Smart tile with embedded electric heating coil
The electric heating tile with a copper pipe and film, magnetic members, and control module addresses installation and safety issues, providing efficient heat distribution and controlled heating.
Patent Information
- Application Number
- JP2024219437
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-25
- Filing Date
- 2024-12-13
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2044-12-13
AI Technical Summary
Existing electric heating tiles are heavy, require complex construction, generate harmful electromagnetic waves, and pose safety risks due to weak planar heating elements and poor connection between heating wires and conductive materials, making them difficult to install, maintain, and repair.
An electric heating tile with a copper pipe and copper film inside, equipped with a heating cable, magnetic members for easy installation, and a control module for temperature measurement and safe heating control, minimizing electromagnetic interference and enhancing safety and ease of use.
The copper pipe and film design facilitates efficient heat distribution, magnetic coupling for easy installation, and the control module ensures safe and controlled heating, reducing construction complexity and enhancing safety and functionality.
Smart Images

Figure 2025137382000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an electric heating tile that houses a copper pipe inside the tile, and more specifically to an electric heating tile in which a layer of copper pipe and copper film is mounted inside the tile and heat is emitted from the top surface of the tile by a heating cable inserted inside the copper pipe. [Background technology]
[0002] Generally, interior materials in the form of sheets made from tiles, wood, metal composite resins, and the like are attached to the interior walls of buildings to decorate designated spaces.
[0003] Most of these architectural interior materials have the problem of being heavy, and most of them are used only as simple architectural interior materials that are designed solely to have a good-looking appearance but do not provide any functionality.
[0004] On the other hand, heating inside buildings can be divided into two types: air conditioning heating, which uses an electric heater to heat cold air to make it warm and then blows this heated air into the room, and radiant heating, which heats the floor or walls and then warms the room by radiation from the floor or walls.
[0005] In particular, radiant heating is nowadays mainly used because of its relatively good heating efficiency, and radiant heating methods include heating the floor or wall by guiding hot water through pipes under the floor or behind the wall, and heating the floor or wall by embedding electric wires in the floor or wall.
[0006] However, hot water heating types are gradually being replaced by electric wire heating types, as there is a risk of water leaks if the pipes corrode or become damaged.
[0007] However, even in the case of the electric wire heating type, a series of complicated construction steps are required as follows: before constructing the floor or wall, the electric wires should first be laid on the floor or wall, and then the cement should be poured, and after the cement has hardened and dried, the decorative or other surface tiles should be further placed on the top surface of the cement and fixed thereto. Therefore, the electric wire heating type has the disadvantages of requiring a lot of labor, high construction costs, and generating a lot of electromagnetic waves that are harmful to the human body.
[0008] To compensate for these drawbacks, underfloor heating using planar or linear heating elements generates fewer electromagnetic waves and can easily transfer the heat used.
[0009] In particular, in the construction of underfloor heating using planar heating elements, insulating material is laid and then applied on the floor to be heated.
[0010] However, due to the weak strength of the planar heating element, the planar heating element is easily damaged by external impact, and is vulnerable to moisture, and may catch fire due to electrical leakage. In addition, once the planar heating element is partially damaged, it is difficult to repair.
[0011] Meanwhile, Korean Patent Publication No. 10-2015-0099894 describes a heating block having a structure in which the top surface of a square block base in which a cover fitting groove and a heating wire fitting groove are formed is covered with a heat conductive solution or a heat conductive paste, a heating wire is inserted into the heating wire fitting groove, and the cover fitting groove is covered with a cover.
[0012] However, in the case of the prior art, since the heating wire and the heat conductive solution (or heat conductive paste) are used as the heating medium, it is difficult to secure a sufficient connection area between them, which causes problems such as poor connection and spark generation, etc. Therefore, there are problems in terms of safety and reduced functionality.
[0013] In addition, there are disadvantages in terms of manufacturability and workability in that, in order to insert the heating wire into the square block base, a heating wire fitting groove must be machined on the top surface of the square block base before the heating wire is installed.
[0014] Therefore, in order to solve the above problems, there is a need for research into electric heating tiles that are easy to construct and repair, and can be used safely from accidents such as fires. Summary of the Invention
[0015] An object of the present disclosure is to provide an electric heating tile that is made of copper and that can more easily release heat generated by the heating cable through the top surface of the tile by providing a copper pipe into which a heating cable, such as an electric heating wire, is inserted, and a copper film formed inside the tile above the copper pipe.
[0016] Additionally, an object of the present disclosure is to provide an electric heating tile that can be easily installed and maintained through magnetic coupling by providing at least one magnetic member on one side.
[0017] In addition, an object of the present disclosure is to provide an electric heating tile that is capable of measuring the temperature of the copper pipe and safely controlling the heating state of the electric heating tile by including a control module electrically connected to the electric heating tile.
[0018] The problems that the present disclosure aims to solve are not limited to the problems mentioned above, and other problems that the present disclosure aims to solve but are not mentioned here will be clearly understood by those skilled in the art to which the present disclosure pertains from the following description.
[0019] According to one aspect of the present disclosure, there is provided an electric heating tile comprising: a first layer on which a copper pipe is provided; a second layer provided on the first layer and patterned with at least one copper film; a top cover configured to cover an upper surface of the second layer; and a bottom cover configured to cover a lower surface of the first layer, wherein at least one magnetic member is attached to one side of the top cover and the bottom cover.
[0020] The bottom cover may have a first inlet provided on one side, a second inlet provided on another side opposite to the first inlet, and an insert member inserted into the first inlet and the second inlet, the insert member being made of an elastic material and having a tubular shape with a through hole passing therethrough, and the copper pipe may be inserted into the through hole.
[0021] The electric heating tile may further include a control module configured to control the heating state of the copper pipe, and the control module may include a temperature sensor configured to measure the temperature of the top cover, a power supply unit configured to supply power to a heating cable inserted in the copper pipe, a communication unit configured to receive a user control signal from a predetermined user terminal, and a temperature control unit configured to control the heating temperature of the copper pipe based on the user control signal received from the communication unit.
[0022] The copper pipe of the first layer may be made of the same material as the copper film of the second layer, the copper pipe and the copper film may be joined by soldering, and the area of the bottom cover where the first layer is mounted may be coated with epoxy.
[0023] The electric heating tile may further include a side cover having the same thickness as the combined thickness of the bottom cover and the top cover, including an empty space formed therein, and having at least one through hole on one side.
[0024] According to the present disclosure, by providing a copper pipe made of copper and into which a heating cable such as an electric heating wire is inserted, and a copper film inside the tile, the heating cable passing through the top surface of the tile can more easily dissipate the heat generated by the heating cable passing through the top surface of the tile.
[0025] In addition, by providing at least one magnetic member on one side, the tiles can be easily installed and maintained through magnetic coupling.
[0026] Additionally, by including a control module electrically connected to the heating tile, it is possible to measure the temperature of the copper pipe and safely control the heating state of the heating tile. [Brief explanation of the drawings]
[0027] [Figure 1] FIG. 1 is a diagram illustrating the configuration of an electric heating tile according to one embodiment of the present disclosure.
[0028] [Figure 2] FIG. 2 is a diagram illustrating a first layer of an electric heating tile according to one embodiment of the present disclosure.
[0029] [Figure 3] FIG. 2 is a diagram illustrating a second layer of electric heating tiles according to one embodiment of the present disclosure.
[0030] [Figure 4] FIG. 2 is a diagram illustrating a combination of a first layer and a second layer of an electric heating tile according to one embodiment of the present disclosure.
[0031] [Figure 5] 1 is a diagram illustrating a top cover and a bottom cover of an electric heating tile according to one embodiment of the present disclosure. [Figure 6] 1 is a diagram illustrating a bottom cover of an electric heating tile according to one embodiment of the present disclosure. [Figure 7] 1 is a diagram illustrating a bottom cover of an electric heating tile according to one embodiment of the present disclosure.
[0032] [Figure 8] FIG. 2 is a diagram illustrating a control module of an electric heating tile according to one embodiment of the present disclosure.
[0033] [Figure 9] 1 is a diagram illustrating a side cover of an electric heating tile according to one embodiment of the present disclosure.
[0034] [Figure 10] FIG. 2 is a diagram illustrating a fault diagnosis unit provided in a control module of an electric heating tile according to one embodiment of the present disclosure. [Figure 11] FIG. 2 is a diagram illustrating a fault diagnosis unit provided in a control module of an electric heating tile according to one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0035] Specific details of the present disclosure, including the problems to be solved by the invention, the means for solving the problems, and the effects of the invention, as described above, are included in the examples and drawings described below. Advantages and features of the present disclosure, and methods for achieving them, will become apparent by referring to the embodiments described below in detail in conjunction with the accompanying drawings.
[0036] The scope of the rights of the present disclosure is not limited to the examples described below, and may be modified and implemented in various ways by a person having ordinary skill in the art within the scope of the technical spirit of the present disclosure.
[0037] Hereinafter, the subject matter of the present disclosure will be described in detail with reference to the accompanying FIG.
[0038] FIG. 1 is a structural diagram of an electric heating tile according to one embodiment of the present disclosure, FIG. 2 is a diagram for explaining a first layer of an electric heating tile according to one embodiment of the present disclosure, FIG. 3 is a diagram for explaining a second layer of an electric heating tile according to one embodiment of the present disclosure, FIG. 4 is a diagram for explaining a combination of the first and second layers of an electric heating tile according to one embodiment of the present disclosure, FIGS. 5 to 7 are drawings for explaining a top cover and a bottom cover of an electric heating tile according to one embodiment of the present disclosure, FIG. 8 is a diagram for explaining a control module of an electric heating tile according to one embodiment of the present disclosure, FIG. 9 is a diagram for explaining a side cover of an electric heating tile according to one embodiment of the present disclosure, and FIGS. 10 and 11 are drawings for explaining a fault diagnosis unit provided in a control module of an electric heating tile according to one embodiment of the present disclosure.
[0039] (First embodiment)
[0040] Referring to Figures 1 to 4, an electric heating tile 100 according to one embodiment of the present disclosure may include a first layer 110 on which a copper pipe 111 is provided, a second layer 120 on the first layer 110 and patterned with at least one copper film 121, a top cover 130 covering the upper surface of the second layer 120, and a bottom cover 140 covering the lower surface of the first layer 110.
[0041] For example, the top cover 130 may be made from a variety of materials such as ceramic, wood, and synthetic resin, and the bottom cover may be made from a synthetic resin material such as PVC.
[0042] For example, the gap provided between the first layer 110 and the top cover 130 may be less than a preset maximum thickness (eg, 10 mm).
[0043] As another example, the pattern of the copper film 121 may be determined to correspond to the size and shape of the top cover 130 .
[0044] Meanwhile, referring to FIG. 5, the top cover 130 and the bottom cover 140 may be provided with at least one magnetic member 131 and 141 on one side thereof.
[0045] Thus, the electric heating tiles 100 can be modularly combined by the magnetic members 131 and 141, the electric heating tiles 100 can be constructed for the entire area, or the electric heating tiles 100 can be partially placed in the area requiring construction.
[0046] Meanwhile, referring to Figures 6 and 7, the bottom cover 140 may have a first inlet 142 provided on one side, a second inlet 143 provided on the other side opposite the first inlet 142, and an insert member 144 inserted into the first inlet 142 and the second inlet 143.
[0047] At this time, the inserting member 144 is made of an elastic material and is provided in a tubular shape having a through hole passing through the interior thereof, and the copper pipe 111 can be inserted into the through hole.
[0048] Preferably, the insert 144 may be made from a silicon material.
[0049] Therefore, both ends of the copper pipe 111 provided in the first layer 110 can be protected by the insert members 144, and movement of the copper pipe 111 can be minimized.
[0050] In this case, the heating cable 10 may be inserted into the copper pipe 111, and the heat generated by the heating cable 10 may be released to the top cover 130 through the copper pipe 111 of the first layer 110 and the copper film 121 of the second layer 120.
[0051] Meanwhile, as shown in FIG. 8, the electric heating tile 100 may further include a control module 150 for controlling the heating state of the copper pipe 111 .
[0052] More specifically, the control module 150 may include a temperature sensor 151 for measuring the temperature of the top cover 130, a power supply unit 152 configured to supply power to the heating cable 10 inserted into the copper pipe 111, a communication unit 153 configured to receive a user control signal from a predetermined user terminal, and a temperature control unit 154 configured to control the heating temperature of the copper pipe 111 based on the user control signal received from the communication unit 153.
[0053] For example, the user control signal may include a heating reservation time, a maximum heating temperature, a minimum heating temperature, or the like.
[0054] Therefore, the temperature control unit 154 controls the heating state of the heating cable 10 by adjusting the magnitude and duty ratio of the voltage applied to the heating cable 10 based on the user control signal.
[0055] Meanwhile, the copper pipe 111 of the first layer 110 is made of the same material as the copper film 121 of the second layer 120, and the copper pipe 111 and the copper film 121 may be joined by soldering.
[0056] Additionally, the area of the bottom cover 140 where the first layer 110 is mounted may be coated with an epoxy resin.
[0057] More specifically, epoxy resin or the like may be applied to the inner surface of the bottom cover 140 at a preset thickness (e.g., 10 mm), and heat generated from the underside of the bottom cover 140 can be blocked by the epoxy resin.
[0058] That is, by applying epoxy resin or the like to the inner surface of the bottom cover 140, the temperature of the copper pipe 111 and the copper film 121 can be prevented from being affected by the heat rising from the bottom of the bottom cover 140, and the heat generated from the heating cable 10 inserted inside the copper pipe 111 can be released through the top cover 130.
[0059] Additionally, if the heating temperature of the copper pipe is input through the control module 150, heat loss due to cold floor air or the like can be minimized.
[0060] On the other hand, as shown in FIG. 9, the electric heating tile may further include a side cover 160 having the same thickness as the combined thickness of the bottom cover 140 and the top cover 130, including an empty space formed therein, and having at least one through hole on one side.
[0061] The heating cable 10 passing through the first inlet 142 and the second inlet 143 of the bottom cover 140 may be inserted through a through-hole provided in the side cover 160 .
[0062] In other words, tile construction can be completed by placing the side covers (160) along the outer edges of the area where heat is to be supplied by the electric heating tiles 100.
[0063] At this time, the side cover 160 may include at least one cutting line in the horizontal and vertical directions, and the side cover 160 may be cut according to the shape of the floor.
[0064] For example, the side cover 160 may be made from plastic.
[0065] As another example, a thermally conductive sheet is attached to the side of the top cover 130 to induce fast heat conduction between the electric heating tiles 100 when multiple electric heating tiles 100 are combined.
[0066] (Second embodiment)
[0067] Meanwhile, the control module 150 may further include a fault diagnosis unit (not shown) that analyzes the temperature data (sensor output data) collected through the temperature sensor 151 .
[0068] This fault diagnosis unit (not shown) may analyze the sensor output data in real time and determine that a fault has occurred in the temperature sensor 151 if the instantaneous rate of change of the sensor output data is equal to or greater than a preset value.
[0069] For this purpose, in the first embodiment, the instantaneous rate of change Rchange of the sensor output data is calculated, and if the instantaneous rate of change Rchange is greater than a preset limit value Serr, it can be determined that an error has occurred in the real-time output data of the sensor (e.g., due to a failure of the sensor itself).
[0070] The instantaneous rate of change Rchange of the sensor output data can be calculated through the differential value f'(x) of the function f(x) that represents the characteristics of the sensor, as shown in the following [Equation 1].
[0071] [Formula 1]
number
[0072] Here, Rchange indicates the instantaneous rate of change of the sensor output data, and Δt indicates the change over time.
[0073] In the second embodiment, a sensor failure can be determined to occur only when the instantaneous rate of the sensor calculated in [Equation 1] is greater than a preset limit value Serr equal to or greater than a preset number of times during a preset period. In other words, since it is difficult to determine a sensor failure in a one-off case with a high instantaneous rate, a standard can be set to determine that a sensor failure has occurred only when the number of failures exceeds a preset number of times during a preset period in order to improve the accuracy of the sensor failure determination.
[0074] In the third embodiment, it can be determined that a sensor failure has occurred only if the cumulative number of times that the instantaneous rate of change of the sensor calculated in [Equation 1] is greater than the preset limit value Serr is greater than a preset number. As in the second embodiment above, since it is difficult to determine a sensor failure in a one-off case with a high instantaneous rate, in order to improve the accuracy of the sensor failure determination, a standard can be set to determine that a sensor failure has occurred only if the number of failures exceeds a preset number of times within a preset period.
[0075] In the fourth embodiment, if the instantaneous rate of change of the sensor calculated in [Equation 1] changes rapidly, it can be determined that the sensor has failed.
[0076] For this purpose, f'(x) calculated in [Equation 1] is differentiated again to calculate f''(x), and if the calculated value is greater than a preset value, it can be determined that a fault has occurred in the sensor.
[0077] On the other hand, in the fifth embodiment, even if it is determined that a failure has occurred in the sensor through any one of the first to fourth embodiments, the sensor failure is not immediately confirmed, but the sensor failure may be confirmed if the "unexpected data generation condition" described below is simultaneously satisfied.
[0078] Here, in the unexpected data generation condition, the slopes of the upper limit lines 810 and 910 connecting the upper limit values of the sensor output data and the lower limit lines 820 and 920 connecting the lower limit values of the sensor output data are calculated as shown in Figures 10 and 11, and if the slope difference calculated in the following [Equation 2] is equal to or greater than a preset value, it can be determined that unexpected data has occurred.
[0079] Therefore, if it is determined through any one of the first to fourth embodiments that a fault has occurred in the sensor, and the gradient difference Idiff calculated in [Equation 2] is equal to or greater than a preset value for satisfying the unexpected data generation condition, it can be set to confirm the sensor fault.
[0080] [Formula 2]
number
[0081] where I max is the gradient of the upper limit line connecting the upper limits of the sensor output data, and I min means the slope of the lower limit line connecting the lower limits of the sensor output data, and I diff means the gradient difference (absolute value).
[0082] More specifically, as shown in Figures 10 and 11, sensor data is collected at regular intervals, and the slopes of an upper limit line 810 connecting the upper ends of the collected data and a lower limit line 820 connecting the lower ends of the collected data are calculated. Then, the slope difference I diff If the difference is not large (less than a preset value), the sensor data is considered to be moving within the error range, and it is determined that the sensor is operating normally. Furthermore, if the gradient difference Idiff between the two lines becomes larger than a preset value, it can be determined that the sensor has failed, as an inaccurate value is being output due to a sensor malfunction.
[0083] That is, in the case of FIG. 10, the slope of the upper limit line 810 is 0.26 and the slope of the lower limit line 820 is 0.24; therefore, the slope difference Idiff between the two lines is 0.02, which is smaller than the preset reference value of 0.12, and it can be determined that the sensor is operating normally.
[0084] On the other hand, if the upper or lower line appears as a curved line, the slope may be compared by dividing the area by the section where the line is curved, or the slope may be compared by calculating the average slope over a certain period of time.
[0085] 11, a case where the slopes are compared by dividing the area at each section where the straight line bends will be described first. In FIG. 11, the upper limit straight line 910 includes three straight lines, and among these three straight lines, the first straight line 911 has a slope of 0.26, the second straight line 912 has a slope of 0.45, and the third straight line 913 has a slope of 0.26. In the case of the first straight line 911, if the lower limit straight line 920 has a slope of 0.24, the slope difference (0.26-0.24) with the lower limit straight line 920 is 0.02, which is less than the preset reference value of 0.12, and therefore, it is determined that the sensor is operating normally. However, in the case of the second straight line 912, the slope difference (0.45-0.24) with the lower limit straight line 920 is 0.21, which is greater than the preset reference value of 0.12, and therefore the sensor is determined to be operating abnormally, and in the case of the third straight line 913, the slope difference (0.38-0.24) with the lower limit straight line 920 is 0.14, which is greater than the preset reference value of 0.12, and therefore the sensor is determined to be operating abnormally. In this way, when dividing the area at each section where the straight line bends, comparing the slopes, and determining whether a fault has occurred, the time when the fault has occurred can also be estimated, which can be very useful when it is necessary to check when a fault has occurred.
[0086] The slopes can then be compared by calculating the slope average over a certain period of time. The slope average of the upper limit line 910 for the entire section of FIG. 11 is {(0.24 + 0.45 + 0.38) / 3} = 0.35, which differs from the slope average (0.24) of the lower limit line 920 by 0.11, which is less than the preset reference value of 0.12. Therefore, it can be determined that the sensor is operating normally. In this way, determining a fault by calculating the average slope over a certain period of time can reduce the sensitivity of the fault determination because even if there is a temporary slope change, it will not be determined to be a fault unless the average value exceeds the reference value. Therefore, unnecessary fault determinations can be prevented.
[0087] According to the present disclosure as described above, a copper pipe made of copper into which a heating cable such as an electric heating wire is inserted and a copper film formed on the top of the copper pipe are provided inside the tile, thereby providing an electric heating tile in which the heat generated by the heating cable can be more easily released through the top surface of the tile.
[0088] In addition, by providing at least one magnetic member on one side, it is possible to provide an electric heating tile that is easy to install and maintain through magnetic coupling.
[0089] Additionally, by including a control module electrically connected to the heating tile, it is possible to provide a heating tile that can measure the temperature of the copper pipe and safely control the heating state of the heating tile.
[0090] Additionally, a method for controlling electric heating tiles according to one embodiment of the present disclosure may be recorded on a computer-readable medium containing program instructions for performing various computer-implemented operations. The computer-readable medium may include, alone or in combination, program instructions, data files, data structures, or the like. The medium may be one specifically designed and configured for the present disclosure, or one known and available to those skilled in the art of computer software. Examples of computer-readable recording media include magnetic media such as hard disks, floppy disks, and magnetic tape; optical media such as CD-ROMs and DVDs; magneto-optical media such as floppy disks; and hardware devices specifically configured to store and execute program instructions, such as ROM, RAM, and flash memory. Examples of program instructions include machine language code, such as that produced by a compiler, and high-level language code that can be executed by a computer using an interpreter, or the like.
[0091] As described above, one embodiment of the present disclosure has been described through limited examples and drawings, but one embodiment of the present disclosure is not limited to the above-described embodiment, and various changes and modifications can be made from these descriptions by those skilled in the art to which the present disclosure pertains. Therefore, one embodiment of the present disclosure should be understood only by the scope of the claims described below, and all equivalents or equivalent modifications thereof are stated to fall within the concept of the present disclosure.
Claims
1. a first layer on which the copper pipe is provided; a second layer disposed on the first layer and patterned with at least one copper film; a top cover configured to cover an upper surface of the second layer; and a bottom cover configured to cover the underside of the first layer; and wherein at least one magnetic member is attached to one side of the top cover and the bottom cover.
2. the bottom cover has a first inlet provided on one side, a second inlet provided on another side opposite the first inlet, and an insert member inserted into the first inlet and the second inlet; The electric heating tile according to claim 1 , wherein the insert member is made of an elastic material and has a tubular shape with a through hole therethrough, and the copper pipe is inserted into the through hole.
3. a control module configured to control the heating state of the copper pipe; 2. The electric heating tile of claim 1, wherein the control module comprises a temperature sensor configured to measure the temperature of the top cover, a power supply unit configured to supply power to a heating cable inserted in the copper pipe, a communication unit configured to receive a user control signal from a predetermined user terminal, and a temperature control unit configured to control the heating temperature of the copper pipe based on the user control signal received from the communication unit.
4. the copper pipe of the first layer is made of the same material as the copper film of the second layer, and the copper pipe and the copper film are joined by soldering; The electric heating tile of claim 1 , wherein the area of the bottom cover where the first layer is mounted is coated with epoxy.
5. 5. The electric heating tile according to claim 1, further comprising a side cover having the same thickness as the combined thickness of the bottom cover and the top cover, including an empty space formed therein, and having at least one through hole on one side.