Carrier microbial material processing device
By designing a carrier microbial material processing device, using an inclined feeding frame and transport cylinder system, combined with the rotating outer ring and external rod, the layering problem of silicone raw materials during stirring is solved, and the uniform mixing of raw materials and the improvement of product quality is achieved.
Patent Information
- Application Number
- CN202421640165.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-11
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-07-11
AI Technical Summary
During the existing silicone production process, the raw materials are prone to layering when stirring, resulting in uneven mixing and seriously affecting the quality of the silicone product.
A carrier microbial material processing device is designed, including a stirring structure and a feed pipe system. Through the combination of the inclined feed frame and the transport cylinder, the raw materials can enter the middle pipe smoothly, and be dispersed and mixed through the rotating outer ring and external rod to avoid layering.
It effectively avoids the phenomenon of layering of raw materials during the stirring process, realizes uniform mixing of raw materials, and improves the quality of silicone products.
Smart Images

Figure CN222943410U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of carrier microbial material production, and specifically relates to a carrier microbial material processing device. Background Art
[0002] Carrier microbial materials are a special type of material, usually composed of biopolymers or other natural organic substances, which can provide support and environment for microbial growth and activity. After the raw materials are mixed and reacted in a mixing and reaction tank, they are put into a fermentation tank to support microbial growth and metabolic activities. Common carrier microbial materials include alumina, silica gel, etc.
[0003] When making existing silica gel, the raw materials are stirred in a mixing tank. However, it is difficult to fully mix the raw materials in the existing mixing tank when in use, and uneven dispersion may occur, which may easily lead to stratification of the raw materials during stirring, resulting in uneven mixing, which seriously affects the quality of the silica gel product.
[0004] Therefore, we propose a carrier microbial material processing device to solve the above problems. Summary of the invention
[0005] The utility model aims to provide a carrier microbial material processing device to solve the problem that the raw materials are stratified during stirring, resulting in uneven mixing.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a carrier microbial material processing device, comprising a stirring structure, the stirring structure comprising a bottom bracket and a stirring tank installed on the top of the bottom bracket, a material transport pipe is installed inside the bottom bracket and at the bottom end of the stirring tank, side platforms A are installed on both sides of the stirring tank, a supporting cylinder is installed on the top of the side platform A, a stirring cover is installed on the top of the supporting cylinder, and a stirring member is movably installed inside the stirring tank;
[0007] Side tables B are installed on both sides of the stirring cover, a motor is installed on the top of the stirring cover, a rotating circular plate is movably installed on the bottom of the stirring cover, and a waterproof cylinder is installed on the bottom of the rotating circular plate;
[0008] A center pipe is installed through the middle end of the mixing tank, and a tank plug is installed at the bottom end of the mixing tank;
[0009] The stirring member includes an outer ring movably mounted on the outer surface of the central tube, an external rod is mounted on the outer side of the outer ring, a connecting rod is mounted on the top end of the outer ring, and the top end of the connecting rod is mounted on the bottom end of the rotating circular plate, a connecting column is mounted on the bottom end of the outer ring, and a stirring ring is mounted on the bottom end of the connecting column.
[0010] Preferably, a connecting rod is installed on the outer side of the outer ring, an external ring is installed on one end of the connecting rod, and the external ring is in contact with the inner wall of the stirring tank.
[0011] Preferably, a rubber pad is installed at the bottom end of the waterproof cylinder, a magnet round block is installed at the bottom end of the rubber pad, and the rubber pad matches the inside of the middle tube.
[0012] Preferably, a bottom groove is provided at the bottom end of the stirring tank, a magnet plate is installed at the inner top end of the bottom groove, and a limit block is installed at the outer top end of the center pipe.
[0013] Preferably, a slot is provided at the outer upper end of the material transport pipe, a material placement frame is installed on the outer surface of the material transport pipe and outside the slot, and the inner bottom end of the material placement frame is inclined, and the material transport pipe is installed at the bottom end of the middle pipe.
[0014] Preferably, a transport cylinder is slidably mounted inside the slot, a magnet ring is mounted on the top of the transport cylinder, and a magnet circular plate is mounted on the bottom of the transport cylinder.
[0015] Compared with the prior art, the beneficial effects of the utility model are:
[0016] The utility model discloses a carrier microbial material processing device, in which raw materials flow into the interior of a slot at the bottom end of an inclined material placing frame, and thus move into the interior of a transport cylinder, a waterproof cylinder contracts, the transport cylinder moves upward, a rubber pad pulls up the raw materials in the transport cylinder and moves them into the interior of a middle tube, a supporting cylinder extends, the raw materials in the middle tube are discharged into a stirring tank, a rotating outer ring and an external rod break up the raw materials, and the addition of the raw materials is completed, when the supporting cylinder contracts, the rotating outer ring drives the stirring ring to rotate through a connecting column, mixes and stirs the layers of the raw materials, and stratification of the raw materials is avoided, and the rotating stirring ring contacts the inner bottom end of the stirring tank, and the raw materials are avoided from remaining in the stirring tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0018] Figure 2 This is a schematic diagram of the structure of the stirring tank and stirring member of the utility model;
[0019] Figure 3 This is a schematic diagram of the stirring cover flip structure of the utility model;
[0020] Figure 4 This is a schematic diagram of the material transport pipe structure of the utility model.
[0021] In the figure: 1. stirring structure; 11. bottom bracket; 12. stirring tank; 121. bottom groove; 122. magnet plate; 123. middle tube; 124. limit block; 13. side table A; 14. stirring member; 141. outer ring; 142. external rod; 143. connecting rod; 144. external ring; 145. stirring ring; 146. connecting column; 147. connecting rod; 15. stirring cover; 151. side table B; 152. motor; 153. rotating circular plate; 154. waterproof cylinder; 155. rubber pad; 156. magnet round block; 16. supporting cylinder; 17. material transport pipe; 171. slot; 172. transport cylinder; 173. magnet ring; 174. magnet round plate; 18. material placing frame; 19. tank plug. DETAILED DESCRIPTION
[0022] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0023] Example 1: Please refer to Figure 1-Figure 4 A carrier microbial material processing device includes a stirring structure 1, the stirring structure 1 includes a bottom bracket 11 and a stirring tank 12 installed on the top of the bottom bracket 11, a material conveying pipe 17 is installed inside the bottom bracket 11 and at the bottom end of the stirring tank 12, side platforms A13 are installed on both sides of the stirring tank 12, a supporting cylinder 16 is installed on the top of the side platform A13, a stirring cover 15 is installed on the top of the supporting cylinder 16, and a stirring member 14 is movably installed inside the stirring tank 12.
[0024] Side platforms B151 are installed on both sides of the stirring cover 15, a motor 152 is installed on the top of the stirring cover 15, a rotating circular plate 153 is movably installed on the bottom of the stirring cover 15, and a waterproof cylinder 154 is installed on the bottom of the rotating circular plate 153.
[0025] A center pipe 123 is installed through the middle end of the stirring tank 12 , and a tank plug 19 is installed at the bottom end of the stirring tank 12 .
[0026] A rubber pad 155 is installed at the bottom end of the waterproof cylinder 154, and a magnet block 156 is installed at the bottom end of the rubber pad 155. The rubber pad 155 matches the inside of the middle tube 123. The rubber pad 155 is used to push the raw material upward to prevent the raw material from remaining inside the middle tube 123.
[0027] A bottom groove 121 is provided at the bottom end of the mixing tank 12, a magnet plate 122 is installed at the inner top of the bottom groove 121, and a limit block 124 is installed at the outer top of the middle tube 123. The top of the limit block 124 is inclined to prevent raw materials from accumulating on the top of the limit block 124.
[0028] A slot 171 is provided at the upper end of the outer side of the material transport pipe 17, and a material placement frame 18 is installed on the outer surface of the material transport pipe 17 and outside the slot 171, and the inner bottom end of the material placement frame 18 is inclined. The material transport pipe 17 is installed at the bottom end of the middle pipe 123, and the diameter of the slot 171 is larger than the diameter of the middle pipe 123.
[0029] A transport cylinder 172 is slidably installed inside the slot 171, a magnet ring 173 is installed on the top of the transport cylinder 172, a magnet round plate 174 is installed on the bottom of the transport cylinder 172, the magnet block 156 and the connecting rod 147 are attracted to each other, the magnet ring 173 and the magnet plate 122 are attracted to each other, and the diameter inside the transport cylinder 172 is consistent with the diameter of the magnet block 156.
[0030] In this embodiment, the raw material is put into the material placing frame 18, and the raw material flows into the groove 171 through the bottom end of the inclined material placing frame 18, and then moves into the transport cylinder 172. The waterproof cylinder 154 contracts, and the magnet block 156 uses magnetism to drive the transport cylinder 172 and the raw material to move upward along the groove 171 and the middle tube 123. As the transport cylinder 172 moves upward, the magnet ring 173 and the magnet plate 122 are attracted by opposite sex, and the waterproof cylinder 154 continues to contract, and the magnet block 156 and the magnet plate 122 are attracted by opposite sex. After the circular plate 174 is separated, the rubber pad 155 pulls up the raw materials inside the transport cylinder 172 and moves them into the middle tube 123. The supporting cylinder 16 extends and pulls up the waterproof cylinder 154 to cause the raw materials inside the middle tube 123 to be discharged into the mixing tank 12, thereby completing the addition of raw materials. As the raw materials are discharged into the transport cylinder 172, the amount of raw materials in the material frame 18 decreases. At this time, the operator can push the materials from the inside of the material frame 18 in a low position into the transport tube 17 to reduce the waste of raw materials.
[0031] Example 2: Please refer to Figure 1 and Figure 2The stirring member 14 includes an outer ring 141 movably mounted on the outer surface of the middle tube 123, an external rod 142 is mounted on the outer side of the outer ring 141, a connecting rod 147 is mounted on the top of the outer ring 141, and the top of the connecting rod 147 is mounted on the bottom end of the rotating circular plate 153, a connecting column 146 is mounted on the bottom end of the outer ring 141, and a stirring ring 145 is mounted on the bottom end of the connecting column 146. The support cylinder 16 and the waterproof cylinder 154 are contracted to pull the raw materials inside the middle tube 123 up to the inside of the stirring tank 12, and at the same time, the stirring ring 145 that moves up and down is used to stir the raw materials inside the stirring tank 12, and the rotating outer ring 141 and the external rod 142 are used to break up the raw materials.
[0032] A connecting rod 143 is installed on the outside of the outer ring 141, and an external ring 144 is installed on one end of the connecting rod 143. The external ring 144 contacts the inner wall of the mixing tank 12, and the external ring 144 moving up and down scratches the raw materials adhered to the inner wall of the mixing tank 12.
[0033] In this embodiment: as the raw materials flow into the interior of the mixing tank 12 from the central tube 123, the operating motor 152 drives the rotating circular plate 153 to rotate, the set limit block 124 limits the upward position of the outer ring 141, and the connecting rod 147 drives the outer ring 141 and the external rod 142 to break up the raw materials. When the stirred raw materials adhere to the inner wall of the mixing tank 12, as the supporting cylinder 16 contracts, the rotating external ring 144 pushes down the raw materials on the inner wall of the mixing tank 12. At the same time, when the supporting cylinder 16 contracts, the rotating outer ring 141 drives the stirring ring 145 to rotate through the connecting column 146, mixes and stirs the layers of the raw materials to avoid stratification of the raw materials. When discharging, the receiving barrel can be placed in the bottom bracket 11. After the tank plug 19 is pulled out, the raw materials flow out through the discharge hole of the mixing tank 12, and the rotating stirring ring 145 contacts the inner bottom end of the mixing tank 12 to avoid the raw materials remaining in the mixing tank 12.
[0034] Working principle: the raw material flows into the interior of the slot 171 at the bottom end of the inclined material placement frame 18, and then moves into the interior of the transport cylinder 172. The waterproof cylinder 154 contracts, and the transport cylinder 172 moves upward. The magnet ring 173 and the magnet plate 122 attract each other, and the rubber pad 155 pulls up the raw material inside the transport cylinder 172 and moves it into the interior of the middle tube 123. The support cylinder 16 extends, and the waterproof cylinder 154 is pulled up to cause the raw material in the middle tube 123 to be discharged into the interior of the mixing tank 12. The rotating outer ring 141 and the external rod 142 break up the raw material to complete the addition of the raw material. When the support cylinder 16 contracts, the rotating outer ring 141 drives the stirring ring 145 to rotate through the connecting column 146, mixes and stirs the layers of the raw material to avoid stratification of the raw material. The rotating stirring ring 145 contacts the inner bottom end of the mixing tank 12 to avoid the raw material remaining in the mixing tank 12.
[0035] The contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field.
[0036] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art may still modify the technical solutions described in the aforementioned embodiments, or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention shall be included in the protection scope of the present invention.
Claims
1. A carrier microbial material processing device, comprising a stirring structure (1), characterized in that: The stirring structure (1) comprises a bottom bracket (11) and a stirring tank (12) mounted on the top of the bottom bracket (11); a material transport pipe (17) is mounted inside the bottom bracket (11) and at the bottom end of the stirring tank (12); side tables A (13) are mounted on both sides of the stirring tank (12); a supporting cylinder (16) is mounted on the top of the side table A (13); a stirring cover (15) is mounted on the top of the supporting cylinder (16); and a stirring member (14) is movably mounted inside the stirring tank (12); Side platforms B (151) are installed on both sides of the stirring cover (15), a motor (152) is installed on the top of the stirring cover (15), a rotating circular plate (153) is movably installed on the bottom of the stirring cover (15), and a waterproof cylinder (154) is installed on the bottom of the rotating circular plate (153); A center pipe (123) is installed through the middle end of the stirring tank (12), and a tank plug (19) is installed at the bottom end of the stirring tank (12); The stirring member (14) comprises an outer ring (141) movably mounted on the outer surface of the middle tube (123); an outer rod (142) is mounted on the outer side of the outer ring (141); a connecting rod (147) is mounted on the top end of the outer ring (141); the top end of the connecting rod (147) is mounted on the bottom end of the rotating circular plate (153); a connecting column (146) is mounted on the bottom end of the outer ring (141); and a stirring ring (145) is mounted on the bottom end of the connecting column (146).
2. A carrier microbial material processing device according to claim 1, characterized in that: A connecting rod (143) is installed on the outside of the outer ring (141), an external ring (144) is installed on one end of the connecting rod (143), and the external ring (144) is in contact with the inner wall of the stirring tank (12).
3. A carrier microbial material processing device according to claim 1, characterized in that: A rubber pad (155) is installed at the bottom end of the waterproof cylinder (154), a magnetic round block (156) is installed at the bottom end of the rubber pad (155), and the rubber pad (155) matches the inside of the middle tube (123).
4. A carrier microbial material processing device according to claim 2, characterized in that: The bottom end of the stirring tank (12) is provided with a bottom groove (121), the inner top end of the bottom groove (121) is provided with a magnet plate (122), and the outer top end of the middle tube (123) is provided with a limit block (124).
5. A carrier microbial material processing device according to claim 1, characterized in that: A slot (171) is formed at the upper outer end of the material transport pipe (17), a material placement frame (18) is installed on the outer surface of the material transport pipe (17) and outside the slot (171), and the inner bottom end of the material placement frame (18) is inclined. The material transport pipe (17) is installed at the bottom end of the middle placement pipe (123).
6. A carrier microbial material processing device according to claim 5, characterized in that: A transport cylinder (172) is slidably mounted inside the slot (171), a magnet ring (173) is mounted on the top end of the transport cylinder (172), and a magnet circular plate (174) is mounted on the bottom end of the transport cylinder (172).