Automatic efficient dish washing machine

Through the design of rubber band transmission line and conveying line, combined with electronically controlled push rods and cup clips, the automatic flip and direction of dining plates, bowls and cups is achieved, solving the problem of manual separation in existing dishwashers and improving the automation level and washing efficiency.

CN120570524AActive Publication Date: 2025-09-02LIANGJI (XIAMEN) AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202511081715.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-04
Publication Date
2025-09-02
Estimated Expiration
2045-08-04

AI Technical Summary

Technical Problem

Existing dishwashers are not effective when separating dining plates, bowls and cups, and require manual assistance, affecting the level of automation and washing efficiency.

Method used

The rubber band transmission line and multiple conveyor lines are designed, combined with components such as electronically controlled push rods, cup clips and toggle rods to achieve automatic flipping and unified direction of dining plates, bowls and cups, and reduce manual intervention.

Benefits of technology

It improves the automation level and washing efficiency of tableware separation, reduces manual intervention, ensures the uniform direction of tableware openings, and improves washing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an automatic efficient dish-washing machine, and relates to the field of dish-washing machines, the automatic efficient dish-washing machine comprises a rubber band conveying line, a first spraying box, a second conveying line, a third conveying line, a fourth conveying line and a second spraying box, a second material sliding plate is arranged on the surface of the rubber band conveying line, an electric control push rod is arranged on the surface of the second material sliding plate, and a first material sliding plate is arranged on the surface of the rubber band conveying line. A material distributing block is arranged on the surface of the first material sliding plate, a first material sliding groove and a second material sliding groove are formed in the surface of the first material sliding plate, a plurality of first cylindrical blocks are arranged above the fifth conveying bed, a plurality of shifting rods are arranged on the surfaces of the first cylindrical blocks, and a plurality of avoiding round blocks are arranged on the surfaces of conveying rollers of the fifth conveying bed. A plurality of guide rollers are arranged on the surface of the fifth conveying bed, two second cylindrical blocks are arranged below the second sliding groove, and a plurality of cup clamping pieces are arranged on the surfaces of the second cylindrical blocks in an annular array. By automatically unifying the opening directions of dinner plates, bowls and cups, the automation level and the washing efficiency are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of dishwashers, in particular to an automatic high-efficiency dishwasher. Background Art

[0002] Currently, commercial dishwashers are widely used in hotels, restaurants and large exhibitions. They have the advantages of high cleaning efficiency and reduced labor costs.

[0003] Existing dishwashers include an inclined conveyor that transports plates and bowls placed on the plates in one direction. When they reach the predetermined position, the bowls slide out of the reserved gaps due to their own gravity, while the plates continue to move forward, thereby separating the plates and bowls.

[0004] During actual use, when bowls, cups and plates slide out of the gaps, their openings are usually not uniform, and staff often need to place them with their openings facing downward to facilitate spray washing of the bowls, cups and plates. In other words, the separation effect of the dishwasher is poor and manual assistance is required for the separation process, which is not conducive to improving the automation level and washing efficiency of the device. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to provide an automatic and efficient dishwasher, which significantly improves the automation level and washing efficiency and reduces manual intervention by automatically unifying the opening directions of plates, bowls and cups.

[0006] In order to solve the above technical problems, the technical solutions of the present invention are as follows: An automatic high-efficiency dishwasher includes a rubber band transmission line, a first spray box is provided on the surface of the rubber band transmission line, a second conveyor line, a third conveyor line and a fourth conveyor line are provided below the rubber band transmission line, and a second spray box is provided on the surface of the second conveyor line, the third conveyor line and the fourth conveyor line, including: A second sliding plate is provided on the surface of the rubber band transmission line, and an electric push rod is installed on the surface of the second sliding plate, and the electric push rod is used to flip the plate; The surface of the rubber band transmission line is provided with a first sliding plate, the surface of the first sliding plate is fixedly connected to a dividing block, the surfaces of the first sliding plate are respectively fixedly connected to a first sliding trough and a second sliding trough, a fifth conveyor bed is provided below the first sliding trough, a plurality of first cylindrical blocks are obliquely provided above the fifth conveyor bed along the extension direction of the fifth conveyor bed, a plurality of toggle rods are fixedly connected to the surface of the conveying roller of the fifth conveyor bed in an annular array, and a plurality of avoidance round blocks are fixedly connected at equal distances on the surface of each conveying roller of the fifth conveyor bed, and the toggle rods are located between the corresponding adjacent avoidance round blocks; The surface of the fifth conveyor bed is provided with a plurality of guide rollers, and the guide rollers are used to guide the bowls during the turning process; Two second cylindrical blocks are provided below the second sliding trough, and a plurality of cup clamping members are provided on the surface of the second cylindrical block in a ring array. Through the cooperation of the two groups of cup clamping members, the cup is placed on the surface of the fourth conveyor line with its mouth facing downward.

[0007] Furthermore, the surface of the rubber band transmission line is fixedly connected with a first baffle and a second baffle along the surface of the rubber band transmission line, the first slide plate is fixedly connected to the surface of the rubber band transmission line, the dividing block is fixedly connected to the surface of the first slide plate, the surface of the rubber band transmission line is fixedly connected with a first stop block and a second stop block, the second slide plate is located between the first stop block and the second stop block, and U-shaped frames are fixedly connected in the strip grooves symmetrically opened on the surface of the second slide plate.

[0008] Furthermore, a second motor is provided on the surface of the second cylindrical block, the second cylindrical block is fixedly connected to the end of the output shaft of the second motor, a mounting bracket is provided on the surface of the second motor, the mounting bracket is fixedly connected to the surface of the rubber band transmission line, the second motor is mounted on the surface of the mounting bracket, the surface of the second cylindrical block is fixedly connected to the third support rod in a circular array, and the clamping cup is provided on the corresponding surface of the third support rod.

[0009] Furthermore, the clamping cup member includes a first clamping portion, the first clamping portion is fixedly connected to the corresponding end portion of the third support rod, a sliding column is slidably connected in a first sliding groove opened on the surface of the first clamping portion, a first spring is provided in the first sliding groove opened on the surface of the first clamping portion, two ends of the first spring are respectively fixedly connected to the first clamping portion and the sliding column, the end of the sliding column is fixedly connected to the second clamping portion, an electromagnet is embedded in the interior of the first clamping portion, the central axis of the electromagnet coincides with the central axis of the sliding column, a second sensor is installed on the surface of the first clamping portion and the second clamping portion, and a first sensor is installed on the surface of the first clamping portion.

[0010] Furthermore, the surface of the fifth conveyor bed is fixedly connected to a first vertical plate and a second vertical plate, the first cylindrical block is arranged between the first vertical plate and the second vertical plate, the surface of the first cylindrical block is symmetrically provided with a first groove, a supporting round rod is rotatably connected to the first through groove provided on the surface of the first groove via a first bearing, and the surface of the supporting round rod is fixedly connected to a connecting plate; The supporting round rods corresponding to two adjacent first cylindrical blocks are fixedly connected to the connecting plate, the supporting round rods close to the first vertical plate are fixedly connected to the first vertical plate, and the supporting round rods close to the second vertical plate are fixedly connected to the second vertical plate through extension rods.

[0011] Furthermore, the inside of the first groove is fixedly connected to the first gear, the surface of the supporting round rod is fixedly connected to the first support rod, the first circular groove opened on the surface of the first support rod is rotatably connected to the second round rod through the second bearing, and both ends of the second round rod are fixedly connected to the third gear, the two third gears are respectively located inside the two first cylindrical blocks, the ends of the supporting round rods are rotatably connected to the second gear through the third bearing, the second gear is meshed with the third gear inside the same first cylindrical block, the surface of the connecting plate is fixedly connected to the second support rod, the surface of the second support rod is rotatably connected to the fourth gear through a convex bearing, the fourth gear is meshed with the second gear and the first gear inside the same first cylindrical block, the surface of the first vertical plate is installed with a first motor, the end of the first motor output shaft is fixedly connected to a fifth gear, and the fifth gear is meshed with the corresponding first gear.

[0012] Furthermore, a first blocking piece is fixedly connected to the interior of the first cylindrical block, and a first blocking ring is symmetrically fixedly connected to the surface of the first cylindrical block.

[0013] Furthermore, a first guide bracket is fixedly connected to the surface of the fifth conveyor bed, the guide rollers are equidistantly arranged on the surface of the first guide bracket, a second guide bracket is arranged on the surface of the guide roller, and the guide rollers are rotatably connected between the first guide bracket and the second guide bracket through two fifth bearings.

[0014] The above solution of the present invention includes at least the following beneficial effects: In the above solution of the present invention, the electric control push rod installed on the surface of the second sliding plate automatically turns the plate over with the opening facing downward when the plate slides down, thus avoiding manual placement. The first cylindrical block and the avoidance block on the fifth conveyor bed cooperate with the toggle rod and the guide roller to realize the automatic flipping of the bowls. That is, the bowls with the opening facing downwards are flipped to have the opening facing upwards, while the bowls with the opening facing upwards are not flipped but remain stable, ensuring the uniform direction and improving the efficiency of bowl processing. The cup is automatically clamped and turned over by the cup clamping piece on the second cylindrical block so that it is placed on the surface of the fourth conveyor line with its mouth facing downward, reducing manual intervention. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a schematic diagram of the overall structure provided by the present invention.

[0016] Figure 2 It is a schematic diagram of the second sliding trough in the present invention.

[0017] Figure 3 It is a schematic diagram of the second motor in the present invention.

[0018] Figure 4 It is a schematic diagram of the first guide bracket in the present invention.

[0019] Figure 5 It is a schematic diagram of the first cylindrical block in the present invention.

[0020] Figure 6 It is a schematic diagram of the fifth gear in the present invention.

[0021] Figure 7 This invention Figure 2 Enlarged view of point A in the middle.

[0022] Figure 8 This invention Figure 3 Enlarged view of point B in the middle.

[0023] In the figure: 101, rubber band transmission line; 102, first spray box; 103, second conveyor line; 104, third conveyor line; 105, fourth conveyor line; 106, second spray box; 201, first baffle; 202, second baffle; 203, first slide plate; 204, material dividing block; 205, first slide chute; 206, second slide chute; 207, first stopper; 208, second stopper; 209, second slide plate; 210, U-shaped frame; 211, electric push rod; 301, fifth conveyor bed; 303, avoidance block; 304, first guide bracket; 305, guide roller; 306, second guide bracket; 307, first vertical plate; 308, second vertical plate; 309, supporting rod; 310, connecting plate; 311, first cylindrical block; 312, first groove; 313, first gear; 314, first baffle; 315, first baffle ring; 316, second gear; 317, first support rod; 318, second rod; 319, third gear; 320, second support rod; 321, fourth gear; 322, first motor; 323, fifth gear; 324, toggle lever; 401. Mounting frame; 402. Second motor; 403. Second cylindrical block; 404. Third support rod; 405. First clamping portion; 406. Second clamping portion; 407. Electromagnet; 408. Sliding column; 409. First spring; 410. First sensor; 411. Second sensor. DETAILED DESCRIPTION

[0024] The following describes exemplary embodiments of the present disclosure in more detail with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the accompanying drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the present disclosure to those skilled in the art.

[0025] like Figures 1 to 8 As shown, an embodiment of the present invention provides an automatic high-efficiency dishwasher, including a rubber band transmission line 101, a first spray box 102 is provided on the surface of the rubber band transmission line 101, a second conveyor line 103, a third conveyor line 104 and a fourth conveyor line 105 are provided below the rubber band transmission line 101, and a second spray box 106 is provided on the surface of the second conveyor line 103, the third conveyor line 104 and the fourth conveyor line 105, including: A second sliding plate 209 is provided on the surface of the rubber band transmission line 101. An electric push rod 211 is installed on the surface of the second sliding plate 209. The electric push rod 211 is used to flip the plate. A first sliding plate 203 is provided on the surface of the rubber band transmission line 101, and a dividing block 204 is fixedly connected to the surface of the first sliding plate 203. A first sliding trough 205 and a second sliding trough 206 are respectively fixedly connected to the surface of the first sliding plate 203. A fifth conveyor bed 301 is provided below the first sliding trough 205. A plurality of first cylindrical blocks 311 are obliquely provided above the fifth conveyor bed 301 along the extension direction of the fifth conveyor bed 301. A plurality of toggle rods 324 are fixedly connected to the surface of the first cylindrical block 311 in a circular array. A plurality of avoidance blocks 303 are fixedly connected to the surface of the conveying roller of the fifth conveyor bed 301 at equal intervals, and the toggle rods 324 are located between the corresponding adjacent avoidance blocks 303. The surface of the fifth conveyor bed 301 is provided with a plurality of guide rollers 305, which are used to guide the bowls during the turning process; Two second cylindrical blocks 403 are provided below the second slide trough 206 . A plurality of cup clamping members are provided on the surface of the second cylindrical block 403 in a circular array. Through the cooperation of the two groups of cup clamping members, the cup is placed on the surface of the fourth conveyor line 105 with its mouth facing downward.

[0026] In the embodiment of the present invention, when washing tableware, the dinner plate is placed directly on the rubber conveyor line 101 with its opening facing upward for conveyance, and the bowls and cups are placed on a tray and then placed on the rubber conveyor line 101 for conveyance. As the rubber conveyor line 101 is tilted, the bowls and cups on the tray fall on the surface of the first sliding plate 203. Under the action of the dividing block 204, the bowls pass through the first sliding trough 205 and fall onto the surface of the fifth conveyor bed 301. The cups pass through the second sliding trough 206 and are clamped by the cup clamping member. The cup clamping member that clamps the cups rotates with the second cylindrical block 403, so that the cups face downward and fall onto the surface of the fourth conveyor line 105 for conveyance. The bowl lands on the fifth conveyor bed 301 and moves toward the first cylindrical blocks 311 during the conveying process. When the bowl with the opening downward approaches one of the first cylindrical blocks 311, the first cylindrical block 311 rotates, causing the toggle rod 324 to toggle the bowl in a clockwise direction. The bowl edge of the bowl, with the help of the bumps on the surface of the avoidance block 303, turns over to face the bowl upward. When the bowl with the opening upward approaches one of the first cylindrical blocks 311, the toggle rod 324 tilts the bowl. After the bowl surface passes the bumps on the avoidance block 303, it returns to its normal position due to gravity and is not flipped over by the toggle rod 324. When the dinner plate slides onto the second sliding plate 209 , it is pushed by the extension of the electric control push rod 211 , turned over to have the opening facing downward, and slides onto the second conveyor line 103 to be conveyed away.

[0027] The surface of the rubber band transmission line 101 is fixedly connected with a first baffle 201 and a second baffle 202 along the surface of the rubber band transmission line 101, the first slide plate 203 is fixedly connected to the surface of the rubber band transmission line 101, the dividing block 204 is fixedly connected to the surface of the first slide plate 203, the surface of the rubber band transmission line 101 is fixedly connected with a first stop block 207 and a second stop block 208, the second slide plate 209 is located between the first stop block 207 and the second stop block 208, and the U-shaped frame 210 is fixedly connected in the symmetrical strip grooves on the surface of the second slide plate 209.

[0028] In the embodiment of the present invention, when the conveyor line starts to tilt, the meal plates and trays tend to slide down along the inclined portion of the conveyor line. The function of the first baffle 201 is to prevent the meal plates and trays from leaving the conveyor line. The distance between the second baffle 202 and the dividing block 204 is less than the length of the meal plates and trays, so that the meal plates and trays will not fall onto the surface of the first sliding plate 203. After the tray slides over the first baffle 201, since the height of the cups is higher than that of the bowls, the second baffle 202 and the dividing block 204 prevent the tray from falling onto the surface of the first sliding plate 203. The bowls remain in the tray under the obstruction of the second baffle 202. When the tray passes the dividing block 204, on the inclined conveyor line, the bowls in the tray fall onto the surface of the first sliding plate 203. The cups and bowls falling on the surface of the first sliding plate 203 pass through the two sides of the dividing block 204 and fall into the corresponding first sliding trough 205 or second sliding trough 206; The function of the first stopper 207 is to prevent the bowls on the tray from continuing to be transported along the transmission line. When all the bowls in the tray slide out of the tray, the tray can continue to be transported along the transmission line, and the dinner plate is directly transported under the first stopper 207. The distance between the second stopper 208 and the rubber band transmission line 101 allows the tray to continue to be transported through the second stopper 208, and the dinner plate is blocked by the second stopper 208, so that the dinner plate falls onto the surface of the second sliding plate 209. The function of the U-shaped frame 210 is to prevent the dinner plate from conflicting with the electric control push rod 211 when it falls on the second sliding plate 209, thereby facilitating the electric control push rod 211 to push the dinner plate to complete the flip, so that the flipped dinner plate slides onto the surface of the second conveyor line 103, and then the dinner plate is transported away with the opening facing downward.

[0029] It should be noted that the second sliding plate 209 is composed of two plates perpendicular to each other, and a gap is provided between the two plates for the dinner plate to pass through.

[0030] A second motor 402 is provided on the surface of the second cylindrical block 403, and the second cylindrical block 403 is fixedly connected to the end of the output shaft of the second motor 402. A mounting bracket 401 is provided on the surface of the second motor 402, and the mounting bracket 401 is fixedly connected to the surface of the rubber band transmission line 101. The second motor 402 is mounted on the surface of the mounting bracket 401. The surface of the second cylindrical block 403 is fixedly connected to the third support rod 404 in a circular array, and the clamping cup is provided on the corresponding surface of the third support rod 404.

[0031] In an embodiment of the present invention, the second motor 402 on the mounting frame 401 is used to drive the second cylindrical block 403 to rotate. The second cylindrical block 403 close to the second sliding groove 206 always keeps the central axis of one of the cup clamping parts coincident with the central axis of the cup sliding on the second sliding groove 206, so as to facilitate the cup to fall onto the cup clamping part.

[0032] The clamping cup member includes a first clamping portion 405, which is fixedly connected to the corresponding end of the third support rod 404. A sliding column 408 is slidably connected in a first sliding groove opened on the surface of the first clamping portion 405. A first spring 409 is provided in the first sliding groove opened on the surface of the first clamping portion 405. The two ends of the first spring 409 are respectively fixedly connected to the first clamping portion 405 and the sliding column 408. The end of the sliding column 408 is fixedly connected to the second clamping portion 406. An electromagnet 407 is embedded in the interior of the first clamping portion 405. The central axis of the electromagnet 407 coincides with the central axis of the sliding column 408. A second sensor 411 is installed on the surface of the first clamping portion 405 and the second clamping portion 406. A first sensor 410 is installed on the surface of the first clamping portion 405.

[0033] In the embodiment of the present invention, when the cup on the second sliding trough 206 falls onto a corresponding cup clamping member, if the opening of the cup is facing downward, the second sensor 411 on the surface of the first clamping portion 405 senses the cup, and the first sensor 410 is located inside the cup and does not directly contact the cup. At this time, the second motor 402 controls the second cylindrical block 403 to rotate, so that the cup clamping member holding the cup rotates counterclockwise to a horizontal direction, so that the bottom of the cup faces a horizontal cup clamping member of the other second cylindrical block 403. The surface and bottom of the cup make the second sensor 411 on the corresponding cup clamping member sense the cup. 11 and the first sensor 410 trigger induction, thereby causing the corresponding second motor 402 to control the second cylindrical block 403 away from the second sliding trough 206 to rotate clockwise until the cup clamping piece holding the cup on the second cylindrical block 403 is vertically downward, that is, the cup mouth of the cup is vertically downward. At this time, the cup clamping piece releases the cup, so that the cup falls onto the surface of the fourth conveyor line 105 and is conveyed away. The surface of the fourth conveyor line 105 is evenly provided with conical protrusions (not shown in the figure), so that when the cup falls on the surface of the fourth conveyor line 105, it is constrained by the conical protrusions to keep the cup mouth facing downward; If the cup with the opening facing upward slides from the second sliding chute 206 onto the cup clamping member on the surface of the second cylindrical block 403 near the second sliding chute 206, the second motor 402 directly controls the second cylindrical block 403 to rotate clockwise until the cup mouth faces downward, and then loosens the cup so that the cup is screwed onto the surface of the fourth conveyor line 105. When the cup clamping member starts to clamp, the electromagnet 407 is energized, and the electromagnet 407 generates magnetism, causing the sliding post 408 to move inside the first clamping part 405 toward the electromagnet 407, and compress the first spring 409. The second clamping part 406 moves synchronously with the sliding post 408, thereby clamping the cup. When the electromagnet 407 is de-energized, the sliding post 408 drives the second clamping part 406 to return to its original position under the action of the elastic potential energy of the first spring 409, and the cup is released.

[0034] A first vertical plate 307 and a second vertical plate 308 are fixedly connected to the surface of the fifth conveyor bed 301. A first cylindrical block 311 is disposed between the first vertical plate 307 and the second vertical plate 308. A first groove 312 is symmetrically formed on the surface of the first cylindrical block 311. A support rod 309 is rotatably connected to a first bearing within a first through-groove formed on the surface of the first groove 312. A connecting plate 310 is fixedly connected to the surface of the support rod 309. The corresponding supporting round rods 309 between two adjacent first cylindrical blocks 311 are fixedly connected to the connecting plate 310, the supporting round rods 309 close to the first vertical plate 307 are fixedly connected to the first vertical plate 307, and the supporting round rods 309 close to the second vertical plate 308 are fixedly connected to the second vertical plate 308 through extension rods.

[0035] The interior of the first groove 312 is fixedly connected to the first gear 313, the surface of the supporting rod 309 is fixedly connected to the first supporting rod 317, the first circular groove on the surface of the first supporting rod 317 is rotatably connected to the second circular rod 318 through the second bearing, and both ends of the second circular rod 318 are fixedly connected to the third gear 319. The two third gears 319 are respectively located inside the two first cylindrical blocks 311, and the ends of the supporting rod 309 are rotatably connected to the second gear 316 through the third bearing. The second gear 316 is connected to the same first cylindrical block. The third gear 319 inside 311 is meshed and connected, and the surface of the connecting plate 310 is fixedly connected to the second support rod 320, and the surface of the second support rod 320 is rotatably connected to the fourth gear 321 through a convex bearing. The fourth gear 321 is meshed and connected with the second gear 316 and the first gear 313 inside the same first cylindrical block 311. The surface of the first vertical plate 307 is installed with a first motor 322, and the end of the output shaft of the first motor 322 is fixedly connected to the fifth gear 323, and the fifth gear 323 is meshed and connected with the corresponding first gear 313.

[0036] In the embodiment of the present invention, the operation of the fifth conveyor bed 301 causes the bowls to be conveyed on the surface of the avoidance block 303 on the conveyor roller on the surface of the fifth conveyor bed 301 in a direction away from the rubber band transmission line 101, and the first motor 322 is started, so that the fifth gear 323 at the end of the output shaft of the first motor 322 drives the first cylindrical block 311 to rotate through the first gear 313 inside the first cylindrical block 311. The rotation of the first cylindrical block 311 causes the first gear 313 to rotate through the third gears 319 at both ends of the second round rod 318 inside the first support rod 317. The rotation of the third gear 319 causes the second gear 316 at the end of the supporting rod 309 to rotate. The rotation of the second gear 316 rotates through the fourth gear 321 on the surface of the second supporting rod 320. The rotation of the fourth gear 321 drives the first gear 313 inside the adjacent first cylindrical block 311 to rotate, so that all the first cylindrical blocks 311 rotate synchronously and in the same direction. The rotation of the first cylindrical block 311 drives the toggle rod 324 to cooperate with the convex particles on the surface of the avoidance block 303 to continuously flip the bowl with the opening facing downward to the opening facing upward.

[0037] A first blocking piece 314 is fixedly connected to the interior of the first cylindrical block 311 , and a first blocking ring 315 is symmetrically fixedly connected to the surface of the first cylindrical block 311 .

[0038] In the embodiment of the present invention, the adjacent first cylindrical blocks 311 are shielded by the first blocking piece 314 and the first blocking ring 315 , so that the first groove 312 inside the first cylindrical block 311 is not easily exposed, thereby preventing impurities from entering the first cylindrical block 311 .

[0039] The surface of the fifth conveyor bed 301 is fixedly connected to the first guide bracket 304, the guide rollers 305 are equidistantly arranged on the surface of the first guide bracket 304, the surface of the guide rollers 305 is provided with the second guide bracket 306, and the guide rollers 305 are rotatably connected between the first guide bracket 304 and the second guide bracket 306 through two fifth bearings.

[0040] In an embodiment of the present invention, when the bowls above the fifth conveyor bed 301 move to the conveying end of the fifth conveyor bed 301, the bowls are constrained by the guide rollers 305 between the first guide brackets 304 and rotate around the last section of the conveyor rollers of the fifth conveyor bed 301 until the bowl mouth faces downward, and then fall onto the third conveyor line 104 and are conveyed away. The surface of the third conveyor line 104 is evenly provided with conical bosses (not shown in the figure) to maintain stable conveyance of the bowls.

[0041] It should be noted that the second spray box 106 has several built-in spray arms for spray washing of bowls, cups and plates. The second spray box 106 is arranged on the second conveyor line 103, the third conveyor line 104 and the fourth conveyor line 105. The working principles and work processes of the rubber band transmission line 101, the first spray box 102, the second conveyor line 103, the third conveyor line 104, the fourth conveyor line 105, the second spray box 106, the second sensor 411 and the first sensor 410 are well known in the prior art and will not be described in detail here.

[0042] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.

Claims

1. An automatic high-efficiency dishwasher, comprising a rubber band transmission line (101), wherein a first spray box (102) is provided on the surface of the rubber band transmission line (101), a second conveying line (103), a third conveying line (104) and a fourth conveying line (105) are provided below the rubber band transmission line (101), and a second spray box (106) is provided on the surface of each of the second conveying line (103), the third conveying line (104) and the fourth conveying line (105), characterized in that: include: A second sliding plate (209) is provided on the surface of the rubber band transmission line (101), and an electric control push rod (211) is installed on the surface of the second sliding plate (209), and the electric control push rod (211) is used to flip the dinner plate; The surface of the rubber band transmission line (101) is provided with a first sliding plate (203), the surface of the first sliding plate (203) is fixedly connected with a dividing block (204), the surface of the first sliding plate (203) is respectively fixedly connected with a first sliding trough (205) and a second sliding trough (206), a fifth conveyor bed (301) is provided below the first sliding trough (205), a plurality of first cylindrical blocks (311) are obliquely provided above the fifth conveyor bed (301) along the extension direction of the fifth conveyor bed (301), the surface of the first cylindrical block (311) is fixedly connected with a plurality of toggle rods (324) in a circular array, the surface of the conveying roller of the fifth conveyor bed (301) is fixedly connected with a plurality of avoidance circular blocks (303) at equal distances, and the toggle rods (324) are located between the corresponding adjacent avoidance circular blocks (303); A plurality of guide rollers (305) are provided on the surface of the fifth conveyor bed (301), and the guide rollers (305) are used to guide the bowls during the turning process; Two second cylindrical blocks (403) are provided below the second sliding trough (206), and a plurality of cup clamping members are provided on the surface of the second cylindrical block (403) in a circular array. Through the cooperation of the two groups of cup clamping members, the cup is placed with its mouth facing downward on the surface of the fourth conveyor line (105).

2. The automatic high-efficiency dishwasher according to claim 1, characterized in that: The surface of the rubber band transmission line (101) is fixedly connected to a first baffle (201) and a second baffle (202) along the surface of the rubber band transmission line (101), the first sliding plate (203) is fixedly connected to the surface of the rubber band transmission line (101), the dividing block (204) is fixedly connected to the surface of the first sliding plate (203), the surface of the rubber band transmission line (101) is fixedly connected to a first stop block (207) and a second stop block (208), the second sliding plate (209) is located between the first stop block (207) and the second stop block (208), and U-shaped frames (210) are fixedly connected in strip grooves symmetrically opened on the surface of the second sliding plate (209).

3. The automatic high-efficiency dishwasher according to claim 1, characterized in that: A second motor (402) is provided on the surface of the second cylindrical block (403), the second cylindrical block (403) is fixedly connected to the end of the output shaft of the second motor (402), a mounting frame (401) is provided on the surface of the second motor (402), the mounting frame (401) is fixedly connected to the surface of the rubber band transmission line (101), the second motor (402) is mounted on the surface of the mounting frame (401), the surface of the second cylindrical block (403) is fixedly connected to third support rods (404) in an annular array, and the clamping cup is provided on the surface of the corresponding third support rod (404).

4. The automatic high-efficiency dishwasher according to claim 3, characterized in that: The cup clamping member includes a first clamping portion (405), the first clamping portion (405) is fixedly connected to the corresponding end of the third support rod (404), a sliding column (408) is slidably connected in a first sliding groove opened on the surface of the first clamping portion (405), a first spring (409) is provided in the first sliding groove opened on the surface of the first clamping portion (405), two ends of the first spring (409) are respectively fixedly connected to the first clamping portion (405) and the sliding column (408), the end of the sliding column (408) is fixedly connected to the second clamping portion (406), an electromagnet (407) is embedded and installed inside the first clamping portion (405), the central axis of the electromagnet (407) coincides with the central axis of the sliding column (408), a second sensor (411) is installed on the surface of the first clamping portion (405) and the second clamping portion (406), and a first sensor (410) is installed on the surface of the first clamping portion (405).

5. The automatic high-efficiency dishwasher according to claim 1, characterized in that: The surface of the fifth conveyor bed (301) is fixedly connected to a first vertical plate (307) and a second vertical plate (308); the first cylindrical block (311) is arranged between the first vertical plate (307) and the second vertical plate (308); the surface of the first cylindrical block (311) is symmetrically provided with a first groove (312); a supporting round rod (309) is rotatably connected to the surface of the first groove (312) via a first bearing in a first through groove provided on the surface of the first groove (312); and the surface of the supporting round rod (309) is fixedly connected to a connecting plate (310); The supporting round rods (309) corresponding to two adjacent first cylindrical blocks (311) are fixedly connected to the connecting plate (310), the supporting round rods (309) close to the first vertical plate (307) are fixedly connected to the first vertical plate (307), and the supporting round rods (309) close to the second vertical plate (308) are fixedly connected to the second vertical plate (308) via an extension rod.

6. The automatic high-efficiency dishwasher according to claim 5, characterized in that: The first gear (313) is fixedly connected to the inside of the first groove (312), the surface of the supporting round rod (309) is fixedly connected to the first supporting rod (317), the first round groove opened on the surface of the first supporting rod (317) is rotatably connected to the second round rod (318) via a second bearing, both ends of the second round rod (318) are fixedly connected to a third gear (319), the two third gears (319) are respectively located inside the two first cylindrical blocks (311), the ends of the supporting round rod (309) are rotatably connected to the second gear (316) via a third bearing, and the second gear (316) is connected to the same first cylindrical block (311). The third gear (319) inside is meshed and connected, the surface of the connecting plate (310) is fixedly connected to the second support rod (320), the surface of the second support rod (320) is rotatably connected to the fourth gear (321) through a convex bearing, the fourth gear (321) is meshed and connected with the second gear (316) and the first gear (313) inside the same first cylindrical block (311), the surface of the first vertical plate (307) is installed with a first motor (322), the end of the output shaft of the first motor (322) is fixedly connected to a fifth gear (323), and the fifth gear (323) is meshed and connected with the corresponding first gear (313).

7. The automatic high-efficiency dishwasher according to claim 6, characterized in that: A first baffle (314) is fixedly connected to the interior of the first cylindrical block (311), and a first baffle ring (315) is symmetrically fixedly connected to the surface of the first cylindrical block (311).

8. The automatic high-efficiency dishwasher according to claim 7, characterized in that: A first guide bracket (304) is fixedly connected to the surface of the fifth conveyor bed (301), the guide rollers (305) are equidistantly arranged on the surface of the first guide bracket (304), a second guide bracket (306) is arranged on the surface of the guide rollers (305), and the guide rollers (305) are rotatably connected between the first guide bracket (304) and the second guide bracket (306) via two fifth bearings.

Citation Information

Patent Citations

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