Production device of ceramic flowerpot mold

By designing a ceramic flowerpot mold production device, which combines a lower mold enclosed by a sleeve and a feeding device, the problem of low production efficiency in traditional production has been solved, achieving efficient mold manufacturing and reducing the labor intensity of workers.

CN224196980UActive Publication Date: 2026-05-05FUJIAN DEHUA TONGXIN CERAMICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FUJIAN DEHUA TONGXIN CERAMICS CO LTD
Filing Date
2025-05-23
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Traditional ceramic flowerpot molds have low production efficiency and require high labor intensity for workers, making it difficult to meet the demands of rapid production.

Method used

A production device is designed that includes a first base, a casing, a lower mold, a feeding device, and a vibration device. The casing forms a production space by covering the lower mold, the feeding device and the vibration device improve production efficiency, and the casing can be quickly assembled, disassembled and reused through a detachable plate structure.

Benefits of technology

It improved the production efficiency of ceramic flowerpot molds, reduced the labor intensity of workers, and achieved rapid production and efficient mold manufacturing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The production device of the ceramic flowerpot mold comprises a first base, a surrounding cylinder, a lower mold, a feeding device and a vibration device. The lower die is arranged on the first base, and the lower part of the shroud is sleeved outside the lower die; the vibration device comprises a hanging frame, a telescopic rope and a tamping and vibrating rod. The feeding device comprises a feeding rail, a sliding base and a material barrel. A support and a tipping frame are arranged on the sliding seat, the tipping frame is hinged to the upper end of the support, the charging barrel is arranged on the tipping frame, a flow guide nozzle is arranged on the tipping frame on the side of a barrel opening of the charging barrel, and the charging barrel can be dumped towards the flow guide nozzle by rotating the tipping frame; and the guide nozzle can be moved into or out of the upper part of the shroud by moving the sliding seat. The lower die is sleeved with the shroud to form a space capable of producing the upper die, assembly and disassembly are convenient, the feeding device can get close to the shroud during feeding and get away from the shroud after feeding, and vibrating operation of workers on gypsum in the shroud is not affected; the production efficiency is high. The sheet plates can enclose the coaming and can also be unfolded, so that the coaming is quick to assemble and disassemble and can be reused.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic production, and in particular to a production device for ceramic flowerpot molds. Background Technology

[0002] With societal development, ceramic flowerpots sold online tend to fall into two categories: inexpensive, high-volume sales, and personalized customization, resulting in shorter product lifecycles. Both types of ceramic flowerpots require the rapid production of large quantities of ceramic flowerpot molds to achieve fast production. Traditional methods of producing ceramic flowerpot molds are inefficient and involve high labor intensity for workers. Utility Model Content

[0003] The purpose of this utility model is to overcome the above-mentioned shortcomings and provide a production device for ceramic flower pot molds with high production efficiency.

[0004] To achieve the above objectives, the technical solution of this utility model is: a production device for ceramic flower pot molds, including a first base, a surrounding cylinder, a lower mold, a feeding device, and a vibration device;

[0005] The first base is provided with a positioning cone, and the bottom of the lower mold is provided with a positioning cone hole. The lower mold is set on the first base, and the positioning cone hole fits into the positioning cone.

[0006] The lower part of the outer sleeve covers the lower mold;

[0007] The vibration device includes a hanging frame, a telescopic rope, and a tamping rod. The hanging frame is located above the first base, and the telescopic rope is mounted on the hanging frame. The lower end of the telescopic rope extends downward and is connected to one end of the tamping rod, which is equipped with a vibrating head.

[0008] The feeding device includes a feeding track, a slide, and a material bucket; the slide is equipped with a support and a tilting frame, the tilting frame is hinged to the upper end of the support, the material bucket is placed on the tilting frame, and the tilting frame has a guide nozzle on the side of the bucket opening. Rotating the tilting frame can tilt the material bucket towards the guide nozzle; the slide is movable on the feeding track, and moving the slide can move the guide nozzle into or out of the top of the casing.

[0009] The sliding seat of the feeding device can move the material bucket on the feeding track, so that when the material bucket needs to be fed, it can approach the first base and pour the gypsum material in the bucket into the space formed by the surrounding cylinder and the lower mold. During the solidification of the gypsum in the surrounding cylinder, it moves away from the first base and is prepared again, reducing the waiting time for the next feeding.

[0010] Preferably, the sheath is made of a sheet wound into a cylindrical shape, and a clamp is provided at the upper part of the sheath to hold the overlapping part of the sheet. When the clamp is released, the sheath can be unfolded back into the sheet shape, thereby detaching from the lower mold and being put into the production of the next mold, so that the sheath can be reused and the assembly and disassembly are quick and convenient.

[0011] Preferably, it also includes a stirring device, with a feeding track disposed between the stirring device and the first base; the stirring device includes a second base, a rotating arm, and a stirring motor, the rotating arm being rotatably mounted on the upper part of the second base, the stirring motor being disposed at the outer end of the rotating arm, and a stirring rod being mounted on the output shaft of the stirring motor. When the material bucket approaches the stirring device, rotating the rotating arm of the stirring device can drive the stirring rod to extend into or move out of the material bucket. The stirring rod rotates inside the material bucket, which can stir the gypsum and water, making the gypsum and water mix evenly.

[0012] Preferably, one end of the sheet is located on the outside of the casing and the other end is located on the inside of the casing. The lower part of the outer end of the sheet is longer than the upper part, and an outward-folding handle is provided on the outer end. The first base has a limiting protrusion on the outer periphery of the lower mold, and the lower part of the casing is located between the lower mold and the limiting protrusion. After the sheet is formed into a cylindrical shape and fits over the lower mold, pinching the handle and pulling the sheet will cause the casing formed by the sheet to shrink and fit tightly against the outer wall of the lower mold, preventing excessive plaster from seeping into the outer wall of the lower mold during plaster casting. The limiting protrusion can fix the lower end of the shrunken casing. After releasing the handle, the sheet will not open directly; it needs to be grasped and pulled outward to unfold. The casing is easy to assemble and disassemble.

[0013] Preferably, it also includes a second track. There are several first bases, and these first bases are movably mounted on the second track, which is perpendicular to the feeding track. Each first base is provided with a lower mold. After plaster is cast on one first base, the casting station can be moved away, and the plaster can wait for it to solidify in other positions on the second track. Then, the next first base can be moved into the casting station for plaster casting, thereby improving efficiency.

[0014] By adopting the above technical solution, the beneficial effects of this utility model are as follows: This utility model forms a space for producing the upper mold by enclosing the lower mold with a surrounding cylinder, which is convenient to assemble and disassemble. The feeding device can approach the surrounding cylinder during feeding and move away from the surrounding cylinder after feeding, without affecting the worker's vibration and compaction of the plaster inside the surrounding cylinder; production efficiency is high. The plates can be arranged into a surrounding panel or unfolded, making the surrounding panel quick to assemble and disassemble, and it can also be reused. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the structure of the enclosure panel of this utility model.

[0017] Explanation of key figure labels:

[0018] First base 1; positioning cone 11; limiting protrusion 12; lower mold 2; positioning cone hole 21; surrounding cylinder 3; plate 31; clamp 32; handle 33; material bucket 41; sliding seat 42; tilting frame 43; guide nozzle 44; feeding track 45; hanging frame 51; telescopic rope 52; vibrating rod 53; second base 61; rotating arm 62; mixing motor 63. Detailed Implementation

[0019] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0020] like Figures 1-2 As shown, the production device for ceramic flower pot mold of this utility model includes a first base 1, a surrounding cylinder 3, a lower mold 2, a feeding device, a vibration device, and a stirring device.

[0021] The first base 1 is provided with a positioning cone 11, and the bottom of the lower mold 2 is provided with a positioning cone hole 21. The lower mold 2 is set on the first base 1, and the positioning cone hole 21 fits around the positioning cone 11. The cone surfaces of the positioning cone 11 and the positioning cone hole match each other, and the lower mold is positioned by fitting the positioning cone 11 through the positioning cone hole 21. The first base 1 is provided with a limiting protrusion 12 on the outer side of the outer periphery of the lower mold.

[0022] There can be several first bases, each with a lower mold. These first bases are movably mounted on a second track, which is perpendicular to the feeding track.

[0023] The lower part of the outer sleeve 3 covers the lower mold; the lower end of the outer sleeve 3 is inserted between the lower mold 2 and the limiting protrusion 12. For example... Figure 2 As shown, the casing 3 is composed of a rolled-up cylindrical sheet 31, with one end of the sheet located on the outside of the casing and the other end on the inside. A clamp 32 is provided at the top of the casing 3, which holds the overlapping portion of the sheet 31. The lower part of the outer end of the sheet 31 is longer than the upper part, and an outward-folding handle 33 is provided on the outer end. By removing the clamp and pulling the handle, the bottom of the sheet can be pulled out from the inside of the limiting protrusion 12, thus unraveling the casing into the sheet.

[0024] The vibration device includes a bracket 51, a telescopic rope 52, and a vibrating rod 53. The bracket 51 is located above the first base 1, and the telescopic rope 52 is mounted on the bracket 51. The telescopic rope is a spring-shaped wire that can extend and retract, and can also supply power to the vibrating rod. The lower end of the telescopic rope 52 extends downward and connects to one end of the vibrating rod 53, which is equipped with a vibrating head. The vibrating rod can extend into the casing and vibrate the plaster inside the casing.

[0025] The feeding device includes a feeding track 45, a slide 42, and a material bucket 41. The slide 42 is equipped with a support and a tilting frame 43, which is hinged to the upper end of the support. The material bucket 41 is mounted on the tilting frame 43, and its top has an opening. The tilting frame 43 has a guide nozzle 44 on the side of the opening of the material bucket 41; the guide nozzle 44 is a funnel shape pointing upwards. Rotating the tilting frame 43 allows the outer end of the guide nozzle to extend into the surrounding cylinder. Simultaneously, the material bucket tilts towards the guide nozzle 44, pouring the gypsum material from the material bucket into the guide nozzle and into the material bucket. The slide 42 is movably mounted on the feeding track 45; moving the slide 42 allows the guide nozzle 44 to move in or out of the top of the surrounding cylinder.

[0026] The feeding track is positioned between the mixing device and the first base. The mixing device includes a second base 61, a rotating arm 62, and a mixing motor 63. The rotating arm 62 is rotatably mounted on the upper part of the second base 61, and the mixing motor 63 is located at the outer end of the rotating arm. A mixing rod is mounted on the output shaft of the mixing motor. The movable slide 42 can move the material bucket 41 to the vicinity of the mixing device. Rotating the rotating arm 62 allows the mixing rod to extend into the material bucket to mix the gypsum and water inside, forming gypsum material.

[0027] During the production of ceramic flower pot molds, the sheet 32 ​​is arranged into a sleeve to enclose the lower mold 2 on the first base 1. The lower end of the sleeve 3 is inserted between the lower mold 2 and the limiting protrusion 12. The handle on the sheet 32 ​​is pulled tight to make the sleeve fit tightly against the lower mold 2, and the upper part of the sleeve is clamped and fixed. The movable slide 42 moves the bucket containing the gypsum material mixed by the mixing device to the vicinity of the sleeve 3. The tilting frame is rotated to tilt the bucket and pour the gypsum material into the sleeve 3. After pouring, the movable slide is moved away from the sleeve. The worker holds a vibrating rod and inserts it into the gypsum material in the sleeve to vibrate and expel air from the gypsum. After the gypsum in the sleeve 3 has solidified, the clamp is removed, the handle is pulled to unfold the sleeve 3 into the sheet 32, separating the lower mold and the solidified upper mold.

[0028] The above description is merely a preferred embodiment of the present utility model and does not limit the scope of implementation of the present utility model. All equivalent changes and modifications made in accordance with the scope of the patent application of the present utility model shall still fall within the scope of the present utility model.

Claims

1. A production apparatus for ceramic flowerpot molds, characterized in that, Includes a first base, a surrounding cylinder, a lower mold, a feeding device, and a vibration device; The first base is provided with a positioning cone, and the bottom of the lower mold is provided with a positioning cone hole. The lower mold is set on the first base, and the positioning cone hole fits into the positioning cone. The lower part of the outer sleeve covers the lower mold; The vibration device includes a hanging frame, a telescopic rope, and a tamping rod. The hanging frame is located above the first base, and the telescopic rope is mounted on the hanging frame. The lower end of the telescopic rope extends downward and is connected to one end of the tamping rod, which is equipped with a vibrating head. The feeding device includes a feeding track, a slide, and a material bucket; the slide is equipped with a support and a tilting frame, the tilting frame is hinged to the upper end of the support, the material bucket is placed on the tilting frame, and the tilting frame has a guide nozzle on the side of the bucket opening. Rotating the tilting frame can tilt the material bucket towards the guide nozzle; the slide is movable on the feeding track, and moving the slide can move the guide nozzle into or out of the top of the casing.

2. The production apparatus for ceramic flowerpot molds according to claim 1, characterized in that, The tube is made of rolled-up sheets, and the upper part of the tube is equipped with clips that hold the overlapping parts of the sheets.

3. The production apparatus for ceramic flowerpot molds according to claim 2, characterized in that, It also includes a stirring device, with a feeding track set between the stirring device and the first base; the stirring device includes a second base, a rotating arm, and a stirring motor, the rotating arm is rotatably located on the upper part of the second base, the stirring motor is located at the outer end of the rotating arm, and a stirring rod is provided on the output shaft of the stirring motor.

4. The production apparatus for ceramic flowerpot molds according to claim 2, characterized in that, One end of the plate is located on the outside of the casing and the other end is located on the inside of the casing. The lower part of the outer end of the plate is longer than the upper part, and an outward-folding handle is provided on the outer end. The first base has a limiting protrusion on the outer periphery of the lower mold, and the lower part of the casing is located between the lower mold and the limiting protrusion.

5. The production apparatus for ceramic flowerpot molds according to claim 1, characterized in that, It also includes a second track, and there are several first bases. Several first bases are movably set on the second track, which is perpendicular to the feeding track.