Rock titanium fusion core anti-sticking wear-resistant metal pot

By employing a symbiotic crystal nucleus structure of titanium and basalt and a honeycomb functional layer in the metal pot, the problems of easy coating peeling and uneven temperature at the bottom of the pot are solved, achieving the effects of non-stick, wear resistance and safety warning, and improving the service life and cooking effect of the cookware.

CN224307180UActive Publication Date: 2026-06-02YONGKANG JUELING ELECTRIC CO LTD +1

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YONGKANG JUELING ELECTRIC CO LTD
Filing Date
2025-05-20
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The coating of existing metal pots has limited adhesion to the substrate and is prone to peeling off, resulting in loss of non-stick properties. In addition, the local temperature of the bottom of the pot is too high, which affects the cooking effect and user experience.

Method used

Using a symbiotic crystal nucleus structure composed of titanium and basalt as the base material layer, combined with a honeycomb core functional layer and a coating layer, a honeycomb oil-locking system is formed. It is also equipped with an intelligent warning module and a heat-insulated handle to achieve anti-sticking, wear-resistant and safety warning.

Benefits of technology

The improved wear resistance and non-stick properties of the pot body prevent coating peeling, ensure even heat conduction, and the equipped warning module and heat insulation design prevent dry burning, thus enhancing cooking safety and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of rock titanium fusion core anti-sticking wear-resistant metal pots, including pot body and detachably connected pot cover, the pot body includes the substrate layer of metal material, core function layer and coating layer, the substrate layer is the symbiotic crystal nucleus structure of titanium metal and basalt, the core function layer is located substrate layer inner surface, and core function layer is several honeycomb structure compositions, the notch for storing oil is equipped in the honeycomb structure, the coating layer is filled in substrate layer surface and the honeycomb structure notch of core function layer, the substrate layer of the utility model pot body, give pot body very high hardness and tenacity, compared with traditional metal pot, anti-scratching, anti-impact capacity significantly improves, long-term use is not prone to coating peeling, surface wear and tear and other problems, in combination with the adoption of "honeycomb quantum oil-locking system", the "oil storage microcapsule" formed by honeycomb notch can dynamically release grease to form anti-sticking oil film, realize "not stick zero dead angle".
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Description

Technical Field

[0001] This utility model mainly relates to the field of metal pot technology, specifically a rock-titanium fusion core non-stick and wear-resistant metal pot. Background Technology

[0002] Metal pots are cooking utensils made primarily of metal materials (such as iron, aluminum, stainless steel, copper, titanium, etc.). They have good heat conductivity, durability, and processing performance, and are widely used in various cooking scenarios such as frying, stir-frying, boiling, and stewing.

[0003] Metal non-stick pans are cookware made of metal materials such as iron, stainless steel, and aluminum alloy, with a non-stick coating on the inner surface of the pan. Most existing non-stick pans use ordinary metal as the base material and spray a thin non-stick coating on the surface. The adhesion between the coating and the base material is limited. During use, the coating is easily peeled off due to friction and impact. Once the base material is exposed, not only will the non-stick performance be lost, but problems such as rusting and corrosion may also occur, affecting the normal use of the cookware and food safety. In addition, the bottom of the pan has a flat structure, which can easily lead to localized overheating of the bottom, causing food to burn while other parts remain uncooked, affecting the cooking effect and user experience. Utility Model Content

[0004] This utility model addresses the problem of overly simplistic solutions in existing technologies by providing a rock-titanium fusion core anti-stick and wear-resistant metal pot. This solves the technical problem mentioned in the background art, where the surface is coated with a thin anti-stick coating, resulting in limited adhesion between the coating and the substrate and easy peeling off, causing food to stick.

[0005] The technical solution adopted by this utility model to solve the above-mentioned technical problems is as follows:

[0006] A titanium-titanium fusion core non-stick wear-resistant metal pot includes a pot body and a detachable lid. The pot body includes a metal substrate layer, a core functional layer, and a coating layer. The substrate layer is a symbiotic crystal nucleus structure composed of titanium metal and basalt. The core functional layer is located on the inner surface of the substrate layer and is composed of several honeycomb structures. The honeycomb structures have slots for storing oil. The coating layer fills the honeycomb structure slots on the surface of the substrate layer and the core functional layer. A detachable handle is provided on one side of the outer wall of the pot body, and a detachable lug is provided on the other side.

[0007] Furthermore, the handle and the lug are both connected to the two ends of the outer wall of the pot body by screws, and the handle is S-shaped.

[0008] Furthermore, the handle includes a handle body with an internal metal material and a silicone protective sleeve covering the outer wall of the handle for heat insulation. The surface of the handle body has an installation cavity, the inner wall of the installation cavity is bonded with a heat insulation layer, and the surface of the heat insulation layer is provided with a warning module. A probe is fixed inside the handle body.

[0009] Furthermore, one end of the probe is fixed to the side wall of the pot body, and the other end extends to the through hole below the mounting cavity. The through hole is located on the handle body, and there is a 1-2 mm gap between the tip of the probe and the opening of the through hole.

[0010] Furthermore, the size of the mounting cavity is larger than that of the warning module, and the side of the warning module is provided with a heat dissipation vent.

[0011] Furthermore, the core functional layer is a honeycomb structure of multiple hexagonal arrays distributed on the bottom wall of the pot body. The groove depth of the honeycomb structure is 0.1 to 0.3 mm, and the pot lid is sealed to the opening at the top of the pot body by the rubber ring at the bottom. The top of the pot lid is provided with a through hole for venting.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0013] 1. The base material layer of the pot body gives it extremely high hardness and toughness. Compared with traditional metal pots, its scratch resistance and impact resistance are significantly improved. Long-term use is less prone to problems such as coating peeling and surface wear. Combined with the "Honeycomb Quantum Oil Locking System", the hexagonal honeycomb structure of the core functional layer has a slotted structure and array distribution, which can reduce the contact area between food and the pot body. The "oil storage microcapsules" formed by the honeycomb slots can dynamically release oil to form an anti-stick oil film, achieving "zero dead corners" for non-stick. At the same time, the hexagonal array disperses the pressure of the spatula, and its wear resistance is greater than that of traditional pots, taking into account both non-stick and durability.

[0014] 2. Equipped with an intelligent early warning module, the probe monitors the pot body temperature in real time. When the temperature exceeds the preset threshold, the buzzer will sound an alarm immediately. The handle adopts a multi-layer heat insulation design, which can reduce the temperature inside the installation cavity compared to the surface of the pot body, ensuring the stable operation of the early warning module and effectively preventing fire hazards caused by dry burning.

[0015] The present invention will be explained in detail below with reference to the accompanying drawings and specific embodiments. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the top structure of the main view of this utility model;

[0017] Figure 2 This is a schematic diagram of the bottom structure of the present invention from the front view.

[0018] Figure 3This is a partial cross-sectional structural diagram of the handle of this utility model;

[0019] Figure 4 This is a partial structural diagram of the cross-section of the pot body of this utility model.

[0020] Numbering on the map:

[0021] 1. Pot body; 101. Substrate layer; 102. Core functional layer; 103. Coating layer; 2. Pot lid; 3. Handle; 301. Mounting cavity; 302. Early warning module; 303. Probe; 4. Ear seat. Detailed Implementation

[0022] To facilitate understanding of this utility model, a more comprehensive description of the utility model will be given below with reference to the accompanying drawings, which show several embodiments of the utility model. However, the utility model can be implemented in different forms and is not limited to the embodiments described in the text. On the contrary, these embodiments are provided to make the disclosure of the utility model more thorough and comprehensive.

[0023] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly on the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.

[0024] Please refer to the appendix carefully. Figure 1-4 A titanium-metal fusion core non-stick wear-resistant metal pot includes a pot body 1 and a detachable lid 2. The pot body 1 includes a metal substrate layer 101, a core functional layer 102, and a coating layer 103. The substrate layer 101 is a symbiotic crystal nucleus structure composed of titanium metal and basalt. The core functional layer 102 is located on the inner surface of the substrate layer 101 and is composed of several honeycomb structures. The honeycomb structures have slots for storing oil. The coating layer 103 fills the surface of the substrate layer 101 and the honeycomb structure slots of the core functional layer 102. A detachable handle 3 is provided on one side of the outer wall of the pot body 1, and a detachable lug 4 is provided on the other side.

[0025] Through the above structure, the pot body 1 adopts MagmaCore™ rock titanium melting core technology, and through 12000℃ plasma spraying, titanium metal and basalt particles are interlocked at the atomic level to form a substrate layer 101 with a symbiotic crystal nucleus structure without interface fusion. This unique structure gives the pot body 1 excellent wear resistance. Compared with traditional metal pots, its scratch resistance and impact resistance are significantly improved. Long-term use is less likely to cause problems such as coating peeling and surface wear, thus extending its service life.

[0026] In this embodiment, as Figure 1 and Figure 2 As shown, the handle 3 and the ear seat 4 are both connected to the two ends of the outer wall of the pot body 1 by screws, and the handle 3 is S-shaped.

[0027] With the above structure, the handle 3 and the ear seat 4 are respectively connected to the two ends of the outer wall of the pot body 1 by screws. The handle 3 is S-shaped and protrudes upward at the end near the pot body 1, while the end that contacts the person is concave downward. Compared with the traditional straight handle or single-curve handle, the handle 3 adopts a unique S-shaped curved structure, with the end near the pot body 1 protruding upward and the end that contacts the person's hand concave downward. This shape can better fit the natural grip posture of the palm. When holding the pot, it can evenly distribute the weight of the pot body 1 to the palm and the tiger's mouth. Compared with the traditional straight handle, it reduces the wrist force angle by about 30%, effectively reducing the burden on the arm muscles. Whether stir-frying heavy objects or holding it for a long time, it can significantly relieve hand fatigue and make cooking easier.

[0028] Meanwhile, while traditional pot handles only serve a gripping function, the recessed area of ​​this handle 3 can be innovatively designed to create a "temporary storage space." When cooking, users can easily place chopsticks, spatulas, and other tools in the recessed area to avoid direct contact with the countertop, which could cause contamination, or the hygiene hazard of tools slipping to the ground, making the kitchen space cleaner and more efficient.

[0029] In this embodiment, as Figure 3 As shown, the handle 3 includes a metal body and a silicone protective sleeve covering the outer wall of the handle for heat insulation. A mounting cavity 301 is formed on the surface of the handle body. A heat insulation layer is adhered to the inner wall of the mounting cavity 301, and a warning module 302 is mounted on the surface of the heat insulation layer. A probe 303 is fixed inside the handle body of the handle 3. The warning module 302 contains a battery compartment, as well as a buzzer and an infrared temperature sensor electrically connected to the battery compartment. The handle body of the handle 3 can be made of aerospace-grade aluminum alloy 6061-T6, which has the advantages of high strength and lightweight, balancing durability and grip comfort. Its outer silicone protective sleeve is 4mm thick, made of food-grade silicone, and can withstand high temperatures up to 260℃. It will not deform or release harmful substances even after long-term exposure to high temperatures. Furthermore, a 3mm thick aerogel felt with a thermal conductivity ≤0.018W / (m・K) is adhered to the inner wall of the mounting cavity 301, providing efficient thermal insulation protection for the warning module 302.

[0030] Through the above structure, a heat barrier layer is formed on the inner wall of the mounting cavity 301. Combined with the heat dissipation vent provided on one side of the mounting cavity 301, double heat insulation is achieved, which can reduce the internal temperature of the mounting cavity 301 to be lower than that of the pot body 1. This ensures that the warning module 302 operates stably in high-temperature cooking environment, avoids performance degradation or failure of components such as battery compartment and buzzer due to overheating, and extends service life.

[0031] In this embodiment, as Figure 3 As shown, one end of the probe 303 is fixed to the side wall of the pot body 1, and the other end extends to the through hole below the mounting cavity 301. The through hole is located on the handle 3, and there is a 1-2 mm gap between the top of the probe 303 and the opening of the through hole. The probe 303 is directly fixed to the side wall of the pot body 1, which can accurately collect the temperature data of the pot body 1 in real time. Its top end maintains a safe distance from the opening of the through hole of the mounting cavity 301 of the handle 3, which not only ensures the accuracy of temperature conduction, but also avoids direct contact with the warning module 302 and avoids interference. The infrared temperature sensor is located above the probe 303. When the infrared temperature sensor detects that the temperature of the pot body 1 exceeds the preset threshold (such as the dangerous dry burning temperature of 200℃) through the probe 303, the sensor immediately transmits the signal to the buzzer powered by the battery compartment, triggering a high-decibel alarm, effectively preventing the fire hazard caused by dry burning and providing reliable safety protection for users.

[0032] In this embodiment, as Figure 3 As shown, the cavity size of the mounting cavity 301 is larger than that of the warning module 302. The warning module 302 has a heat dissipation vent on its side. The gap formed between the two provides a channel for hot air flow, effectively preventing the warning module 302 from overheating. At the same time, the heat dissipation vent on one side forms natural convection, increasing the heat diffusion speed by about 40%. From a spatial structure perspective, this lays the foundation for preventing the warning module 302 from overheating.

[0033] In this embodiment, as Figure 1 and Figure 4 As shown, the core functional layer 102 is a honeycomb structure with multiple hexagonal arrays distributed on the inner bottom wall of the pot body 1, and the groove depth of the honeycomb structure is 0.1 to 0.3 mm. The lid 2 is sealed to the top opening of the pot body 1 by a rubber ring at the bottom. The lid 2 also has a vent hole at the top for venting. The core functional layer 102 is located on the hexagonal honeycomb structure on the bottom wall of the pot body 1. The honeycomb structure can be laser-engraved or plasma-etched onto the surface of the substrate layer 101 with a depth precisely controlled between 0.1-0.3 mm. Each honeycomb unit forms an oil storage groove through the design of the slot, simulating the efficient oil storage characteristics of a honeycomb, forming a "honeycomb oil-locking system". During cooking, the oil automatically fills the groove, building a continuous and uniform dynamic non-stick oil film on the inner surface of the pot body 1. Compared with traditional flat-bottomed pans, this structure can reduce the direct contact area between food and the pot body 1. Combined with the spacing and array distribution between the honeycombs, the food is suspended on the oil film, making it easy to flip even some food that is easy to stick to the pan, achieving a true "non-stick zero dead corner".

[0034] The specific operating procedure of this utility is as follows: Place the pot body 1 on a heat source such as a gas stove or induction cooker. Its bottom is a flat structure. The substrate layer 101 is a symbiotic crystal nucleus structure formed by titanium metal and basalt particles through plasma spraying at 12000℃, which can achieve rapid and uniform heat conduction. When the infrared temperature sensor detects through the probe 303 that the temperature of the pot body 1 reaches the preset threshold (such as the dangerous dry burning temperature of 200℃), the buzzer of the warning module 302 immediately emits a high-decibel alarm to remind the user to adjust the heat or add food.

[0035] The unique S-shaped curved design of the handle 3 allows for easy stirring, carrying, and other cooking operations. During breaks in cooking, chopsticks, spatulas, and other tools can be temporarily stored in the recessed area of ​​the handle 3 to prevent them from soiling the countertop.

[0036] During cooking, due to the honeycomb structure of the core functional layer 102, when cooking oil is poured for the first time, the groove will continuously release oil because of the excess cooking oil stored in it, forming a dynamic non-stick oil film. This reduces the contact area between the food and the inner bottom wall of the pot body 1, making it easy to flip some easily sticky ingredients. When stir-frying, the hexagonal honeycomb array can disperse the pressure of the spatula, making it more wear-resistant than traditional pots and resistant to spatula scratches.

[0037] When simmering ingredients, the lid 2 can be placed on top of the pot body 1, the rubber ring seals to prevent steam from escaping, and the vent at the top releases excess steam, adjusting the pressure and temperature inside the pot body 1.

[0038] After cooking, hang the cleaned pot body 1 using the ear bracket 4 to save space.

[0039] The present invention has been described above by way of example in conjunction with the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any non-substantial improvement made by adopting the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution of the present invention to other occasions without modification, shall be within the protection scope of the present invention.

Claims

1. A rock-titanium fusion core non-stick wear-resistant metal pot, comprising a pot body (1) and a detachably connected pot lid (2), characterized in that: The pot body (1) includes a metal substrate layer (101), a core functional layer (102), and a coating layer (103). The substrate layer (101) is a symbiotic crystal nucleus structure composed of titanium metal and basalt. The core functional layer (102) is located on the inner surface of the substrate layer (101) and is composed of several honeycomb structures. The honeycomb structure has slots for storing oil. The coating layer (103) fills the surface of the substrate layer (101) and the honeycomb structure slots of the core functional layer (102). The outer wall of the pot body (1) has a detachable handle (3) on one side and a detachable lug (4) on the other side.

2. The anti-sticking and wear-resistant metal pot for molten titanium as described in claim 1, characterized in that: The handle (3) and the ear seat (4) are both connected to the two ends of the outer wall of the pot body (1) by screws, and the handle (3) is S-shaped.

3. The anti-sticking and wear-resistant metal pot for molten titanium as described in claim 1, characterized in that: The handle (3) includes a handle body with an inner metal material and a silicone protective sleeve covering the outer wall of the handle for heat insulation. The surface of the handle body of the handle (3) is provided with an installation cavity (301). The inner wall of the installation cavity (301) is bonded with a heat insulation layer, and the surface of the heat insulation layer is provided with an early warning module (302). A probe (303) is fixed inside the handle body of the handle (3).

4. The anti-sticking and wear-resistant metal pot for molten titanium as described in claim 3, characterized in that: One end of the probe (303) is fixed to the side wall of the pot body (1), and the other end extends to the through hole below the mounting cavity (301). The through hole is located on the handle (3), and there is a 1-2 mm gap between the top of the probe (303) and the opening of the through hole.

5. The anti-sticking and wear-resistant metal pot for molten titanium as described in claim 3, characterized in that: The size of the mounting cavity (301) is larger than that of the warning module (302), and the side of the warning module (302) is provided with a heat dissipation port.

6. The anti-sticking and wear-resistant metal pot for molten titanium as described in claim 1, characterized in that: The core functional layer (102) is a honeycomb structure of multiple hexagonal arrays distributed on the inner bottom wall of the pot body (1). The depth of the groove of the honeycomb structure is 0.1 to 0.3 mm. The pot lid (2) is sealed and covered by the bottom rubber ring and the mating surface of the top opening of the pot body (1). The top of the pot lid (2) is provided with a through hole for exhaust.