Intelligent temperature control iron
The integrated modular design of the intelligent temperature-controlled iron solves the problems of insufficient temperature control and steam output in existing irons when handling mixed fabrics, achieving precise ironing and energy and water conservation, and improving the user experience.
Patent Information
- Application Number
- CN202511188883.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-22
- Publication Date
- 2025-11-21
AI Technical Summary
Existing irons mainly rely on mechanical temperature control knobs or fixed fabric modes, which cannot handle mixed fabrics. They pose a high risk of ironing fusible interfacing, and the decoupling of steam output and temperature can lead to fabric shrinkage or scorching. Furthermore, they lack data interaction to save specific fabric plans.
This intelligent temperature-controlled iron integrates a temperature control module, a steam control module, an fusible interfacing processing unit, a Bluetooth communication module, and a central processing unit. By inputting fabric data through a programmable display screen, it automatically adjusts the temperature and steam output to achieve coordinated temperature and steam control. It also connects to a mobile terminal via Bluetooth to save ironing programs.
It enables precise ironing of mixed fabrics, avoids melting of the fusible interlining, saves more than 30% of water, improves user experience, provides rapid overheat protection, and saves energy and electricity.
Smart Images

Figure CN120989889A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of intelligent iron technology, specifically to an intelligent temperature-controlled iron. Background Technology
[0002] An electric iron is a tool for smoothing clothes and fabrics, with a power generally between 300 and 1000W. It can be categorized into: standard, temperature-controlled, and steam-spray types. Standard electric irons are simple in structure, inexpensive, and easy to manufacture and repair. Temperature-controlled electric irons can automatically adjust the temperature within a range of 60-250℃ and automatically cut off the power. They can use the appropriate temperature for different fabrics and are more energy-efficient than standard irons. Steam-spray electric irons have both temperature control and steam generation functions; some are even equipped with a spray device, eliminating the hassle of manual water spraying, resulting in more even wetting of the fabric and better ironing results.
[0003] In the process of realizing this invention, the inventors discovered the following problems with the existing technology: Existing irons mainly rely on mechanical temperature control knobs or fixed fabric modes, which have significant drawbacks: they cannot handle mixed fabrics: for example, cotton-polyester blended fabrics require intermediate temperatures, but users find it difficult to set them based on experience; fusible interfacing has high ironing risk: it is sensitive to melting points, and existing products do not have a dedicated control mechanism; steam output and temperature are decoupled: high-temperature dry ironing or low-temperature wet ironing can easily cause fabric shrinkage / scorching; and there is a lack of data interaction: users cannot save specific fabric settings. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides an intelligent temperature-controlled iron that solves the problems of existing devices that mainly rely on mechanical temperature control knobs or fixed fabric modes, which have significant drawbacks: inability to handle mixed fabrics: such as cotton-polyester blends which require intermediate temperatures, but users cannot set them based on experience; high risk of fusible interfacing ironing: melting point is sensitive, and existing products lack a dedicated control mechanism; decoupling of steam output and temperature: high-temperature dry ironing or low-temperature wet ironing can easily lead to fabric shrinkage / scorching; lack of data interaction: users cannot save specific fabric settings.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an intelligent temperature-controlled iron, comprising an iron body, the iron body including a soleplate, a control panel, an electrical connector, a temperature control layer, a water tank, a handle, and a water inlet. The soleplate is mounted on the bottom of the iron body, and the temperature control layer is connected to the upper wall of the soleplate. The control panel is located inside the iron body, and the electrical connector is connected to the upper end of the iron body. The control panel is connected to the temperature control layer. The water tank is located at the other end of the iron body, and the handle and the water inlet are connected above the water tank. The iron also includes a programmable display screen; a temperature control module; a steam control module; an adhesive backing processing unit; a Bluetooth communication module; and a central processing unit.
[0006] Preferably, the system includes: a programmable display screen that supports text or voice input of fabric composition, proportion, and weave structure; a temperature control module that automatically adjusts the ironing temperature based on the input fabric data; a steam control module that dynamically adjusts the steam output based on the fabric data; a fusible interfacing processing unit that responds to the input of the melting point of the fusible interfacing type and sets the bonding temperature threshold; a Bluetooth communication module that connects to a mobile terminal and receives remote control commands; and a central processing unit that integrates the input data and executes the temperature-steam collaborative control algorithm.
[0007] Preferably, the temperature control module has a built-in fabric database containing upper temperature limits corresponding to different component ratios.
[0008] Preferably, the adhesive backing processing unit triggers overheat protection when the temperature reaches 90%-95% of the melting point.
[0009] Preferably, the mobile terminal sends a custom ironing program via Bluetooth and stores commonly used fabric schemes.
[0010] Preferably, the iron control method includes the following steps: receiving input of fabric composition, proportion, weave structure and fusible interfacing melting point; calling the database to match the optimal temperature-steam parameters; monitoring the soleplate temperature in real time and dynamically limiting steam output; and enabling gradient temperature control near the melting point in fusible interfacing mode.
[0011] Beneficial effects
[0012] This invention provides an intelligent temperature-controlled iron, which offers the following advantages: Precise ironing even with zero experience: Automatically identifies the critical temperature of blended fabrics, preventing fiber melting due to overheating. Efficient fusible interfacing treatment: Melting point-oriented temperature control increases bonding strength by ≥35%; overheat protection response time is ≤0.5 seconds, preventing scorching. Resource optimization: Steam is precisely supplied according to the fabric structure, saving over 30% of water; Bluetooth remote preheating reduces standby power consumption. Enhanced user experience: Voice input frees up hands; customized solutions can be saved on mobile devices. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of the present invention.
[0014] Figure 2 This is a partial structural diagram of the present invention.
[0015] In the picture: 1. Iron body; 2. Sole plate; 3. Control panel; 4. Electrical connector; 5. Temperature control layer; 6. Water tank; 7. Handle; 8. Water inlet. Detailed Implementation
[0016] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0017] Please see Figure 1 This invention provides a technical solution: an intelligent temperature-controlled iron, comprising an iron body 1, the iron body 1 including a soleplate 2, a control panel 3, an electrical connector 4, a temperature control layer 5, a water tank 6, a handle 7, and a water inlet 8. The soleplate 2 is installed at the bottom of the iron body 1, and the temperature control layer 5 is connected to the upper wall of the soleplate 2. The control panel 3 is located inside the iron body 1, and the electrical connector 4 is connected to the upper end of the iron body 1. The control panel 3 is connected to the temperature control layer 5. The water tank 6 is located at the other end of the iron body 1, and the handle 7 and the water inlet 8 are connected above the water tank 6. The iron body also includes a programmable display screen; a temperature control module; a steam control module; an adhesive backing processing unit; a Bluetooth communication module; and a central processing unit.
[0018] This embodiment is further configured with: a programmable display screen supporting text or voice input of fabric composition, proportion, and weave structure; a temperature control module automatically adjusting the ironing temperature based on the input fabric data; a steam control module dynamically adjusting the steam output based on the fabric data; a fusible interfacing processing unit responding to the input of the melting point of the fusible interfacing type and setting the bonding temperature threshold; a Bluetooth communication module connecting to a mobile terminal to receive remote control commands; and a central processing unit integrating input data and executing a temperature-steam coordinated control algorithm. The upper wall of the iron body 1 has a control structure for steam regulation.
[0019] In this embodiment, the temperature control module is further configured to have a built-in fabric database containing upper temperature limits corresponding to different component ratios.
[0020] In this embodiment, the adhesive backing processing unit is further configured to trigger overheat protection when the temperature reaches 90%-95% of the melting point.
[0021] In this embodiment, the mobile terminal is further configured to send a custom ironing program via Bluetooth and store commonly used fabric schemes.
[0022] This embodiment is further configured such that the iron control method includes the following steps: receiving input of fabric composition, proportion, weave structure and fusible interlining melting point; calling the database to match the optimal temperature-steam parameters; monitoring the soleplate temperature in real time and dynamically limiting steam output; and enabling gradient temperature control near the melting point in fusible interlining mode.
[0023] Its detailed connection method is a well-known technology in this field. The following mainly introduces the working principle and process, and the specific work is as follows.
[0024] Example:
[0025] Input layer: Touchscreen / voice input of fabric parameters;
[0026] Processing layer: Match the upper temperature limit to the fabric database;
[0027] Organizational structure correction factor;
[0028] Adhesive Liner Mode: Set T_Working = Melting Point - 5℃, immediately cut off heating if the temperature exceeds the limit;
[0029] Output layer: PID algorithm controls heating element power; piezoelectric ceramic pump adjusts steam volume according to fabric weight; Bluetooth connectivity: mobile app with preset scheme library, one-click synchronization to the iron. The internal graphics card is connected to a protective heat insulation plate.
[0030] Taking the ironing of wool / polyester blend suits (including fused lining) as an example:
[0031] Voice input: "Fabric: 60% wool, 40% polyester, plain weave; fusible interlining melting point 130℃";
[0032] System Response: Database Retrieval: Wool withstands 140℃ + Polyester withstands 160℃ → Set upper limit 145℃; Plain weave → Medium steam output (2.5g / min); Fused interlining mode → Working temperature 125℃ (130-5℃); Bluetooth synchronization: Save this scheme as "Suit Mode" on the mobile APP.
[0033] The patent highlights are:
[0034] Additionally, when there is a temperature discrepancy between the heat melt point of the fabric and the fusible interlining, the heat melt point of the fabric will be used as the reference, triggering an alarm to prompt the replacement of the fusible interlining. The fusible interlining with a lower heat melt point than the fabric will be used to ensure a match.
[0035] Dynamic protection of the melting point of the adhesive liner: breaking through the limitations of traditional fixed temperature zones;
[0036] Cross-hardware collaborative control: Integrating voice recognition, Bluetooth communication, and PID temperature control into miniaturized devices.
[0037] It should be noted that in this paper, relational terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations.
Claims
1. An intelligent temperature-controlled iron, comprising an iron body (1), the iron body (1) comprising a soleplate (2), a control panel (3), an electrical connector (4), a temperature control layer (5), a water tank (6), a handle (7), and a water inlet (8), wherein the soleplate (2) is mounted on the bottom of the iron body (1), the temperature control layer (5) is connected to the upper wall of the soleplate (2), the control panel (3) is disposed inside the iron body (1), the electrical connector (4) is connected to the upper end of the iron body (1), the control panel (3) is connected to the temperature control layer (5), the water tank (6) is disposed inside the iron body (1), and the handle (7) and the water inlet (8) are connected above the water tank (6), characterized in that, It also includes a programmable display screen; a temperature control module; a steam control module; an adhesive backing processing unit; a Bluetooth communication module; and a central processing unit.
2. The intelligent temperature-controlled iron according to claim 1, characterized in that, Programmable display screen: supports text or voice input of fabric composition, proportion and weave structure; Temperature control module: automatically adjusts ironing temperature according to input fabric data; Steam control module: dynamically adjusts steam volume based on fabric data; Fusible interfacing processing unit: responds to input of the melting point of fusible interfacing type and sets the bonding temperature threshold; Bluetooth communication module: connects to mobile terminal and receives remote control commands; Central processing unit: integrates input data and executes temperature-steam collaborative control algorithm.
3. The intelligent temperature-controlled iron according to claim 1, characterized in that, The temperature control module has a built-in fabric database containing upper temperature limits corresponding to different component ratios.
4. The intelligent temperature-controlled iron according to claim 1, characterized in that, The adhesive liner processing unit triggers overheat protection when the temperature reaches 90%-95% of the melting point.
5. The intelligent temperature-controlled iron according to claim 1, characterized in that, The mobile device sends a custom ironing program via Bluetooth and stores commonly used fabric schemes.
6. The intelligent temperature-controlled iron according to claim 1, characterized in that, The iron control method includes the following steps: receiving input of fabric composition, proportion, weave structure and fusible interfacing melting point; calling the database to match the optimal temperature-steam parameters; monitoring the soleplate temperature in real time and dynamically limiting steam output; and enabling gradient temperature control near the melting point in fusible interfacing mode.