Edible mushroom mixing device

By designing an edible fungus mixing device, the coordination of the conical cylinder and the placement rack and the swinging action driven by the driving motor are solved, and the problem of uneven mixing of edible fungus samples and solvents is achieved, and the full mixing of samples and solutions and the accuracy of detection results are achieved.

CN119971844APending Publication Date: 2025-05-13LIANYUNGANG GUOXIN EDIBLE FUNGUS OF COMPLETE SETSOF EQUIP
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Patent Information

Application Number
CN202510192658.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-05-13

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Abstract

The invention relates to the technical field of food detection, and discloses an edible mushroom mixing device which comprises a mixing mechanism, the mixing mechanism further comprises a base, the inner wall of the base is rotationally connected with a placement frame, and a conical barrel is arranged in the placement frame; by means of force generated when a conical barrel is inserted downwards, when the conical barrel moves downwards, the bottom of the conical barrel makes contact with a second fixing block, downward thrust is applied to the second fixing block along with continuous downward movement of the conical barrel, then the second fixing block is forced to drive a connecting plate to move downwards, and the connecting plate drives a plurality of second sliding rods to slide downwards after moving downwards; after a plurality of second sliding rods slide downwards, a plurality of extension springs are subjected to extrusion force, after a conical barrel is inserted into a designated position, the conical barrel is loosened, at the moment, the conical barrel is limited by a slope block, after the conical barrel is loosened, the extrusion force borne by the extension springs disappears, counter-acting force is applied to a connecting plate and a second fixing block, and the conical barrel is fixed. And the fixed block II drives the conical barrel to move upwards.
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Description

Technical Field

[0001] The invention relates to the technical field of food mixing, in particular to an edible fungus mixing device. Background Art

[0002] Edible fungi are edible large fungi. Edible fungi have certain enrichment and biotransformation effects on heavy metal elements. People usually use heavy metal detection equipment to detect them. When the detection equipment detects edible fungi, it is necessary to manually crush the edible fungi, fully mix them with solvents, and then detect the heavy metal content of the edible fungi.

[0003] When samples and solvents are mixed manually, different operators may have different mixing skills and strengths, resulting in differences in the uniformity of the mixing, which may lead to uneven mixing of samples and solvents. To address the above problems, the following solutions are proposed. Summary of the invention

[0004] In order to solve the above technical problems, the present invention provides an edible fungus mixing device, comprising a mixing mechanism, the mixing mechanism also comprising a base, a placing rack is rotatably connected to the inner wall of the base, and a conical cylinder is arranged in the placing rack; The fixing mechanism further comprises a plurality of fixing blocks 1 fixedly connected to the inner wall of the conical cylinder, the side walls of the plurality of fixing blocks 1 are respectively provided with movable grooves, and the side walls of the placement rack are fixedly connected with a plurality of U-shaped plates; The sealing mechanism also includes a circular rod fixedly connected to the inner wall of the bottom of the conical cylinder, a sealing plate is slidably connected to the outer wall of the circular rod, and a fixing plate is fixedly connected to one end of the circular rod away from the conical cylinder.

[0005] Preferably, the mixing mechanism also includes a mounting block fixedly connected to the top of the base, a driving motor is fixedly connected to the side wall of the mounting block, the output shaft of the driving motor passes through the mounting block and is rotatably connected to the mounting block, a disc is fixedly connected to the output shaft of the driving motor, a fixing rod is fixedly connected to the side wall of the disc, an annular block is slidably connected to the outer wall of the fixing rod, push rods are respectively fixedly connected to the left and right outer walls of the annular block, and several push rods are slidably connected to the mounting block. The driving motor is started, and the driving motor drives the disc to rotate, and the rotation of the disc drives the fixed rod to rotate, and the rotation of the fixed rod forces the annular block to reciprocate left and right, and the reciprocating movement of the annular block drives several push rods to reciprocate.

[0006] Preferably, the mixing mechanism also includes mounting plates fixedly connected to the outer walls of the plurality of push rods, a buffer spring is fixedly connected to a side of the mounting plate away from the push rod, a push plate is fixedly connected to an end of the buffer spring away from the mounting plate, and a contact plate is fixedly connected to the side wall of the placement rack, and the plurality of push rods drive the mounting plate and the push plate to contact the contact plate when they move back and forth, and the push plate makes the placement rack rotate in the base after contacting the contact plate, and as the push rods continue to move back and forth, the placement rack continuously swings left and right, and the placement rack drives the conical cylinder to swing left and right at the same time, and the left and right swinging action of the placement rack can continuously stir and mix the sample and solution in the conical cylinder, and the left and right swinging of the conical cylinder can effectively promote the uniform mixing of the sample and the solution, and this swinging can cause the sample to continuously move and mix in the liquid, thereby reducing precipitation and unmixed areas, and fully mixing the sample and solvent in the conical cylinder.

[0007] Preferably, the fixing mechanism also includes a sliding rod 1 slidably connected to the side wall of the U-shaped plate, the end of the sliding rod 1 away from the U-shaped plate is fixedly connected to an inclined surface block, the side of the inclined surface block and the U-shaped plate close to each other is fixedly connected to a return spring 1, and the end of the sliding rod 1 away from the inclined surface block is fixedly connected to a pulling block. When the conical cylinder is inserted into the placement rack, the bottom of the conical cylinder contacts the inclined surface block. Due to the setting of the inclined surface of the inclined surface block, the conical cylinder moves downward and forces the inclined surface block to drive the sliding rod 1 to slide to the left. After the inclined surface block slides to the left, an extrusion force is applied to the return spring 1. As the conical cylinder continues to move downward When the conical cylinder moves downward and drives the fixed block to move to the right side of the inclined block, the inclined block and the return spring are no longer subjected to the extrusion force of the conical cylinder, and the extrusion force of the return spring is released, thereby driving the inclined block to enter the movable groove. After the inclined block enters the movable groove, it is restricted by the inclined block to limit the position of the conical cylinder, so that the conical cylinder can be prevented from rotating and shifting in position when the sample and solvent in the conical cylinder are mixed, and the unstable movement of the conical cylinder during the mixing process can be limited, so as to ensure that the mixing of the sample and the solvent is more uniform.

[0008] Preferably, the fixing mechanism also includes a plurality of sliding rods 2 slidably connected to the bottom of the placement rack, the top ends of the plurality of sliding rods 2 are respectively fixedly connected with circular plates, and the sides of the plurality of circular plates close to the placement rack are respectively fixedly connected with tension springs, and the force when the conical cylinder is inserted downward is utilized. When the conical cylinder moves downward, the bottom of the conical cylinder contacts the fixed block 2, and as the conical cylinder continues to move downward, a downward thrust is applied to the fixed block 2, thereby forcing the fixed block 2 to drive the connecting plate to move downward. After the connecting plate moves downward, it drives the plurality of sliding rods 2 to slide downward, and after the plurality of sliding rods 2 slide downward, the plurality of tension springs are subjected to an extrusion force.

[0009] Preferably, the fixing mechanism also includes a connecting plate fixedly connected to an end of the sliding rod 2 away from the circular plate, and a fixing block 2 is fixedly connected to the side of the connecting plate close to the placement frame, and the top of the fixing block 2 contacts the bottom of the conical cylinder. After the conical cylinder is inserted into the specified position, the conical cylinder is released. At this time, the inclined block has limited the conical cylinder. After the conical cylinder is released, the extrusion force exerted on several tension springs disappears, and a reaction force is applied to the connecting plate and the fixing block 2, so that the fixing block 2 drives the conical cylinder to move upward. After the fixing block 2 drives the conical cylinder to move upward, it cooperates with the inclined block. The extrusion force released by the spring makes the fixing block 2 and the inclined block close to each other to form a firmly fixed state. This can ensure that during the mixing process, the conical cylinder will not be displaced due to the vibration caused by the movement of the device or external interference, thereby improving the stability of the mixing process and the consistency of the mixing effect.

[0010] Preferably, the sealing mechanism also includes a second return spring mounted on the outer wall of the circular rod, one end of the second return spring away from the fixed plate is fixedly connected to the top of the sealing plate, the other end of the second return spring is fixedly connected to the fixed plate, the top of the corresponding circular plate is fixedly connected with a connecting rod, and the outer wall of the connecting rod is fixedly connected with a rectangular block. Under the action of the second return spring, when the mixing is completed, the rotating rod is rotated away from the top of the sealing plate. At this time, the extrusion force on the second return spring disappears, driving the sealing plate to rise, which makes it convenient for the staff to pour out the mixed sample and solvent for testing.

[0011] Preferably, the sealing mechanism also includes a rotating rod rotatably connected to the top of the rectangular block, the end of the rotating rod away from the rectangular block is fixedly connected to the limiting block, the bottom of the limiting block contacts the sealing plate, and a sliding groove is provided on the top of the conical cylinder, the sliding groove is slidably connected to the rotating rod, the rotating rod is rotated to the top of the sealing plate, and then the sealing plate is released, at this time the rotating rod limits the sealing plate, because the conical cylinder is wide at the top and narrow at the bottom, after the sealing plate moves downward, it blocks the top of the conical cylinder, so as to ensure that when the conical cylinder is mixed, the sample and solution in the conical cylinder will not be affected by shaking, and the narrow design of the bottom of the conical cylinder combined with the limitation of the sealing plate can effectively prevent liquid overflow during the mixing process, thereby reducing potential dangers and waste.

[0012] The present invention has the following beneficial effects: The present invention utilizes the force when the conical cylinder is inserted downward. When the conical cylinder moves downward, the bottom of the conical cylinder contacts the fixed block 2. As the conical cylinder continues to move downward, a downward thrust is applied to the fixed block 2, thereby forcing the fixed block 2 to drive the connecting plate to move downward. After the connecting plate moves downward, it drives a plurality of sliding bars 2 to slide downward. After the plurality of sliding bars 2 slide downward, a plurality of tension springs are subjected to an extrusion force. After the conical cylinder is inserted to the specified position, the conical cylinder is released. At this time, the inclined surface block has limited the conical cylinder. After the conical cylinder is released, the extrusion force exerted on the plurality of tension springs disappears, and a reaction force is applied to the connecting plate and the fixed block 2, so that the fixed block 2 drives the conical cylinder to move upward. After the fixed block 2 drives the conical cylinder to move upward, it cooperates with the inclined surface block. The extrusion force released by the spring makes the fixed block 2 and the inclined surface block close to each other to form a firmly fixed state. In this way, it can be ensured that during the mixing process, the conical cylinder will not be offset due to the vibration caused by the movement of the device or external interference, thereby improving the stability of the mixing process and the consistency of the mixing effect.

[0013] When the edible fungi need to be tested for heavy metals, the present invention first rotates a plurality of rotating rods to make them slide in the slide grooves and away from the top of the placement rack, and then inserts the conical tube from the top of the placement rack. When the conical tube is inserted into the placement rack, the bottom of the conical tube contacts the inclined surface block. Due to the setting of the inclined surface of the inclined surface block, the conical tube moves downward and forces the inclined surface block to drive the slide rod to slide to the left. After the inclined surface block slides to the left, an extrusion force is applied to the reset spring. As the conical tube continues to move downward, when the conical tube moves downward with the slide rod, the slide rod is pushed to the left. When the movable fixed block moves to the right side of the inclined block, the inclined block and the return spring 1 are no longer subjected to the extrusion force of the conical tube, and the extrusion force of the return spring 1 is released, thereby driving the inclined block to enter the movable groove. After the inclined block enters the movable groove, it is restricted by the inclined block to limit the position of the conical tube, thereby preventing the conical tube from rotating and shifting when the sample and solvent in the conical tube are mixed, and limiting the unstable movement of the conical tube during the mixing process, thereby ensuring a more uniform mixing of the sample and the solvent.

[0014] The present invention utilizes the force when the sliding rod moves downward, fixes the conical tube into the placement rack, and then pours the sample and solution to be mixed into the conical tube through the gap between the conical tube and the sealing plate, and then presses the sealing plate to move downward. After the sealing plate moves downward, the rotating rod is rotated to the top of the sealing plate, and then the sealing plate is released. At this time, the rotating rod limits the sealing plate. Since the conical tube is wide at the top and narrow at the bottom, the sealing plate blocks the top of the conical tube after it moves downward, so that when the conical tube is mixed, the sample and solution in the conical tube will not be affected by shaking. The narrow design of the bottom of the conical tube and the limitation of the sealing plate can effectively prevent liquid from overflowing during the mixing process, thereby reducing potential dangers and waste.

[0015] After the conical tube is fixed and the top is sealed, the driving motor is started, and the driving motor drives the disc to rotate. After the disc rotates, it drives the fixing rod to rotate. After the fixing rod rotates, the annular block is forced to move back and forth left and right. When the annular block moves back and forth, it drives a plurality of push rods to move back and forth. When the plurality of push rods move back and forth, they drive the mounting plate and the push plate to contact with the contact plate. After the push plate contacts with the contact plate, the placement rack is rotated in the base. As the push rods continuously move back and forth, the placement rack continuously swings left and right. While the placement rack swings left and right, it drives the conical tube to swing left and right. The left and right swinging action of the placement rack can continuously stir and mix the sample and solution in the conical tube. The left and right swinging of the conical tube can effectively promote the uniform mixing of the sample and the solution. This swinging can continuously move and mix the sample in the liquid, thereby reducing precipitation and unmixed areas, and fully mixing the sample and solvent in the conical tube. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for describing the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative work.

[0017] Figure 1 It is an exploded schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the overall structure of the present invention; Figure 3 It is a partial structural cross-sectional schematic diagram of the mixing mechanism of the present invention; Figure 4 For the present invention Figure 3 A is an enlarged schematic diagram; Figure 5 It is a schematic diagram of the fixing mechanism of the present invention; Figure 6 For the present invention Figure 5 A magnified schematic diagram of B; Figure 7 It is a schematic diagram of the sealing mechanism of the present invention; Figure 8 For the present invention Figure 7 A magnified schematic diagram of C in the middle.

[0018] In the accompanying drawings, the components represented by the reference numerals are listed as follows: In the figure: 1, mixing mechanism; 101, base; 102, placing frame; 103, conical cylinder; 104, mounting block; 105, driving motor; 106, disc; 107, fixing rod; 108, annular block; 109, push rod; 110, mounting plate; 111, buffer spring; 112, push plate; 113, contact plate; 2, fixing mechanism; 201, fixing block 1; 202, movable groove; 203, U-shaped plate; 204, sliding Rod one; 205, inclined block; 206, reset spring one; 207, pull block; 208, slide rod two; 209, circular plate; 210, tension spring; 211, connecting plate; 212, fixed block two; 3, sealing mechanism; 301, circular rod; 302, sealing plate; 303, fixed plate; 304, reset spring two; 305, connecting rod; 306, rectangular block; 307, rotating rod; 308, limit block; 309, slide groove. DETAILED DESCRIPTION

[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0020] For example, see Figure 1 - Figure 4 The present invention is an edible fungus mixing device, comprising a mixing mechanism 1, the mixing mechanism 1 further comprising a base 101, a placing rack 102 is rotatably connected to the inner wall of the base 101, and a conical cylinder 103 is arranged in the placing rack 102; The fixing mechanism 2 further comprises a plurality of fixing blocks 201 fixedly connected to the inner wall of the conical cylinder 103, and the side walls of the plurality of fixing blocks 201 are respectively provided with movable grooves 202, and the side walls of the placement rack 102 are fixedly connected with a plurality of U-shaped plates 203; The sealing mechanism 3 also includes a circular rod 301 fixedly connected to the inner wall of the bottom of the conical cylinder 103, a sealing plate 302 is slidably connected to the outer wall of the circular rod 301, and a fixing plate 303 is fixedly connected to one end of the circular rod 301 away from the conical cylinder 103.

[0021] The mixing mechanism 1 also includes a mounting block 104 fixedly connected to the top of the base 101, a driving motor 105 is fixedly connected to the side wall of the mounting block 104, an output shaft of the driving motor 105 penetrates the mounting block 104 and is rotatably connected to the mounting block 104, a disc 106 is fixedly connected to the output shaft of the driving motor 105, a fixing rod 107 is fixedly connected to the side wall of the disc 106, an annular block 108 is slidably connected to the outer wall of the fixing rod 107, push rods 109 are fixedly connected to the left and right outer walls of the annular block 108, and several push rods 109 are slidably connected to the mounting block 104. The driving motor 105 is started, and the driving motor 105 drives the disc 106 to rotate. After the disc 106 rotates, it drives the fixing rod 107 to rotate. After the fixing rod 107 rotates, it forces the annular block 108 to reciprocate left and right. When the annular block 108 reciprocates, it drives several push rods 109 to reciprocate.

[0022] The mixing mechanism 1 further includes mounting plates 110 respectively fixedly connected to the outer walls of the plurality of push rods 109, a buffer spring 111 is fixedly connected to the side of the mounting plate 110 away from the push rod 109, a push plate 112 is fixedly connected to the end of the buffer spring 111 away from the mounting plate 110, and a contact plate 113 is fixedly connected to the side wall of the placement rack 102. When the plurality of push rods 109 reciprocate, the mounting plate 110 and the push plate 112 are driven to contact the contact plate 113, and after the push plate 112 contacts the contact plate 113, the placement rack 102 is rotated in the base 101. As the push rod 109 continuously moves back and forth, the placement rack 102 continuously swings left and right. The placement rack 102 swings left and right while driving the conical tube 103 to swing left and right. The left and right swinging action of the placement rack 102 can continuously stir and mix the sample and solution in the conical tube 103. The left and right swinging of the conical tube 103 can effectively promote the uniform mixing of the sample and the solution. This swinging can cause the sample to continuously move and mix in the liquid, thereby reducing precipitation and unmixed areas, and fully mixing the sample and solvent in the conical tube 103.

[0023] For example 2, please refer to Figure 5 - Figure 8The present invention is an edible fungus mixing device. On the basis of Example 1, the fixing mechanism 2 also includes a slide bar 204 slidably connected to the side wall of the U-shaped plate 203. The end of the slide bar 204 away from the U-shaped plate 203 is fixedly connected to a slope block 205. The side of the slope block 205 and the U-shaped plate 203 close to each other is fixedly connected to a return spring 206. The end of the slide bar 204 away from the slope block 205 is fixedly connected to a pull block 207. When the conical cylinder 103 is inserted into the placement rack 102, the bottom of the conical cylinder 103 contacts the slope block 205. Due to the setting of the inclined surface of the slope block 205, the conical cylinder 103 moves downward and forces the slope block 205 to drive the slide bar 204 to slide to the left. After the slope block 205 slides to the left, it exerts a pull on the return spring 206. An extrusion pressure, as the conical cylinder 103 continues to move downward, when the conical cylinder 103 moves downward and drives the fixed block 201 to move down to the right side of the inclined block 205, the inclined block 205 and the return spring 206 are no longer subjected to the extrusion pressure of the conical cylinder 103, and the extrusion pressure on the return spring 206 is released, thereby driving the inclined block 205 to enter the movable groove 202. After the inclined block 205 enters the movable groove 202, it is restricted by the inclined block 205 to limit the conical cylinder 103. In this way, when the sample and solvent in the conical cylinder 103 are mixed, the conical cylinder 103 is prevented from rotating and shifting in position, and the unstable movement of the conical cylinder 103 during the mixing process can be limited, so as to ensure that the sample and the solvent are mixed more evenly.

[0024] The fixing mechanism 2 also includes a plurality of slide bars 208 slidably connected to the bottom of the placement rack 102, and the top ends of the plurality of slide bars 208 are respectively fixedly connected with circular plates 209, and the sides of the plurality of circular plates 209 close to the placement rack 102 are respectively fixedly connected with tension springs 210, and the force when the conical cylinder 103 is inserted downward is utilized. When the conical cylinder 103 moves downward, the bottom of the conical cylinder 103 contacts with the fixed block 212, and as the conical cylinder 103 continues to move downward, a downward thrust is applied to the fixed block 212, thereby forcing the fixed block 212 to drive the connecting plate 211 to move downward, and after the connecting plate 211 moves downward, it drives the plurality of slide bars 208 to slide downward, and after the plurality of slide bars 208 slide downward, the plurality of tension springs 210 are subjected to an extrusion force.

[0025] The fixing mechanism 2 also includes a connecting plate 211 fixedly connected to the end of the second slide bar 208 away from the circular plate 209. The connecting plate 211 is fixedly connected to a fixing block 212 on one side close to the placement rack 102. The top of the fixing block 212 contacts the bottom of the conical cylinder 103. After the conical cylinder 103 is inserted into the specified position, the conical cylinder 103 is released. At this time, the inclined block 205 has limited the conical cylinder 103. After the conical cylinder 103 is released, the extrusion force on the plurality of tension springs 210 disappears, and the connecting plate 211 and the fixing block 212 are pressed. The second block 212 applies a reaction force, so that the fixed block 212 drives the conical cylinder 103 to move upward. After the fixed block 212 drives the conical cylinder 103 to move upward, it cooperates with the inclined block 205. The extrusion force released by the spring makes the fixed block 212 and the inclined block 205 close to each other, forming a firmly fixed state. In this way, it can be ensured that during the mixing process, the conical cylinder 103 will not be displaced due to the vibration caused by the movement of the device or external interference, thereby improving the stability of the mixing process and the consistency of the mixing effect.

[0026] The sealing mechanism 3 also includes a second return spring 304 sleeved on the outer wall of the circular rod 301, and one end of the second return spring 304 away from the fixed plate 303 is fixedly connected to the top of the sealing plate 302, and the other end of the second return spring 304 is fixedly connected to the fixed plate 303. The top of the corresponding circular plate 209 is fixedly connected with a connecting rod 305, and the outer wall of the connecting rod 305 is fixedly connected with a rectangular block 306. Under the action of the second return spring 304, when the mixing is completed, the rotating rod 307 is rotated away from the top of the sealing plate 302. At this time, the extrusion force on the second return spring 304 disappears, driving the sealing plate 302 to rise, which can facilitate the staff to pour out the mixed sample and solvent for testing.

[0027] The sealing mechanism 3 also includes a rotating rod 307 rotatably connected to the top of the rectangular block 306, and the end of the rotating rod 307 away from the rectangular block 306 is fixedly connected to a limiting block 308, and the bottom of the limiting block 308 contacts the sealing plate 302. A sliding groove 309 is provided on the top of the conical cylinder 103, and the sliding groove 309 is slidably connected to the rotating rod 307. The rotating rod 307 is rotated to the top of the sealing plate 302, and then the sealing plate 302 is released. At this time, the rotating rod 307 limits the sealing plate 302. Since the conical cylinder 103 is wide at the top and narrow at the bottom, the sealing plate 302 blocks the top of the conical cylinder 103 after moving downward. This ensures that when the conical cylinder 103 is mixed, the sample and solution in the conical cylinder 103 will not be affected by shaking. The narrow design of the bottom of the conical cylinder 103 and the limitation of the sealing plate 302 can effectively prevent liquid overflow during the mixing process, thereby reducing potential dangers and waste.

[0028] A specific application of this embodiment is: When it is necessary to detect heavy metals in edible fungi, firstly rotate several rotating rods 307 to make several rotating rods 307 slide in the slide groove 309 and away from the top of the placement rack 102, and then insert the conical tube 103 from the top of the placement rack 102. After the conical tube 103 is inserted into the placement rack 102, the bottom of the conical tube 103 contacts the inclined surface block 205. Due to the inclined surface setting of the inclined surface block 205, the conical tube 103 moves downward and forces the inclined surface block 205 to drive the slide rod 1 204 to slide to the left. After the inclined surface block 205 slides to the left, an extrusion force is applied to the reset spring 1 206. As the conical tube 103 continues to move downward, when the conical tube 103 moves downward, When the fixed block 201 is moved downward to the right side of the inclined block 205, the inclined block 205 and the return spring 206 are no longer subjected to the extrusion force of the conical tube 103, and the extrusion force of the return spring 206 is released, thereby driving the inclined block 205 to enter the movable groove 202. After the inclined block 205 enters the movable groove 202, it is restricted by the inclined block 205 to limit the conical tube 103, so that when the sample and solvent in the conical tube 103 are mixed, the conical tube 103 is prevented from rotating and shifting in position, and the unstable movement of the conical tube 103 during the mixing process can be limited, so that the mixing of the sample and the solvent can be ensured to be more uniform.

[0029] By utilizing the force of the tapered tube 103 being inserted downward, when the tapered tube 103 moves downward, the bottom of the tapered tube 103 contacts the second fixed block 212. As the tapered tube 103 continues to move downward, a downward thrust is applied to the second fixed block 212, thereby forcing the second fixed block 212 to drive the connecting plate 211 to move downward. After the connecting plate 211 moves downward, it drives the second slide bars 208 to slide downward. After the second slide bars 208 slide downward, the tension springs 210 are subjected to an extrusion force. After the tapered tube 103 is inserted to the specified position, the tapered tube 103 is released. At this time, the inclined surface block 205 has already pressed against the tapered tube. The cylinder 103 is limited. After the conical cylinder 103 is released, the extrusion force on the several tension springs 210 disappears, and a reaction force is applied to the connecting plate 211 and the fixed block 212, so that the fixed block 212 drives the conical cylinder 103 to move upward. After the fixed block 212 drives the conical cylinder 103 to move upward, it cooperates with the inclined block 205. The extrusion force released by the spring makes the fixed block 212 and the inclined block 205 close to each other, forming a firmly fixed state. In this way, it can be ensured that during the mixing process, the conical cylinder 103 will not be displaced due to the vibration caused by the movement of the device or external interference.

[0030] The conical cylinder 103 is fixed to the placement rack 102 by utilizing the force of the sliding rod 208 when it moves downward, and the sample and solution to be mixed are poured into the conical cylinder 103 through the gap between the conical cylinder 103 and the sealing plate 302, and then the sealing plate 302 is pressed downward. After the sealing plate 302 moves downward, the rotating rod 307 is rotated to rotate the rotating rod 307 to the top of the sealing plate 302, and then the sealing plate 302 is released. At this time, the rotating rod 307 limits the sealing plate 302. Since the conical cylinder 103 is wide at the top and narrow at the bottom, the sealing plate 302 blocks the top of the conical cylinder 103 after it moves downward. This ensures that when the conical cylinder 103 is mixed, the sample and solution in the conical cylinder 103 will not be affected by shaking. The narrow design of the bottom of the conical cylinder 103 and the limitation of the sealing plate 302 can effectively prevent liquid from overflowing during the mixing process, thereby reducing potential dangers and waste.

[0031] After the conical cylinder 103 is fixed and the top is sealed, the driving motor 105 is started, and the driving motor 105 drives the disc 106 to rotate. After the disc 106 rotates, it drives the fixing rod 107 to rotate. After the fixing rod 107 rotates, the annular block 108 is forced to reciprocate left and right. When the annular block 108 reciprocates, it drives a plurality of push rods 109 to reciprocate. When the plurality of push rods 109 reciprocate, they drive the mounting plate 110 and the push plate 112 to contact with the contact plate 113. After the push plate 112 contacts with the contact plate 113, the placement rack 102 rotates in the base 101. As the push rod 109 continuously moves back and forth, the placement rack 102 continuously swings left and right. The placement rack 102 swings left and right while driving the conical tube 103 to swing left and right. The left and right swinging action of the placement rack 102 can continuously stir and mix the sample and solution in the conical tube 103. The left and right swinging of the conical tube 103 can effectively promote the uniform mixing of the sample and the solution. This swinging can make the sample continuously move and mix in the liquid, thereby reducing precipitation and unmixed areas, and fully mixing the sample and solvent in the conical tube 103.

[0032] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. An edible fungus mixing device, comprising a mixing mechanism (1), the mixing mechanism (1) further comprising a base (101), a placing rack (102) being rotatably connected to the inner wall of the base (101), a conical cylinder (103) being arranged in the placing rack (102), characterized in that: Also includes: A fixing mechanism (2), the fixing mechanism (2) comprising a plurality of fixing blocks (201) fixedly connected to the inner wall of the conical cylinder (103), side walls of the plurality of fixing blocks (201) being respectively provided with movable grooves (202), and a plurality of U-shaped plates (203) being fixedly connected to the side walls of the placement rack (102); The sealing mechanism (3) further comprises a circular rod (301) fixedly connected to the inner wall of the bottom of the conical cylinder (103), a sealing plate (302) being slidably connected to the outer wall of the circular rod (301), and a fixing plate (303) being fixedly connected to one end of the circular rod (301) away from the conical cylinder (103).

2. The edible fungus mixing device according to claim 1, characterized in that: The mixing mechanism (1) further comprises a mounting block (104) fixedly connected to the top of the base (101); a driving motor (105) is fixedly connected to the side wall of the mounting block (104); an output shaft of the driving motor (105) passes through the mounting block (104) and is rotatably connected to the mounting block (104); a disc (106) is fixedly connected to the output shaft of the driving motor (105); a fixing rod (107) is fixedly connected to the side wall of the disc (106); an annular block (108) is slidably connected to the outer wall of the fixing rod (107); push rods (109) are fixedly connected to the left and right outer walls of the annular block (108), respectively; and a plurality of push rods (109) are slidably connected to the mounting block (104).

3. The edible fungus mixing device according to claim 2, characterized in that: The mixing mechanism (1) further comprises mounting plates (110) respectively fixedly connected to the outer walls of the plurality of push rods (109); a buffer spring (111) is fixedly connected to one side of the mounting plate (110) away from the push rods (109); a push plate (112) is fixedly connected to one end of the buffer spring (111) away from the mounting plate (110); and a contact plate (113) is fixedly connected to the side wall of the placement rack (102).

4. The edible fungus mixing device according to claim 3, characterized in that: The fixing mechanism (2) further comprises a sliding rod (204) slidably connected to the side wall of the U-shaped plate (203); an end of the sliding rod (204) away from the U-shaped plate (203) is fixedly connected to an inclined surface block (205); a side of the inclined surface block (205) close to the U-shaped plate (203) is fixedly connected to a return spring (206); and an end of the sliding rod (204) away from the inclined surface block (205) is fixedly connected to a pull block (207).

5. The edible fungus mixing device according to claim 4, characterized in that: The fixing mechanism (2) further comprises a plurality of sliding rods (208) slidably connected to the bottom of the placement rack (102), the top ends of the plurality of sliding rods (208) being fixedly connected to circular plates (209), and the sides of the plurality of circular plates (209) close to the placement rack (102) being fixedly connected to tension springs (210).

6. The edible fungus mixing device according to claim 5, characterized in that: The fixing mechanism (2) further comprises a connecting plate (211) fixedly connected to an end of the second sliding rod (208) away from the circular plate (209), and a second fixing block (212) is fixedly connected to a side of the connecting plate (211) close to the placement rack (102), and the top of the second fixing block (212) contacts the bottom of the conical cylinder (103).

7. The edible fungus mixing device according to claim 6, characterized in that: The sealing mechanism (3) further comprises a second return spring (304) sleeved on the outer wall of the circular rod (301); one end of the second return spring (304) away from the fixed plate (303) is fixedly connected to the top of the sealing plate (302); the other end of the second return spring (304) is fixedly connected to the fixed plate (303); the top of the corresponding circular plate (209) is fixedly connected to a connecting rod (305); and a rectangular block (306) is fixedly connected to the outer wall of the connecting rod (305).

8. The edible fungus mixing device according to claim 7, characterized in that: The sealing mechanism (3) further comprises a rotating rod (307) rotatably connected to the top of the rectangular block (306); one end of the rotating rod (307) away from the rectangular block (306) is fixedly connected to a limiting block (308); the bottom of the limiting block (308) is in contact with the sealing plate (302); a sliding groove (309) is provided on the top of the conical cylinder (103); and the sliding groove (309) is slidably connected to the rotating rod (307).