Shaping mold for garment steaming and ironing machine

By using electric heating tubes in the garment steaming machine mold, combined with high thermal conductivity metal and heat-conducting pads, the problems of low heating efficiency and high energy consumption of existing molds are solved, achieving rapid heating, low energy consumption and simplified structure, thus improving equipment performance and user experience.

CN223853033UActive Publication Date: 2026-01-30WENZHOU YOUSUO INTELLIGENT MACHINERY CO LTD
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Patent Information

Application Number
CN202520478025.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-01-30
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

The heating methods of existing garment steaming machine molds have problems such as low heating efficiency, high energy consumption, and complex structure, which affect production efficiency and cost.

Method used

The heating method uses electric heating tubes, which are tightly fitted to the inner wall of the mold shell. Combined with high thermal conductivity metal materials and thermal pads, direct heating is achieved. Continuous welds are formed by laser or argon arc welding to improve stability, and folded edges are set on the shell to suppress heat diffusion.

Benefits of technology

It improves heat transfer efficiency, shortens heating time, reduces energy consumption, simplifies the structure, reduces costs, and enhances the overall performance and user experience of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of garment steaming and ironing machines, in particular to a shaping mold for a garment steaming and ironing machine. The steam generator comprises a shell, a groove is formed in one side of the shell, and a plurality of steam holes are evenly distributed in the bottom face of the groove. The side wall of the groove is connected with an electric heating tube, and two ends of the electric heating tube extend towards the upper end of the groove to form an interface part connected with a power supply; a mounting groove matched with the electric heating tube in shape is formed in the side wall of the groove; after the prior art is improved, the heating pipe is in close contact with the shell of the mold, so that the mold is directly heated, the heat conduction efficiency is greatly improved, the heating time is shortened, the energy consumption is reduced, the structure is simplified, and the cost is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to clothing steamer technical field especially relates to a shaping mould for clothing steamer. BACKGROUND

[0002] In the modern clothing production and nursing process, clothing steamer plays a vital role, it can quickly, effectively to all kinds of clothing are flat and shaping processing, make clothing reach the ideal appearance effect. And mould as one of the core components of clothing steamer, its performance directly influences the steaming quality and efficiency.

[0003] At present, the mould heating mode mainly adopted by most clothing steamers on the market is to conduct heat to the mould through a heated heat-conducting plate. Specifically, this traditional heating mode is to heat the heat-conducting plate first, usually using a heating element such as a resistance wire to heat the inside of the heat-conducting plate, and then rely on the contact between the heat-conducting plate and the mould to slowly transfer heat to the mould when the heat-conducting plate reaches a certain temperature.

[0004] However, this traditional heating method has many significant defects. First, the heating efficiency is low. Since the heat needs to be indirectly transferred to the mould through the heat-conducting plate, a large amount of heat loss is inevitable during the conduction process. The limited contact area between the heat-conducting plate and the mould, as well as the air gap that may exist at the contact interface, all hinder the effective conduction of heat, resulting in slow heating of the mould, thus prolonging the preparation time of the entire steaming process and reducing the production efficiency. Second, this heating method has high energy consumption. In order to make up for the loss of heat during the conduction process and ensure that the mould reaches the required working temperature, the heat-conducting plate needs to be continuously heated, consuming a large amount of electrical energy. Moreover, due to the slow heating of the mould, in order to meet the demand of production rhythm, the heating device often needs to be turned on for a long time in advance, further increasing the waste of energy. Finally, the structure of the mould under the traditional heating method is relatively complex. The installation and fixation of the heat-conducting plate require additional space and structural design, increasing the overall volume and weight of the mould, which is not conducive to the miniaturization and portability of the equipment, and also increases the production cost and maintenance difficulty.

[0005] In summary, the existing heating method of clothing steamer mould has the problems of low heating efficiency, poor temperature uniformity, high energy consumption and complex structure, and there is an urgent need for a new heating method to improve the performance of the mould to meet the needs of modern clothing production and nursing. SUMMARY

[0006] The technical problem to be solved by the utility model is to solve the problems of low heating efficiency, high energy consumption and complex structure of the existing clothing steamer mould heating method.

[0007] To achieve the above object, the utility model provides the following technical scheme: a kind of for clothing steamer's shaping mould, including shell, the shell side is equipped with recess, the bottom surface of the recess is evenly equipped with several steam holes;The side wall of the recess is connected with electric heating tube, the both ends of the electric heating tube extend to the recess upper end direction and form the interface part connected with power supply;The side wall of the recess is equipped with the installation groove matched with the shape of electric heating tube.

[0008] The above technical scheme replaces the traditional heat conduction plate heating mode with electric heating tube heating mode, the electric heating tube is tightly fitted on the installation groove on the inner wall of the recess of the shell of the mould, and the heating tube is in close contact with the mould shell to realize direct heating of the mould, greatly improving the heat conduction efficiency, shortening the heating time and reducing the energy consumption, and the structure is simplified, and the cost is reduced.

[0009] The above technical scheme is further provided as follows: the electric heating tube and the edge of the installation groove are connected by laser welding or argon arc welding to form a continuous weld.

[0010] The above technical scheme uses laser welding or argon arc welding technology to ensure that a firm and continuous weld is formed between the electric heating tube and the edge of the installation groove of the shell, thereby significantly improving the stability and fit of the mould.

[0011] The above technical scheme is further provided as follows: the shell is provided with an inwardly extending folded edge at the upper end edge of the recess.

[0012] The above technical scheme sets an inwardly extending folded edge at the upper end of the recess of the shell to form an effective sealing barrier, which significantly inhibits the outward diffusion of heat and steam. This design not only optimizes the heat distribution inside the mould, improves the heat utilization rate, but also avoids energy waste and discomfort of the operating environment caused by steam overflow. At the same time, the structure design of the folded edge further enhances the overall strength of the shell, providing reliable guarantee for the stable operation of the mould, thereby improving the overall performance of the equipment and user experience.

[0013] The above technical scheme is further provided as follows: the shell is made of one of aluminum, aluminum alloy or copper, a high-thermal-conductivity metal material.

[0014] The above technical scheme uses aluminum, aluminum alloy or copper, a metal material with high thermal conductivity, to make the shell, which can significantly improve the heat transfer efficiency, so that the mould can quickly and uniformly reach the required temperature, not only shortening the heating time but also improving the steaming effect.

[0015] Further setting of the above technical scheme is that the heat-conducting pad is embedded in the mounting groove, and the electric heating pipe is fixedly connected with the heat-conducting pad and the shell and keeps close contact.

[0016] By adding the heat-conducting pad between the electric heating pipe and the mounting groove, the heat conduction path is optimized, the heat generated by the electric heating pipe is more efficiently transmitted to the mold shell, and the heat conduction efficiency is greatly improved.

[0017] Further setting of the above technical scheme is that the heat-conducting pad is a flexible graphene sheet or a metal fiber woven layer, and the thickness is 1-3 mm.

[0018] The heat-conducting pad is a flexible graphene sheet or a metal fiber woven layer, and the thickness is 1-3 mm. This design not only greatly enhances the heat conduction efficiency between the electric heating pipe and the shell, but also ensures good fit and uniformity of heat distribution. In addition, its flexibility facilitates installation and maintenance, further improving the overall performance and service life of the mold.

[0019] The beneficial effects achieved by the utility model are that the heating pipe and the shell of the mold are in close contact to directly heat the mold, greatly improving the heat conduction efficiency, shortening the heating time, reducing the energy consumption, and simplifying the structure and reducing the cost. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 is a structural schematic diagram of an embodiment of the utility model;

[0021] Figure 2 is an exploded structural schematic diagram of an embodiment of the utility model;

[0022] Figure 3 is Figure 2 is a partial view of A in FIG.

[0023] Marked in the figure: 1-shell, 2-groove, 3-steam hole, 4-electric heating pipe, 5-joint part, 6-mounting groove, 7-flanged part, 8-heat-conducting pad. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the utility model will be described clearly and completely below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0025] As Figures 1-3 The utility model provides a shaping mould for garment steam ironing machine, including the casing 1, one side of casing 1 is equipped with recess 2, and the bottom surface of recess 2 is evenly equipped with a plurality of steam holes 3, and the sidewall of recess 2 is connected with electric heating tube 4, and the both ends of electric heating tube 4 extend towards the upper end direction of recess 2 and form the interface part 5 connected with power supply, and the sidewall of recess 2 is equipped with the installation slot 6 matched with the shape of electric heating tube 4, and the continuous weld between electric heating tube 4 and the edge of installation slot 6 is formed by laser welding or argon arc welding, and the upper end edge of casing 1 located recess 2 is equipped with the inwardly extending flange 7, and casing 1 preferably adopts high heat-conducting metal material such as aluminium, aluminium alloy or copper, and the heat-conducting pad 8 is embedded in installation slot 6, and electric heating tube 4 and heat-conducting pad 8 and casing 1 are fixedly connected and keep close contact, and heat-conducting pad 8 is flexible graphene sheet or metal fiber braided layer, and its thickness is preferably 1-3mm.

[0026] In the above embodiment, the traditional heat-conducting plate heating mode is replaced by electric heating tube heating mode, the electric heating tube 4 is closely fitted on the installation slot 6 of the inner wall of the recess 2 of the casing 1 of the mould, the heating tube 4 is in contact with the casing 1 to realize direct heating of the mould, which greatly improves the heat conduction efficiency, shortens the heating time and reduces the energy consumption, and the structure is simplified and the cost is reduced, in addition, through the installation slot 6 provided on the sidewall of the recess 2 and the heat-conducting pad 8 embedded in the installation slot 6, the contact surface and the heat conduction efficiency between the electric heating tube 4 and the casing 1 can be further improved.

Claims

1. A shaping form for a garment steamer comprising a housing, characterised in that: The shell is provided with a groove on one side, and a plurality of steam holes are uniformly arranged on the bottom surface of the groove; an electric heating pipe is connected to the side wall of the groove, and the two ends of the electric heating pipe extend towards the upper end of the groove to form an interface part connected to a power source; a mounting groove matching the shape of the electric heating pipe is arranged on the side wall of the groove.

2. A shaping form for use in a garment steamer according to claim 1, characterized in that: A continuous weld is formed between the electric heating pipe and the edge of the mounting groove by laser welding or argon arc welding.

3. A shaping form for use in a garment steamer according to claim 2, characterized in that: A folded edge part extending inward is arranged on the upper end edge of the groove of the shell.

4. A shaping form for use in a garment steamer according to claim 3, characterized in that: The shell is made of one of high-thermal-conductivity metal materials such as aluminum, aluminum alloy or copper.

5. A shaping form for use in a garment steamer according to any one of claims 1-4, characterized in that: A heat-conducting pad is embedded in the mounting groove, and the electric heating pipe is fixedly connected to the heat-conducting pad and the shell and kept in close contact.

6. A shaping form for use in a garment steamer according to claim 5, characterized in that: The heat-conducting pad is a flexible graphene sheet or a metal fiber woven layer, and the thickness is 1-3 mm.