the second slot 13 and the first slot 12. The loading platform 6 is movable to the second slot 13 and the rubber tray 10 is located above the first slot 12.
[0044] A knock rod 11 that can move inside the supporting tube 8 is provided to the supporting tube 8. The knock rod 11 protrudes outward from the second slot 13. The protrusion is always located below the loading platform 6. The knock rod 11 extends outward to the first slot 12 and contacts the bottom of the rubber tray 10.
[0045] A plurality of supports 4 are provided on the top edge of the cylinder 2 with the support tube 8 as the axis and surrounding the support tube 8, and the support tube 4 has an upward part and a downward part;
[0046] As for the upward portion of the support 4, the top opening of the cylinder 2 extends outward, and the outwardly extended end is installed with a vibration guide tube 3 that passes through the material port 1 and contacts the top of the rubber tray 10. It should be noted that the number of the multiple supports 4 is consistent with the number of the multiple material ports 1. The reason is that each vibration guide tube 3 can pass through the corresponding material port 1 and contact the rubber tray 10;
[0047] As for the downward part of the support frame 4, it extends from the top of the cylinder 2 into the cylinder 2. In addition, a pull rod 5 is provided on the downward part for hanging the loading platform 6 downward along the surface. The pull rod 5 is an elastic rod body. When the material is alternately poured onto the loading platform 6, the pull rod 5 pulls the loading platform 6 to the support tube 8 to reciprocately impact the support frame 4 and the knocking rod 11, so that the rubber pallet 10 is always vibrating.
[0048] Different from the embodiment 1, in this embodiment, the knock rod 11 is movably arranged in the supporting tube 8;
[0049] The following describes why the knock rod 11 can move within the supporting tube 8:
[0050] See also Figure 5 and Figure 8 A knocking rod adjusting portion 7 bolted to the supporting tube 8 is provided above the knocking rod 11. The knocking rod adjusting portion 7 includes a pipe plug 72 and a handle 71 and a receiving rod 73 provided on both sides of the pipe plug 72. The handle 71 is fixed to the upper end of the pipe plug 72 and extends outward relative to the supporting tube 8. The receiving rod 73 is rotatably connected to the bottom of the pipe plug 72 for fixing the knocking rod 11. Accordingly, a torque is applied to the handle 71 to make the pipe plug 72 move into the supporting tube 8 to change the relative position of the knocking rod 11 to the supporting tube 8.
[0051] In the embodiment, the movement of the knocking rod 11 into the supporting tube 8 has a positive effect, that is, in Example 1, the force with which the knocking rod 11 knocks the rubber tray 10 is determined by the downward force generated by the modified material falling into the loading platform 6. Accordingly, when the downward force generated by the modified material falling into the loading platform 6 remains unchanged, the knocking force of the knocking rod 11 is difficult to adjust. Therefore, the relative position of the knocking rod 11 to the supporting tube 8 is adjusted by providing the knocking rod adjustment portion 7, so that the shallowness or depth of the knocking rod 11 contacting the rubber tray 10 changes. The following is an example:
[0052] In example ①, the knocking rod 11 is only slightly attached to the bottom of the rubber tray 10, so that after the pressure on the loading platform 6 on the knocking rod 11 is released, only a small part of the force is applied to the rubber tray 10, thereby reducing the knocking force and weakening the vibration amplitude of the rubber tray 10.
[0053] In example ②, the knocking rod 11 is pressed against the bottom of the rubber tray 10, and the pressed part is slightly twisted and deformed. Accordingly, after the pressure on the loading platform 6 on the knocking rod 11 is released, all the force generated by the reset of the knocking rod 11 acts on the rubber tray 10, thereby increasing the knocking force and strengthening the vibration amplitude of the rubber tray 10.
[0054] As can be seen from the above examples ① and ②, by setting up this embodiment, the force with which the knocking rod 11 strikes the rubber tray 10 can be freely controlled according to the operator's wishes, thereby controlling the mixing quality.
[0055] Example 3
[0056] This embodiment 3 uses the mixing processing equipment used in embodiment 2. For this mixing processing equipment, in this embodiment, a deep improvement is made, that is, please refer to Figure 9 A blowing member 14 is provided on the lower part of the support frame 4 and is parallel to the height direction of the cylinder 2. The blowing member 14 is connected to the vibration guide tube 3. It should be noted that the blowing member 14 includes an air cylinder and a poking rod, wherein the poking rod extends downward from the bottom of the air cylinder and points directly to the loading platform 6, and the bottom edge of the air cylinder is level with the lowest point of the lower part of the support frame 4.
[0057] This embodiment is an improvement of embodiment 2, and the specific improvement is that the loading platform 6 hits the support frame 4 upward, that is, the pulling force generated by the pull rod 5 is utilized to contact the blowing part 14 during the upward movement of the loading platform 6, and the generated airflow is transmitted from the vibration guide tube 3 to the top of the rubber tray 10, thereby combining the vibration of the vibration guide tube 3, the knocking of the knocking rod 11 on the rubber tray 10, and the strong blowing of the blowing part 14, so that the modified material located above the rubber tray 10 can jump disorderly at the rubber tray 10 and thus be fully mixed.
[0058] The mechanism of the back-and-forth movement and vibration between the loading platform 6, the support frame 4 and the knocking rod 11 in Examples 1, 2 and 3 is described as follows:
[0059] First of all, it should be made clear that a plurality of grooves are provided on the loading platform 6 to connect the space above the loading platform 6 and the space below the loading platform 6. Accordingly, when the modified material (granular material) is poured onto the top of the loading platform 6 in a discharging manner that is sometimes interrupted and sometimes continued, the downward pressure on the loading platform 6 is in a constantly changing state. Therefore, when the material is discharged onto the top of the loading platform 6, it is difficult for the groove to discharge the modified material instantly. The pulling force applied by the plurality of pull rods 5 is less than the downward pressure applied by the modified material. The loading platform 6 moves downward and squeezes the knocking rod 11. After being compressed, the knocking rod 11 is retracted into the support tube 8 from the second slot 13 and the first slot 12. After waiting for the modified material to be discharged in large quantities from the groove, the pulling force applied by the plurality of pull rods 5 is greater than the downward pressure applied by the modified material, causing the knocking rod 11 to quickly reset and knock the bottom of the rubber tray 10. At the same time, the pull rod 5 pulls the loading platform 6 upward and hits the support frame 4, transmitting the vibration to the top of the rubber tray 10 through the vibration guide tube 3.
[0060] Description of rubber tray 10:
[0061] See also Figure 5 The rubber tray 10 is movably arranged in the cylinder 2. Of course, its range of movement is limited to the material port 1. In addition, the elastic force of the rubber tray 10 itself can make the modified material jump disorderly after the modified material falls into the rubber tray 10 from the loading platform 6.
[0062] See also Figure 1 、 Figure 2 as well as Figure 3 The vibration guide tube 3 passes through the material port 1 obliquely from top to bottom and contacts the rubber tray 10. This arrangement, on the one hand, can transmit vibration and guide the airflow through the vibration guide tube 3; on the other hand, after passing through the material port 1 obliquely, the mixed modified material can be bifurcated at the material port 1 to further stir the mixture.
[0063] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.
[0064] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely preferred examples of the present invention and are not intended to limit the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. Inorganic chemical modified material mixing processing equipment, characterized by: It includes a cylinder with multiple material openings on its side wall and a bracket installed at the bottom of the cylinder, a support tube extending upward from the cylinder with the bracket as the bottom, and a second slot and a first slot are provided on the wall of the support tube from top to bottom; A loading platform and a rubber tray are provided between the second slot and the first slot, and are sleeved on the supporting tube. The loading platform moves to the second slot, and the rubber tray is located above the first slot. A knock rod is arranged in the supporting tube, the knock rod protrudes outward from the second slot, the protrusion is always located below the loading platform, and the knock rod extends outward to the first slot and contacts the bottom of the rubber tray; A plurality of supports are provided on the top edge of the cylinder body with the support tube as the axis and surrounding the support tube, the supports having an upward part and a downward part, wherein the upward part extends outward from the top opening of the cylinder body, and the end portion extending outward is installed with a vibration guide tube which passes through the material opening and contacts the top of the rubber tray, wherein the vibration guide tube passes through the material opening obliquely from top to bottom and contacts the rubber tray, and the downward part extends from the top opening of the cylinder body into the cylinder body, and a pull rod for hanging the loading platform downward along the surface is provided on the lower part of the support frame, the pull rod is an elastic rod body, and is used for pulling the loading platform to the support tube by the pull rod when the material is alternately dumped onto the loading platform, and the rubber tray is always vibrated by the pull rod. The knocking rod is movably arranged in the supporting tube, and a knocking rod adjustment portion bolted to the supporting tube is provided above the knocking rod, and the knocking rod adjustment portion includes a pipe plug and a grip and a receiving rod provided on both sides of the pipe plug, wherein the grip is fixed to the upper end of the pipe plug and extends outward relative to the supporting tube, and the receiving rod is rotatably connected to the bottom of the pipe plug for fixing the knocking rod, and a torque is applied to the grip to make the pipe plug move in the supporting tube, so as to change the relative position of the knocking rod to the supporting tube; When the knock rod is only slightly attached to the bottom of the rubber pallet, after the pressure from the loading platform on the knock rod is released, only a small part of the force is applied to the rubber pallet, thereby reducing the knocking force and weakening the vibration amplitude of the rubber pallet; When the knock rod is pressed against the bottom of the rubber pallet, the pressed part will be slightly twisted and deformed. After the pressure under the loading platform on the knock rod is released, all the force generated by the knock rod's reset will act on the rubber pallet, increasing the knocking force and strengthening the vibration amplitude of the rubber pallet.
2. The inorganic chemical modified material mixing processing equipment according to claim 1, characterized in that: A plurality of channels are provided on the loading platform to connect the space above the loading platform and the space below the loading platform.
3. The inorganic chemical modified material mixing and processing equipment according to claim 1, characterized in that: A blowing piece parallel to the height direction of the cylinder is arranged on the lower part of the support frame, and the blowing piece is communicated with the vibration guide pipe.
4. The inorganic chemical modified material mixing and processing equipment according to claim 3, characterized in that: The blowing member includes an air cylinder and a poking rod, wherein the poking rod extends downward from the bottom of the air cylinder and directly points to the loading platform, and the bottom edge of the air cylinder is flush with the lowest point of the downward part of the support frame.
5. The inorganic chemical modified material mixing and processing equipment according to claim 1, characterized in that: A push rod is provided at the support frame, the push rod is located between the support frame and the cylinder, and two ends of the push rod are respectively connected to the support frame and the cylinder for fixing the support frame.
6. The inorganic chemical modified material mixing processing equipment according to claim 1, characterized in that : The rubber tray is movably arranged in the cylinder, and the movable range of the rubber tray is limited to the material inlet.
Citation Information
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