Ceramic production equipment with automatic leftover material recycling mechanism

By introducing automatic scrap material recycling mechanisms into ceramic production equipment, using visual inspection, cutting, vacuuming and automatic dumping technologies, the problem of untimely recycling of scrap material in clay is solved, and efficient and automated scrap material recycling is achieved, improving the user experience.

CN120396090AActive Publication Date: 2025-08-01DEHUA SONGYAN CERAMICS CO LTD
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Patent Information

Application Number
CN202510898611.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-01
Publication Date
2025-08-01
Estimated Expiration
2045-07-01

AI Technical Summary

Technical Problem

On the ceramic production line, the recycling of clay scraps is low and untimely dumping is problematic, which affects the user experience and wastes manpower.

Method used

A ceramic production equipment with an automatic scrap recycling mechanism is designed, including a visual device, a scrap cutting mechanism, a clamping mechanism, a scrap recycling mechanism, a weighing mechanism and a feeding mechanism. Through visual inspection, cutting, vacuuming, weighing and automatic pouring, the efficient recycling of clay scraps is achieved.

Benefits of technology

It realizes timely recycling of clay scraps, improves the degree of automation, saves manpower, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides ceramic production equipment with an automatic leftover material recycling mechanism, and belongs to the technical field of ceramic production equipment. The ceramic production equipment with the automatic leftover material recycling mechanism comprises a box body, a first belt transmission piece, a bottom support, a base, a ceramic mold, a bottom plate, a first visual device, a second visual device, a pug mill, a clamping block, a sliding rail, a rolling mechanism, a leftover material cutting mechanism, a clamping mechanism, the leftover material recycling mechanism, a weighing mechanism and a feeding mechanism. According to the ceramic production equipment with the automatic leftover material recycling mechanism, the weight of the material collecting box is monitored in real time through the weight sensor, it is guaranteed that the material collecting box can be dumped in time, and it is guaranteed that recycling of ceramic mud leftover materials is not affected; besides, the ceramic mud leftover materials can be automatically recycled into the pug mill, so that manpower is saved, the automation degree is high, and better use experience is brought to a user.
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Description

Technical Field

[0001] The present invention relates to the technical field of ceramic production equipment, and more particularly, to a ceramic production equipment with an automatic waste material recycling mechanism. Background Art

[0002] On a ceramic production line, after the ceramic clay is rolled and formed by a ceramic rolling press, a part of the ceramic clay waste material is laid on the edge of the ceramic mold. Usually, a steel wire rope is used to cut the ceramic clay waste material, and the suction pipe of an industrial vacuum cleaner corresponding to the steel wire rope is used to suck it away, and then it is stored in a dust collection box. However, the staff often judges the dumping of the dust collection box based on experience, and the situation of untimely dumping often occurs, which affects the recycling of the ceramic clay waste material. In addition, during the process of the staff dumping the ceramic clay waste material into a clay refining machine for recycling, it wastes manpower and has a low degree of automation, bringing a bad user experience to the user. Summary of the Invention

[0003] To make up for the above deficiencies, the present invention provides a ceramic production equipment with an automatic waste material recycling mechanism, aiming to improve the situation that on a ceramic production line, after the ceramic clay is rolled and formed by a ceramic rolling press, a part of the ceramic clay waste material is laid on the edge of the ceramic mold. Usually, a steel wire rope is used to cut the ceramic clay waste material, and the suction pipe of an industrial vacuum cleaner corresponding to the steel wire rope is used to suck it away, and then it is stored in a dust collection box. However, the staff often judges the dumping of the dust collection box based on experience, and the situation of untimely dumping often occurs, which affects the recycling of the ceramic clay waste material. In addition, during the process of the staff dumping the ceramic clay waste material into a clay refining machine for recycling, it wastes manpower and has a low degree of automation.

[0004] The present invention is implemented as follows: The present invention provides a ceramic production equipment with an automatic waste material recycling mechanism, including a box body, a first belt transmission member, a bottom support, a base, a ceramic mold, a bottom plate, a first vision device, a second vision device, a clay refining machine, a clamping block, a slide rail, a rolling mechanism, a waste material cutting mechanism, a clamping mechanism, a waste material recycling mechanism, a weighing mechanism, and a feeding mechanism. The first belt transmission member is arranged on the box body, and the slide rail is fixed on the upper surface of the box body; The bottom support is slidably arranged on the slide rail, one end of the bottom support is fixed on the belt of the first belt transmission member, the bottom support is slidably arranged on the upper surface of the box body through rollers, the base is rotatably arranged on the bottom support, the ceramic mold is clamped in the base, the clamping block is fixed on the lower surface of the base, one end of the bottom plate is fixed on the outer wall of the box body, the first vision device is installed on a ceramic rolling press, the second vision device is installed on a second support, and the clay refining machine is installed on the upper surface of the bottom plate; The rolling mechanism is installed on the box body, and the rolling mechanism is configured to roll the clay into a formed shape; The scrap cutting mechanism is installed on the box body, and the scrap cutting mechanism is configured to cut off the scraps on the formed clay; The clamping mechanism is installed on the box body, and the clamping mechanism is configured to clamp the aggregate box and move it horizontally; The scrap recycling mechanism is installed on the bottom plate and the second bracket, and the scrap recycling mechanism is configured to guide the cut scraps into the aggregate box; The weighing mechanism is installed on the bottom plate, and the weighing mechanism is configured to monitor the weight of the aggregate box in real time; The feeding mechanism is installed on the bottom plate, and the feeding mechanism is configured to pour the scraps in the aggregate box into the clay kneader.

[0005] In an embodiment of the present invention, the rolling mechanism includes a ceramic rolling machine, a first cylinder, a first motor, a first ferrule, a first bracket, a second cylinder, a first horizontal shaft, a first frame, a second horizontal shaft, a circular ring plate and a ceramic ring. The frame of the ceramic rolling machine is fixed on the outer wall of the box body. One end of the first bracket is fixed inside the box body. One end of the first frame is rotatably arranged on the frame of the ceramic rolling machine. The first cylinder is fixed on the frame of the ceramic rolling machine; The end of the piston rod of the first cylinder is fixed on the lower surface of the first motor. The upper end of the output shaft of the first motor is fixed on the lower surface of the first ferrule. The upper end of the cylinder barrel of the second cylinder is rotatably arranged on the lower surface of the first bracket. One end of the first horizontal shaft and one end of the second horizontal shaft are both fixed on the first frame. The end of the piston rod of the second cylinder is rotatably arranged on the first horizontal shaft. The other end of the second horizontal shaft is fixed on the circular ring plate. The ceramic ring is rotatably arranged on the circular ring plate.

[0006] In an embodiment of the present invention, the scrap cutting mechanism includes a third cylinder, a cross plate, a second motor, a column, a second ferrule, a second belt transmission member, a second bracket, a first connecting frame and a steel wire rope. The third cylinder is fixed on the upper surface of the bottom plate. The end of the piston rod of the third cylinder is fixed on the lower surface of the cross plate. The second motor is fixed on the upper surface of the cross plate; The lower end of the column is rotatably set on the upper surface of the horizontal plate, the upper end of the column is fixed on the lower surface of the second sleeve, the output shaft of the second motor and the column are connected together through the second belt transmission member, one end of the second bracket is fixed in the box, the first connecting frame is fixed on the second bracket, the wire rope is fixed on the first connecting frame, and the second sleeve and the block are arranged correspondingly.

[0007] In one embodiment of the present invention, the clamping mechanism includes a first U-shaped plate, a fourth cylinder, a second U-shaped plate, a fifth cylinder and a first clamping arm, the first U-shaped plate is fixed to the outer wall of the box body, the fourth cylinder is fixed to the outer wall of the first U-shaped plate, the end of the piston rod of the fourth cylinder is fixed to the outer wall of the second U-shaped plate, the fifth cylinder is fixed to the outer wall of the second U-shaped plate, and the end of the piston rod of the fifth cylinder is fixed to the outer wall of the first clamping arm.

[0008] In one embodiment of the present invention, the weighing mechanism includes a first circular plate, a weight sensor and a second circular plate, the first circular plate is fixed on the upper surface of the base plate, and the weight sensor is installed between the first circular plate and the second circular plate.

[0009] In one embodiment of the present invention, a plurality of weight sensors are provided, and the plurality of weight sensors are axially equidistantly arranged on the first circular plate.

[0010] In one embodiment of the present invention, the scrap material recovery mechanism includes an industrial vacuum cleaner, a third bracket, a three-way vacuum pipe, a collection box, a partition and a sixth cylinder. The third bracket is fixed on the upper surface of the base plate and the outer wall of the industrial vacuum cleaner. The collection box is placed on the upper surface of the second circular plate. The collection box and the industrial vacuum cleaner are abutted together. The upper end of the collection box and the lower end of the industrial vacuum cleaner are connected. The sixth cylinder is fixed on the outer wall of the industrial vacuum cleaner. The partition is slidably arranged on the industrial vacuum cleaner. The piston rod end of the sixth cylinder is fixed on the outer wall of the partition.

[0011] In one embodiment of the present invention, a sealing gasket is further included, and the sealing gasket is arranged between the industrial vacuum cleaner and the partition.

[0012] In an embodiment of the present invention, the feeding mechanism includes a second frame, a third frame, a seventh cylinder, a second connecting frame, an eighth cylinder, and a second clamping arm. The second frame is fixed on the upper surface of the bottom plate. One end of the third frame is rotatably arranged on the second frame. The lower end of the seventh cylinder is rotatably arranged on the second frame. The end of the piston rod of the seventh cylinder is rotatably arranged on the outer wall of the third frame. The second connecting frame is fixed on the outer wall of the third frame. The eighth cylinder is fixed on the outer wall of the second connecting frame. The end of the piston rod of the eighth cylinder is fixed on the outer wall of the second clamping arm.

[0013] In an embodiment of the present invention, it further includes a feeding hopper which is fixed on the feeding port of the clay kneading machine, and the third frame is arranged corresponding to the feeding hopper.

[0014] The beneficial effects of the present invention are as follows: A ceramic production device with an automatic waste recycling mechanism obtained by the above design of the present invention utilizes a weight sensor to monitor the weight of the aggregate box in real time, ensuring that the aggregate box can be emptied in a timely manner, that is, ensuring that the recycling of ceramic waste will not be affected. In addition, the ceramic waste can be automatically recycled into the clay kneading machine, saving manpower and having a high degree of automation, bringing a better user experience to users. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the embodiments. It should be understood that the following drawings only show some embodiments of the present invention, so they should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can be obtained based on these drawings without creative efforts.

[0016] Figure 1 FIG. 1 is a three-dimensional structural diagram of a ceramic production device with an automatic waste recycling mechanism provided by an embodiment of the present invention; Figure 2 FIG. 2 is a relationship diagram among the box body, the first belt transmission member, and the bottom support provided by an embodiment of the present invention; Figure 3 FIG. 3 is a relationship diagram among the bottom support, the base, and the ceramic mold provided by an embodiment of the present invention; Figure 4 FIG. 4 is a sectional view of the bottom support provided by an embodiment of the present invention; Figure 5 FIG. 5 is a three-dimensional structural diagram of the rolling mechanism provided by an embodiment of the present invention; Figure 6 FIG. 6 is a relationship diagram among the bottom plate, the box body, and the waste cutting mechanism provided by an embodiment of the present invention; Figure 7 Schematic three-dimensional structure diagram of the scrap cutting mechanism provided by the embodiment of the present invention; Figure 8 Relationship diagram among the box body, the scrap recycling mechanism, the weighing mechanism, the feeding mechanism and the clay kneader provided by the embodiment of the present invention; Figure 9 Schematic three-dimensional structure diagram of the clamping mechanism and the scrap recycling mechanism provided by the embodiment of the present invention; Figure 10 Relationship diagram between the scrap recycling mechanism and the bottom plate provided by the embodiment of the present invention; Figure 11 Cross-sectional view of the aggregate box and the second circular plate provided by the embodiment of the present invention; Figure 12 Relationship diagram between the feeding mechanism and the clay kneader provided by the embodiment of the present invention; Figure 13 Schematic three-dimensional structure diagram of the feeding mechanism provided by the embodiment of the present invention.

[0017] In the figure: 110 - box body; 120 - first belt transmission member; 130 - bottom support; 140 - base; 150 - ceramic mold; 160 - rolling mechanism; 161 - ceramic rolling machine; 162 - first cylinder; 163 - first motor; 164 - first ferrule; 165 - first bracket; 166 - second cylinder; 167 - first horizontal shaft; 168 - first frame; 169 - second horizontal shaft; 1690 - circular ring plate; 1691 - ceramic ring; 170 - bottom plate; 180 - scrap cutting mechanism; 181 - third cylinder; 182 - cross plate; 183 - second motor; 184 - column; 185 - second ferrule; 186 - second belt transmission member; 187 - second bracket; 188 - first connecting frame; 189 - steel wire rope; 190 - first vision device; 191 - second vision device; 192 - clamping mechanism; 1921 - first U-shaped plate; 1922 - fourth cylinder; 1923 - second U-shaped plate; 1924 - fifth cylinder; 1925 - first clamping arm; 193 - scrap recycling mechanism; 1931 - industrial vacuum cleaner; 1932 - third bracket; 1933 - three-way suction pipe; 1934 - aggregate box; 1935 - sealing gasket; 1936 - partition board; 1937 - sixth cylinder; 194 - weighing mechanism; 1941 - first circular plate; 1942 - weight sensor; 1943 - second circular plate; 195 - feeding mechanism; 1951 - second frame; 1952 - third frame; 1953 - seventh cylinder; 1954 - second connecting frame; 1955 - eighth cylinder; 1956 - second clamping arm; 196 - clay kneader; 197 - material guiding hopper; 198 - clamping block; 199 - slide rail. Detailed implementation manners

[0018] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.

[0019] Embodiment Please refer to Figures 1 - 13 , the present invention provides a technical solution: a ceramic production device with an automatic waste recycling mechanism, including a box body 110, a first belt drive 120, a bottom support 130, a base 140, a ceramic mold 150, a bottom plate 170, a first vision device 190, a second vision device 191, a clay kneader 196, a fixture block 198, a slide rail 199, a rolling mechanism 160, a waste cutting mechanism 180, a clamping mechanism 192, a waste recycling mechanism 193, a weighing mechanism 194, and a feeding mechanism 195. The first belt drive 120 is arranged on the box body 110, and the slide rail 199 is fixed on the upper surface of the box body 110; The bottom support 130 is slidably arranged on the slide rail 199. One end of the bottom support 130 is fixed on the belt of the first belt drive 120. The bottom support 130 is slidably arranged on the upper surface of the box body 110 through rollers. The base 140 is rotatably arranged on the bottom support 130. The ceramic mold 150 is clamped in the base 140. The fixture block 198 is fixed on the lower surface of the base 140. One end of the bottom plate 170 is fixed on the outer wall of the box body 110. The first vision device 190 is installed on the ceramic rolling machine 161. The second vision device 191 is installed on the second support 187. The clay kneader 196 is installed on the upper surface of the bottom plate 170; The rolling mechanism 160 is installed on the box body 110. The rolling mechanism 160 is used to roll the clay into shape. The rolling mechanism 160 includes a ceramic rolling machine 161, a first cylinder 162, a first motor 163, a first ferrule 164, a first bracket 165, a second cylinder 166, a first transverse axis 167, a first frame 168, a second transverse axis 169, a ring disk 1690 and a ceramic ring 1691. The frame of the ceramic rolling machine 161 is fixed to the outer wall of the box body 110, one end of the first bracket 165 is fixed in the box body 110, one end of the first frame 168 is rotatably set on the frame of the ceramic rolling machine 161, the first cylinder 162 is fixed to the frame of the ceramic rolling machine 161, the end of the piston rod of the first cylinder 162 is fixed to the lower surface of the first motor 163, the upper end of the output shaft of the first motor 163 is fixed to the lower surface of the first ferrule 164, the upper end of the cylinder barrel of the second cylinder 166 is rotatably set on the lower surface of the first bracket 165, one end of the first transverse shaft 167 and one end of the second transverse shaft 169 are both fixed to the first frame 168, the end of the piston rod of the second cylinder 166 is rotatably set on the first transverse shaft 167, the other end of the second transverse shaft 169 is fixed to the annular disk 1690, and the ceramic ring 1691 is rotatably set on the annular disk 1690; The scrap cutting mechanism 180 is installed on the box body 110. The scrap cutting mechanism 180 is used to cut off the scraps on the formed clay. The scrap cutting mechanism 180 includes a third cylinder 181, a horizontal plate 182, a second motor 183, a column 184, a second ferrule 185, a second belt transmission member 186, a second bracket 187, a first connecting frame 188 and a wire rope 189. The third cylinder 181 is fixed to the upper surface of the base plate 170, and the end of the piston rod of the third cylinder 181 is fixed to the lower surface of the horizontal plate 182. The second motor 183 is fixed to the upper surface of the horizontal plate 182, the lower end of the column 184 is rotatably set on the upper surface of the horizontal plate 182, the upper end of the column 184 is fixed to the lower surface of the second clamping sleeve 185, the output shaft of the second motor 183 and the column 184 are connected together by a second belt transmission member 186, one end of the second bracket 187 is fixed in the box 110, the first connecting frame 188 is fixed to the second bracket 187, the wire rope 189 is fixed to the first connecting frame 188, and the second clamping sleeve 185 and the clamping block 198 are correspondingly arranged; The clamping mechanism 192 is installed on the box body 110. The clamping mechanism 192 is arranged to clamp the aggregate box 1934 and move it laterally. The clamping mechanism 192 includes a first U-shaped plate 1921, a fourth cylinder 1922, a second U-shaped plate 1923, a fifth cylinder 1924 and a first clamping arm 1925. The first U-shaped plate 1921 is fixed on the outer wall of the box body 110. The fourth cylinder 1922 is fixed on the outer wall of the first U-shaped plate 1921. The end of the piston rod of the fourth cylinder 1922 is fixed on the outer wall of the second U-shaped plate 1923. The fifth cylinder 1924 is fixed on the outer wall of the second U-shaped plate 1923. The end of the piston rod of the fifth cylinder 1924 is fixed on the outer wall of the first clamping arm 1925; The scrap recycling mechanism 193 is installed on the bottom plate 170 and the second bracket 187. The scrap recycling mechanism 193 is arranged to introduce the cut scrap into the aggregate box 1934. The scrap recycling mechanism 193 includes an industrial vacuum cleaner 1931, a third bracket 1932, a three-way suction pipe 1933, an aggregate box 1934, a partition plate 1936 and a sixth cylinder 1937. The third bracket 1932 is fixed on the upper surface of the bottom plate 170 and the outer wall of the industrial vacuum cleaner 1931. The aggregate box 1934 is placed on the upper surface of the second circular plate 1943. The aggregate box 1934 and the industrial vacuum cleaner 1931 are in contact with each other. The upper end of the aggregate box 1934 communicates with the lower end of the industrial vacuum cleaner 1931. The sixth cylinder 1937 is fixed on the outer wall of the industrial vacuum cleaner 1931. The partition plate 1936 is slidably arranged on the industrial vacuum cleaner 1931. The end of the piston rod of the sixth cylinder 1937 is fixed on the outer wall of the partition plate 1936. A sealing gasket 1935 is further included. The sealing gasket 1935 is arranged between the industrial vacuum cleaner 1931 and the partition plate 1936. The arrangement of the sealing gasket 1935 ensures the sealing between the industrial vacuum cleaner 1931 and the partition plate 1936; The weighing mechanism 194 is installed on the bottom plate 170. The weighing mechanism 194 is arranged to monitor the weight of the aggregate box 1934 in real time. The weighing mechanism 194 includes a first circular plate 1941, a weight sensor 1942 and a second circular plate 1943. The first circular plate 1941 is fixed on the upper surface of the bottom plate 170. The weight sensor 1942 is installed between the first circular plate 1941 and the second circular plate 1943. There are several weight sensors 1942. The several weight sensors 1942 are axially equidistantly arranged on the first circular plate 1941; The feeding mechanism 195 is installed on the bottom plate 170. The feeding mechanism 195 is configured to pour the scraps in the aggregate box 1934 into the clay kneader 196. The feeding mechanism 195 includes a second frame 1951, a third frame 1952, a seventh cylinder 1953, a second connecting frame 1954, an eighth cylinder 1955, and a second clamping arm 1956. The second frame 1951 is fixed on the upper surface of the bottom plate 170. One end of the third frame 1952 is rotatably arranged on the second frame 1951. The lower end of the seventh cylinder 1953 is rotatably arranged on the second frame 1951. The end of the piston rod of the seventh cylinder 1953 is rotatably arranged on the outer wall of the third frame 1952. The second connecting frame 1954 is fixed on the outer wall of the third frame 1952. The eighth cylinder 1955 is fixed on the outer wall of the second connecting frame 1954. The end of the piston rod of the eighth cylinder 1955 is fixed on the outer wall of the second clamping arm 1956. It further includes a material guiding hopper 197. The material guiding hopper 197 is fixed on the feeding port of the clay kneader 196. The third frame 1952 and the material guiding hopper 197 are arranged corresponding to each other. In this embodiment, the first belt transmission member 120, the ceramic rolling press 161, the first cylinder 162, the first motor 163, the second cylinder 166, the third cylinder 181, the second motor 183, the first vision device 190, the second vision device 191, the fourth cylinder 1922, the fifth cylinder 1924, the industrial vacuum cleaner 1931, the sixth cylinder 1937, the weight sensor 1942, the seventh cylinder 1953, the eighth cylinder 1955, and the clay kneader 196 are all controlled by the control cabinet.

[0020] Specifically, the working principle of the ceramic production equipment with an automatic waste recycling mechanism: During use, put the specified weight of clay into the ceramic mold 150. The first belt drive 120 operates. During the rotation of the belt of the first belt drive 120, the base 140 and the ceramic mold 150 move along. When the first vision device 190 on the ceramic rolling press 161 detects the presence of clay in the ceramic mold 150, the first vision device 190 transmits a signal to the control cabinet. The control cabinet controls the first belt drive 120, the ceramic rolling press 161, the first cylinder 162, the first motor 163, and the second cylinder 166 to operate. The first belt drive 120 stops operating. The piston rod of the second cylinder 166 extends to drive the ring plate 1690 and the ceramic ring 1691 to move downward, and the ceramic ring 1691 closely adheres to the ceramic mold 150. The piston rod of the first cylinder 162 extends to drive the first bushing 164 to move upward and sleeved on the block 198. The first motor 163 operates to drive the base 140 and the ceramic mold 150 to rotate. The ceramic rolling press 161 operates. Under the combined action of the ceramic rolling press 161 and the first motor 163, the clay is formed. After a specified time, the control cabinet controls the second cylinder 166 to operate. The piston rod of the second cylinder 166 retracts to make the ceramic ring 1691 move away from the ceramic mold 150. The control cabinet controls the first belt drive 120 to continue operating, so that the formed clay continues to move forward. When the second vision device 191 detects the presence of the formed clay, the second vision device 191 transmits a signal to the control cabinet. The control cabinet controls the third cylinder 181, the second motor 183, and the industrial vacuum cleaner 1931 to operate. The piston rod of the third cylinder 181 extends to drive the second bushing 185 to move upward and sleeved on the block 198. The piston rod of the third cylinder 181 continues to move upward, so that the steel wire rope 189 adheres to the upper surface of the ceramic mold 150. At the same time, the base 140 and the ceramic mold 150 are lifted by a specified height. The control cabinet controls the second motor 183 to operate. The rotation of the output shaft of the second motor 183 drives the second belt drive 186 to rotate. The second belt drive 186 drives the column 184 to rotate, realizing the rotation of the base 140 and the ceramic mold 150. Under the action of the steel wire rope 189, the waste materials are cut off. The three-way dust suction pipe 1933 guides the clay waste materials into the aggregate box 1934. The weight sensor 1942 continuously detects the weight of the aggregate box 1934. When the weight sensor 1942 monitors that the weight of the aggregate box 1934 reaches the set maximum value, the aggregate box 1934 transmits a signal to the control cabinet. The control cabinet controls the fourth cylinder 1922, the fifth cylinder 1924, the sixth cylinder 1937, the eighth cylinder 1955, and the seventh cylinder 1953 to operate. The piston rod of the sixth cylinder 1937 retracts, so that the partition plate 1936 enters the industrial vacuum cleaner 1931, realizing the separation of the clay waste materials, that is, the clay waste materials cannot enter the aggregate box 1934. The piston rod of the fourth cylinder 1922 extends to drive the first clamping arm 1925 to move horizontally.The piston rod of the fifth cylinder 1924 extends to drive the first clamping arm 1925 to clamp the aggregate box 1934. The piston rod of the fourth cylinder 1922 continuously extends to displace the aggregate box 1934 from the industrial vacuum cleaner 1931. When the piston rod of the fourth cylinder 1922 extends to its maximum distance, the piston rod of the fifth cylinder 1924 retracts to its initial position. Then, the piston rod of the fourth cylinder 1922 retracts to its initial position. After that, the piston rod of the eighth cylinder 1955 extends to drive the second clamping arm 1956 to clamp the aggregate box 1934. Then, the piston rod of the seventh cylinder 1953 extends to drive the aggregate box 1934 to flip, so that the ceramic clay scraps in the aggregate box 1934 are poured onto the material guide hopper 197 and enter the clay refining machine 196, realizing the recycling of the ceramic clay scraps. Then, according to the reverse steps described above, the aggregate box 1934 and the partition plate 1936 return to their initial positions. At the same time, the ceramic clay scraps are scraped into the aggregate box 1934. The control cabinet controls the seventh cylinder 1953, the eighth cylinder 1955, the sixth cylinder 1937, the fifth cylinder 1924, the fourth cylinder 1922, and the third cylinder 181 to return to their initial positions. This ceramic production equipment with an automatic waste recycling mechanism uses a weight sensor 1942 to monitor the weight of the aggregate box 1934 in real time, ensuring that the aggregate box 1934 can be emptied in time, that is, ensuring that the recycling of the ceramic clay scraps will not be affected. In addition, it can automatically recycle the ceramic clay scraps into the clay refining machine 196, saving manpower and having a high degree of automation, bringing a better user experience to the user.

[0021] The above are only the embodiments of the present invention and are not intended to limit the protection scope of the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention. It should be noted that similar reference numerals and letters represent similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.

Claims

1. A ceramic production device with an automatic waste recycling mechanism, characterized in that, It includes a box body (110), a first belt transmission member (120), a bottom support (130), a base (140), a ceramic mold (150), a bottom plate (170), a first vision device (190), a second vision device (191), a clay kneading machine (196), a clamping block (198), a slide rail (199), a rolling mechanism (160), a waste cutting mechanism (180), a clamping mechanism (192), a waste recycling mechanism (193), a weighing mechanism (194) and a feeding mechanism (195). The first belt transmission member (120) is arranged on the box body (110), and the slide rail (199) is fixed on the upper surface of the box body (110); The bottom support (130) is slidably arranged on the slide rail (199). One end of the bottom support (130) is fixed on the belt of the first belt transmission member (120). The bottom support (130) is slidably arranged on the upper surface of the box body (110) through rollers. The base (140) is rotatably arranged on the bottom support (130). The ceramic mold (150) is clamped in the base (140). The clamping block (198) is fixed on the lower surface of the base (140). One end of the bottom plate (170) is fixed on the outer wall of the box body (110). The first vision device (190) is installed on the ceramic rolling machine (161), and the second vision device (191) is installed on the second bracket (187). The clay kneading machine (196) is installed on the upper surface of the bottom plate (170); The rolling mechanism (160) is installed on the box body (110). The rolling mechanism (160) is provided for rolling the clay into a formed shape; The waste cutting mechanism (180) is installed on the box body (110). The waste cutting mechanism (180) is provided for cutting off the waste on the formed clay; The clamping mechanism (192) is installed on the box body (110). The clamping mechanism (192) is provided for clamping the aggregate box (1934) and making it move horizontally; The waste recycling mechanism (193) is installed on the bottom plate (170) and the second bracket (187). The waste recycling mechanism (193) is provided for guiding the cut waste into the aggregate box (1934); The weighing mechanism (194) is installed on the bottom plate (170). The weighing mechanism (194) is provided for monitoring the weight of the aggregate box (1934) in real time; The feeding mechanism (195) is installed on the bottom plate (170). The feeding mechanism (195) is provided for pouring the waste in the aggregate box (1934) into the clay kneading machine (196).

2. The ceramic production equipment with an automatic waste recycling mechanism according to claim 1, characterized in that, The rolling mechanism (160) includes a ceramic rolling machine (161), a first cylinder (162), a first motor (163), a first ferrule (164), a first bracket (165), a second cylinder (166), a first transverse axis (167), a first frame (168), a second transverse axis (169), a circular ring disk (1690) and a ceramic ring (1691); the frame of the ceramic rolling machine (161) is fixed on the outer wall of the box (110); one end of the first bracket (165) is fixed in the box (110); one end of the first frame (168) is rotatably arranged on the frame of the ceramic rolling machine (161); and the first cylinder (162) is fixed on the frame of the ceramic rolling machine (161); The end of the piston rod of the first cylinder (162) is fixed on the lower surface of the first motor (163), the upper end of the output shaft of the first motor (163) is fixed on the lower surface of the first sleeve (164), the upper end of the cylinder barrel of the second cylinder (166) is rotatably set on the lower surface of the first bracket (165), one end of the first transverse axis (167) and one end of the second transverse axis (169) are both fixed on the first frame (168), the end of the piston rod of the second cylinder (166) is rotatably set on the first transverse axis (167), the other end of the second transverse axis (169) is fixed on the annular disk (1690), and the ceramic ring (1691) is rotatably set on the annular disk (1690).

3. A ceramic production device with an automatic waste recycling mechanism according to claim 1, characterized in that, The scrap cutting mechanism (180) includes a third cylinder (181), a transverse plate (182), a second motor (183), a column (184), a second ferrule (185), a second belt transmission member (186), a second bracket (187), a first connecting frame (188) and a steel wire rope (189), wherein the third cylinder (181) is fixed on the upper surface of the base plate (170), the end of the piston rod of the third cylinder (181) is fixed on the lower surface of the transverse plate (182), and the second motor (183) is fixed on the upper surface of the transverse plate (182); The lower end of the column (184) is rotatably arranged on the upper surface of the horizontal plate (182), the upper end of the column (184) is fixed on the lower surface of the second sleeve (185), the output shaft of the second motor (183) and the column (184) are connected together through the second belt transmission member (186), one end of the second bracket (187) is fixed in the box body (110), the first connecting frame (188) is fixed on the second bracket (187), the wire rope (189) is fixed on the first connecting frame (188), and the second sleeve (185) and the block (198) are arranged correspondingly.

4. The ceramic production equipment with an automatic scrap recycling mechanism according to claim 1, characterized in that, The clamping mechanism (192) includes a first U-shaped plate (1921), a fourth cylinder (1922), a second U-shaped plate (1923), a fifth cylinder (1924) and a first clamping arm (1925). The first U-shaped plate (1921) is fixed on the outer wall of the box body (110). The fourth cylinder (1922) is fixed on the outer wall of the first U-shaped plate (1921). The end of the piston rod of the fourth cylinder (1922) is fixed on the outer wall of the second U-shaped plate (1923). The fifth cylinder (1924) is fixed on the outer wall of the second U-shaped plate (1923). The end of the piston rod of the fifth cylinder (1924) is fixed on the outer wall of the first clamping arm (1925).

5. A ceramic production device with an automatic waste recycling mechanism according to claim 1, characterized in that, The weighing mechanism (194) includes a first circular plate (1941), a weight sensor (1942) and a second circular plate (1943). The first circular plate (1941) is fixed on the upper surface of the bottom plate (170). The weight sensor (1942) is installed between the first circular plate (1941) and the second circular plate (1943).

6. The ceramic production equipment with an automatic waste recycling mechanism according to claim 5, characterized in that, A plurality of the weight sensors (1942) are provided, and the plurality of weight sensors (1942) are axially equidistantly arranged on the first circular plate (1941).

7. The ceramic production equipment with an automatic scrap recycling mechanism according to claim 5, characterized in that, The scrap recycling mechanism (193) includes an industrial vacuum cleaner (1931), a third bracket (1932), a three-way suction pipe (1933), an aggregate box (1934), a partition plate (1936) and a sixth cylinder (1937). The third bracket (1932) is fixed on the upper surface of the bottom plate (170) and the outer wall of the industrial vacuum cleaner (1931). The aggregate box (1934) is placed on the upper surface of the second circular plate (1943). The aggregate box (1934) and the industrial vacuum cleaner (1931) are in contact with each other. The upper end of the aggregate box (1934) communicates with the lower end of the industrial vacuum cleaner (1931). The sixth cylinder (1937) is fixed on the outer wall of the industrial vacuum cleaner (1931). The partition plate (1936) is slidably arranged on the industrial vacuum cleaner (1931). The end of the piston rod of the sixth cylinder (1937) is fixed on the outer wall of the partition plate (1936).

8. A ceramic production device with an automatic waste recycling mechanism according to claim 7, characterized in that, A gasket (1935) is further included, and the gasket (1935) is arranged between the industrial vacuum cleaner (1931) and the partition plate (1936).

9. The ceramic production equipment with an automatic waste recycling mechanism according to claim 1, characterized in that, The feeding mechanism (195) includes a second frame (1951), a third frame (1952), a seventh cylinder (1953), a second connecting frame (1954), an eighth cylinder (1955) and a second clamping arm (1956). The second frame (1951) is fixed on the upper surface of the bottom plate (170). One end of the third frame (1952) is rotatably arranged on the second frame (1951). The lower end of the seventh cylinder (1953) is rotatably arranged on the second frame (1951). The end of the piston rod of the seventh cylinder (1953) is rotatably arranged on the outer wall of the third frame (1952). The second connecting frame (1954) is fixed on the outer wall of the third frame (1952). The eighth cylinder (1955) is fixed on the outer wall of the second connecting frame (1954). The end of the piston rod of the eighth cylinder (1955) is fixed on the outer wall of the second clamping arm (1956).

10. The ceramic production equipment with an automatic waste recycling mechanism according to claim 9, characterized in that, It further includes a material guiding hopper (197). The material guiding hopper (197) is fixed on the feeding port of the clay kneader (196). The third frame (1952) and the material guiding hopper (197) are arranged corresponding to each other.

Citation Information

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