Display device

WO2026160503A1PCT designated stage Publication Date: 2026-07-30LG ELECTRONICS INC
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
LG ELECTRONICS INC
Filing Date
2025-01-23
Publication Date
2026-07-30

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Abstract

Provided is a display device comprising: a display panel; a main substrate mounted on a rear surface of the display panel; an illuminance sensor, which is mounted on the main substrate and faces downward; and a light guide extending from a lower end of the display panel to a lower portion of the illuminance sensor and including a light-transmissive material, wherein the light guide includes: a light incident surface positioned at the lower end of the display panel; and a light exit surface facing the illuminance sensor.
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Description

Display device

[0001] The present invention relates to a display device having a design in which an illuminance sensor for measuring the illuminance of an installation space is not exposed to the outside.

[0002] As the information society develops, the demand for displays is increasing in various forms. In response to this, recent displays include Liquid Crystal Displays (LCDs), Field Emission Displays (FEDs), Plasma Display Panels (PDPs), and Electroluminescence Devices.

[0003] A liquid crystal panel of a liquid crystal display includes a liquid crystal layer and a TFT substrate and a color filter substrate facing each other with the liquid crystal layer in between, and can display an image using light provided from a backlight unit.

[0004] As an example of an electroluminescence device, an active matrix type organic light-emitting display device is commercially available. Since organic light-emitting display devices are self-emissive, they do not require a backlight compared to liquid crystal display devices and offer advantages in response speed and viewing angle, making them a focus of attention as next-generation displays.

[0005] Recently, materials such as Organic Light Emitting Diodes (OLEDs) can realize flexible display modules because they emit light without a backlight structure on the back, thereby enabling the realization of curved display devices.

[0006] Not only is the thickness of the display decreasing, but the size of the non-display area located around the display's display area is also shrinking. As the size of the case surrounding the display also decreases, and the bezel size, which includes the non-display area and the case surrounding the front, is reduced to less than 1 cm, bezel-less display devices are becoming mainstream.

[0007] To save energy, an illuminance sensor may be provided to adjust the brightness of the display device according to ambient light. Additionally, the display device may be provided with an infrared receiver that receives signals from a remote control using infrared.

[0008] Although light sensors and infrared receivers must be positioned facing forward for light reception, conventional display devices have placed the light sensors and infrared receivers in a protruding form on the bottom of the main body due to the lack of space for installing infrared receivers as the display panel bezels have been reduced.

[0009] However, the light sensor and infrared receiver protruding from the bottom of the main body are at risk of damage during transport, so additional protective components must be added to protect them.

[0010] The present invention aims to provide a display device including a light guide capable of reducing the deviation of the amount of light incident on an illuminance sensor.

[0011] A display device is provided that includes: a display panel; a main board mounted on the back surface of the display panel; an illuminance sensor mounted on the main board and facing downward; and a light guide extending from the bottom of the display panel to the bottom of the illuminance sensor and comprising a light-transmitting material, wherein the light guide includes a light-input surface located at the bottom of the display panel; and a light-output surface facing the illuminance sensor.

[0012] It may include a scattering pattern formed in a first region of the light-emitting surface.

[0013] The above scattering pattern can be formed by injection molding through mold corrosion or by attaching a scattering film.

[0014] It includes an infrared receiver mounted on the main board adjacent to the illuminance sensor, and the infrared receiver may be located in a second region where the scattering pattern of the light-emitting surface of the light guide is not formed.

[0015] The infrared receiver can be located at the horizontal center of the light-emitting surface.

[0016] The light guide may include a horizontal guide extending rearward from the light entry surface and a vertical guide extending vertically from the light exit surface and connected to the horizontal guide.

[0017] The corners of the connection portion between the horizontal guide and the vertical guide may include inclined reflective surfaces.

[0018] The device includes a case top that covers the front perimeter and sides of the display panel, and the light entry surface of the light guide may be located behind the bottom of the case top.

[0019] A 45° diagonal extension line from the bottom corner of the case top can be located in the vertical upper part of the light receiving surface.

[0020] The bottom corner of the case top may include a chamfer connecting the front and bottom surfaces.

[0021] It may further include a guide bracket that secures the light guide to the case top.

[0022] It may include guide hooks that protrude from both sides of the light-emitting surface of the light guide and are inserted into the main substrate.

[0023] The display device of the present invention eliminates a protruding structure at the bottom, thereby reducing damage during transport or use of the product and having an excellent design effect.

[0024] In addition, the display device of the present invention can sufficiently secure the reception rate of the infrared receiver and the amount of light detected by the illuminance sensor.

[0025] In addition, the display device of the present invention can reduce the number of boards by mounting an infrared receiver, an illuminance sensor, an LED lamp, a power button, etc., on the main board.

[0026] In addition, the display device of the present invention can simplify the assembly process by implementing an infrared receiver, an illuminance sensor, a light guide structure for an LED lamp, and a power button into a single assembly.

[0027] In addition, the display device of the present invention can reduce the deviation in the amount of light entering the illuminance sensor, thereby improving the accuracy of the illuminance sensor.

[0028] The effects obtainable from the present invention are not limited to those mentioned above, and other unmentioned effects will be clearly understood by those skilled in the art from the description below.

[0029] FIG. 1 is a front view illustrating an example of a display device of the present invention.

[0030] FIG. 2 is a drawing showing a part of the lower portion of the main board of the display device of the present invention.

[0031] FIG. 3 is a cross-sectional perspective view of a display device of the present invention.

[0032] FIG. 4 is a cross-sectional view of a display device of the present invention.

[0033] FIG. 5 is a perspective view illustrating a bottom assembly of a display device of the present invention.

[0034] FIG. 6 is an exploded perspective view illustrating the bottom assembly of the display device of the present invention.

[0035] FIG. 7 is a cross-sectional view illustrating the shape of light incident along the light guide of the display device of the present invention.

[0036] Figure 8 is a table showing the amount of light depending on whether corrosion is applied to the light-emitting part.

[0037] Hereinafter, embodiments disclosed in this specification will be described in detail with reference to the attached drawings. Identical or similar components regardless of drawing symbols will be assigned the same reference number, and redundant descriptions thereof will be omitted. The suffixes "module" and "part" used for components in the following description are assigned or used interchangeably solely for the ease of drafting the specification and do not inherently possess distinct meanings or roles. Furthermore, in describing embodiments disclosed in this specification, if it is determined that a detailed description of related prior art could obscure the essence of the embodiments disclosed in this specification, such detailed description will be omitted. Additionally, the attached drawings are intended only to facilitate understanding of the embodiments disclosed in this specification; the technical concept disclosed in this specification is not limited by the attached drawings, and it should be understood that they include all modifications, equivalents, and substitutions that fall within the spirit and technical scope of the present invention.

[0038] Terms including ordinal numbers, such as first, second, etc., may be used to describe various components, but said components are not limited by said terms. These terms are used solely for the purpose of distinguishing one component from another.

[0039] When it is stated that one component is "connected" or "connected" to another component, it should be understood that while it may be directly connected or connected to that other component, there may also be other components in between. On the other hand, when it is stated that one component is "directly connected" or "directly connected" to another component, it should be understood that there are no other components in between.

[0040] A singular expression includes a plural expression unless the context clearly indicates otherwise.

[0041] In this application, terms such as “comprising” or “having” are intended to specify the existence of the features, numbers, steps, actions, components, parts, or combinations thereof described in the specification, and should be understood as not precluding the existence or addition of one or more other features, numbers, steps, actions, components, parts, or combinations thereof.

[0042] Meanwhile, the display device (100) described in this specification is, for example, an intelligent display device (100) that adds computer support functions to a broadcast reception function, and while faithful to the broadcast reception function, it may have an internet function added, and may be equipped with an interface that is more convenient to use, such as a handwriting input device, a touch screen, or a spatial remote control. In addition, by supporting wired or wireless internet functions, it may be connected to the internet and a computer, and may perform functions such as email, web browsing, banking, or games. A standardized general-purpose OS may be used for these various functions.

[0043] Accordingly, the display device (100) described in the present invention can perform various user-friendly functions, for example, by allowing various applications to be freely added or deleted on a general-purpose OS kernel. More specifically, the display device (100) can be, for example, a network TV, HBB TV, smart TV, etc., and can also be applied to a smartphone depending on the case.

[0044] Hereinafter, embodiments disclosed in this specification will be described in detail with reference to the attached drawings. Identical or similar components regardless of drawing symbols will be assigned the same reference number, and redundant descriptions thereof will be omitted. The suffixes "module" and "part" used for components in the following description are assigned or used interchangeably solely for the ease of drafting the specification and do not inherently possess distinct meanings or roles. Furthermore, in describing embodiments disclosed in this specification, if it is determined that a detailed description of related prior art could obscure the essence of the embodiments disclosed in this specification, such detailed description will be omitted. Additionally, the attached drawings are intended only to facilitate understanding of the embodiments disclosed in this specification; the technical concept disclosed in this specification is not limited by the attached drawings, and it should be understood that they include all modifications, equivalents, and substitutions that fall within the spirit and technical scope of the present invention.

[0045] Terms including ordinal numbers, such as first, second, etc., may be used to describe various components, but said components are not limited by said terms. These terms are used solely for the purpose of distinguishing one component from another.

[0046] When it is stated that one component is "connected" or "connected" to another component, it should be understood that while it may be directly connected or connected to that other component, there may also be other components in between. On the other hand, when it is stated that one component is "directly connected" or "directly connected" to another component, it should be understood that there are no other components in between.

[0047] A singular expression includes a plural expression unless the context clearly indicates otherwise.

[0048] In this application, terms such as “comprising” or “having” are intended to specify the existence of the features, numbers, steps, actions, components, parts, or combinations thereof described in the specification, and should be understood as not precluding the existence or addition of one or more other features, numbers, steps, actions, components, parts, or combinations thereof.

[0049] Meanwhile, the display device (100) described in this specification is, for example, an intelligent display device (100) that adds computer support functions to a broadcast reception function, and while faithful to the broadcast reception function, it may have an internet function added, and may be equipped with an interface that is more convenient to use, such as a handwriting input device, a touch screen, or a spatial remote control. In addition, by supporting wired or wireless internet functions, it can be connected to the internet and a computer, and can perform functions such as email, web browsing, banking, or games. A standardized general-purpose OS may be used for these various functions.

[0050] Accordingly, the display device (100) described in the present invention can perform various user-friendly functions, for example, by allowing various applications to be freely added or deleted on a general-purpose OS kernel. More specifically, the display device (100) can be, for example, a network TV, HBB TV, smart TV, etc., and can also be applied to a smartphone depending on the case.

[0051] FIG. 1 is a front view illustrating an example of a display device of the present invention. The display device (100) includes a display panel (150) that occupies most of the front surface area, a case top (111) that covers the front perimeter and sides of the display panel (150), and a cover bottom (112) that covers the rear surface.

[0052] The display device (100) of the present invention may have a rectangular body comprising a pair of long sides and a pair of short sides. Although a long side extending in the horizontal direction and a short side extending in the vertical direction are shown in the drawing, the long side and the short side may have the same length, and a form in which the long side is arranged in the vertical direction is also possible.

[0053] For the sake of convenience of explanation, the description is based on an example where the side extended horizontally is the long side and the side extended vertically is the short side, but as previously mentioned, it is not limited thereto.

[0054] The side where the display device (100) displays an image may be referred to as the front or front side. When the display device (100) displays an image, the side where the image cannot be observed may be referred to as the rear or rear side. When the display device displays an image, the side where the image cannot be observed may be referred to as the rear (rearward direction) or rear (rear side or rear surface).

[0055] The display device (100) may include a display panel (150) that outputs an image. The display panel (150) may generate a driving signal by converting an image signal, data signal, OSD signal, control signal processed by a control unit, or an image signal, data signal, control signal, etc. received from an interface unit. The display panel (150) may include a display panel having a plurality of pixels.

[0056] A plurality of pixels provided in the display panel may have RGB subpixels. Alternatively, a plurality of pixels provided in the display panel may have RGBW subpixels. The display panel (150) can convert an image signal, data signal, OSD signal, control signal, etc. processed by the control unit to generate a driving signal for a plurality of pixels.

[0057] The display panel (150) can be a PDP (Plasma Display Panel), LCD (Liquid Crystal Display), OLED (Organic Light Emitting Diode), flexible display, etc., and can also be a 3D display. The 3D display panel (150) can be classified into a glasses-free type and a glasses type.

[0058] Organic Light Emitting Diodes (OLEDs) emerged in earnest in the mid-2010s and are rapidly replacing LCDs in the small and medium-sized display market. OLEDs are displays created using the self-luminous phenomenon where fluorescent organic compounds emit light when an electric current flows through them; they have a faster image response speed compared to LCDs, resulting in almost no ghosting when displaying videos.

[0059] OLEDs use three types of phosphor organic compounds, such as red, green, and blue, which have self-emissive functions. Since they are light-emitting display products that utilize the phenomenon where electrons injected from the cathode and anode combine with positively charged particles within the organic material to emit light on their own, they do not require a backlight that degrades color quality.

[0060] OLEDs do not require a backlight unit, so their layered structure is relatively simple. Unlike liquid crystals, guide panels for aligning each layer are not required, so the case structure is also simple.

[0061] The display panel (150) can use an organic light-emitting diode to omit the backlight and can have a thin structure. The module cover (120) supporting the back of the display panel (150) can be made of a metal material to have sufficient rigidity to support the thin display panel (150). When made of a metal material, it has the advantage of excellent heat dissipation performance.

[0062] The display panel (150) includes a display area where a plurality of pixels are located and the color of each pixel changes and outputs an image, and a non-display area (bezel) located around the display area and where signal lines connecting signals are arranged.

[0063] The size of the non-display area may be 1 cm or less, and the size of the non-display area at the bottom where the flexible substrate (158) for connecting to the main board is placed may be larger than the other perimeter. Since no image is output in the non-display area, it may include a black coating layer to cover the signal line.

[0064] A bottom assembly (160) located at the bottom of the display device (100) may be further included. As the size of the bezel of the display device (100) decreases, there is a limit to positioning devices other than the display panel so that they face forward.

[0065] In particular, an infrared receiver that receives an infrared signal from a remote control incident from the front of a display device (100), or an illuminance sensor that measures the amount of light in front of a display panel, must receive light incident from the front.

[0066] In a conventional display device (100) with a sufficiently large bezel, an infrared receiver and an illuminance sensor are placed using a part of the bezel, but recently, an illuminance sensor and an infrared receiver can be placed at the bottom using a separate bracket.

[0067] However, if the bottom assembly (160) protruding from the bottom of the display device (100) has a large amount of protrusion, it becomes a factor that spoils the simple appearance of the display device (100), and there is a problem that the bottom assembly (160) is damaged during transportation or use.

[0068] Accordingly, the display device (100) of the present invention reduces the size of the bottom assembly (160) by omitting the substrate on which the infrared receiver and the light sensor are mounted from the bottom assembly (160) in order to minimize the size of the bottom assembly (160) protruding from the bottom.

[0069] FIG. 2 is a drawing showing a part of the lower portion of the main board (181) of the display device (100) of the present invention. As the lower portion of the main board (181) located adjacent to the bottom assembly (160), an infrared receiver (142), an illuminance sensor (143), an LED light source, and a power switch (195) may be arranged.

[0070] In the past, a display device (100) may include a plurality of boards divided by function, such as a power board for distributing power, a T-con board for controlling a display panel (150), and an optical board positioned facing forward, such as an infrared receiver (142) or an illuminance sensor (143), in addition to a main board (181).

[0071] The display device (100) of the present invention can reduce the number of substrates and simultaneously reduce the size of the bottom assembly (160) by omitting the optical substrate that was placed in the conventional bottom assembly (160) and placing the infrared receiver (142) and the illuminance sensor (143) on the main substrate (181) mounted on the back of the display device (100).

[0072] FIG. 3 is a perspective view illustrating a bottom assembly (160) of a display device (100) of the present invention, and FIG. 4 is an exploded perspective view illustrating a bottom assembly (160) of a display device (100) of the present invention.

[0073] The bottom assembly (160) of the present invention may include a light guide (162) made of a transparent material having an L-shape, a guide bracket (161) on which the light guide (162) is seated and which is coupled to a cover bottom (112), and an LED guide (164) that provides light from an LED light source forward.

[0074] The guide bracket (161) may include a first mounting portion (1611) on which the light guide (162) is mounted and a second mounting portion (1612) on which the LED guide (164) is mounted, and may be fastened to the cover bottom (112). The guide bracket (161) may include a power button (1615) having an actuator formed therein. The power button (1615) is located below the power switch (195) of FIG. 2, and the user can turn the power switch (195) ON / OFF when pressing the power button (1615).

[0075] The bottom assembly (160) may include a light guide (162) so that light can be supplied to an infrared receiver (142) and an illuminance sensor (143) located on the back. The light guide (162) is made of a transparent material that totally reflects light incident at an angle greater than a predetermined angle (critical angle) and can supply infrared signals and light from the front to the infrared receiver (142) and the illuminance sensor (143) located on the back.

[0076] As shown in FIG. 2, the lower part of the main board (181) on which the infrared receiver (142) and the light sensor (143) are mounted can be formed with a step (181b) that is concave upward so that a light guide (162) can be placed thereon.

[0077] FIG. 5 is a cross-sectional perspective view of a display device (100) of the present invention. The display device (100) of the present invention may include a display panel (150) located on the front, a cover bottom (112) located on the back of the display panel (150), a main board (181) seated on the back of the cover bottom (112), and a back cover (113, FIG. 6) that covers the main board (181) and is connected to the cover bottom (112).

[0078] It may include a frame-shaped case top (111) having an L-shaped cross-section that covers a non-display area located around the front perimeter of the display panel (150) and covers the side perimeter of the display panel (150).

[0079] It may include a flexible substrate (158) that is connected to the display panel (150) between the bottom of the display panel (150) and the case top (111) and extends to the back of the display panel (150). The end of the flexible substrate (158) is connected to a panel substrate that controls the display panel (150), and the panel substrate may be seated at the bottom of the cover bottom (112) on the back of the display panel (150). It may further include a panel substrate shield (159) that covers the back of the panel substrate.

[0080] The main board (181) mounted on the back of the cover bottom (112) is connected to the panel board to provide control information for each pixel of the display panel (150) to the panel board, and is connected to various sensors, a power supply unit, an antenna, etc., and is responsible for the overall control of the display device (100).

[0081] As described above, in the past, multiple substrates were arranged differently according to function and location, but since the assembly process and manufacturing costs increased, the infrared receiver (142) and the illuminance sensor (143) can be mounted on the main substrate (181) to reduce the number of substrates. The infrared receiver (142) and the illuminance sensor (143) can be arranged to face downward, and the end of the vertical guide (1624) of the light guide (162) can face the infrared receiver (142) and the illuminance sensor (143).

[0082] FIG. 6 is a cross-sectional view of a display device (100) of the present invention. The light guide (162) has an L-shaped cross-section and may be composed of a horizontal guide located at the bottom of the display device (100) and a vertical guide (1624) extending upward from the rear end of the horizontal guide (1622).

[0083] The front end of the horizontal guide (1622) includes a light-receiving surface (1621) into which light provided from an external light source (200) is incident. The external light source (200) may be an infrared signal emitted from a remote control that controls the display device (100), or it may be lighting in the space where the display device (100) is installed.

[0084] Light incident on the light entry surface (1621) is totally reflected at the horizontal guide (1622) and transmitted to the rear. The reflective surface (1623) located between the horizontal guide (1622) and the vertical guide (1624) reflects the light that travels along the horizontal guide (1622) to the vertical guide (1624), and the light is totally reflected at the vertical guide (1624) and emitted to the light exit surface (1625) located at the top of the vertical guide (1624).

[0085] The light-emitting surface (1625) of the vertical guide (1624) may be positioned facing downwards, facing an infrared receiver (142) and an illuminance sensor (143). The infrared receiver (142) can receive an infrared signal and recognize user input entered via a remote control. The illuminance sensor (143) can measure the amount of light incident through the light guide (162).

[0086] The light guide (162) may include guide hooks (1628) located on both sides of the light-emitting surface (1625) to fix the position on the main board (181). The main board (181) may include a pair of hook holes (181h) located on both sides of the infrared receiver (142) and the illuminance sensor (143).

[0087] The light guide (162) may further include a fastening projection (1629) extending in the rearward direction from the vertical guide (1624) to be fastened to the guide bracket (161), and the fastening projection (1629) is positioned corresponding to the position of the guide hook so as not to substantially affect the amount of light transmitted to the infrared receiver (142) and the illuminance sensor (143).

[0088] The light-inducing surface (1621) can be positioned at the rear end of the case top (111) rather than the front end, as the more it protrudes forward, the easier it is for light to be incident, but this affects the appearance of the display device (100) and poses a risk of damage.

[0089] When light incident from indoor lighting is incident at a 45° angle, the position of the light-input surface (1621) can be arranged so that a line extended at a 45° angle from the bottom corner of the case top (111) is located in the upper half of the light-input surface (1621).

[0090] The corners of the case top (111) can be formed with a chamfer (111a) to have a slope as shown in FIG. 5, and through the chamfer (111a), the position of the light receiving surface (1621) can be positioned further back from the front of the display device (100).

[0091] The reflective surface (1623) may have a 45° angle and reflects light passing through the horizontal guide (1622) to be supplied to the vertical guide (1624). Light emitted from the light-emitting surface (1625) located at the top of the vertical guide (1624) may be supplied to an infrared receiver (142) and an illuminance sensor (143). The infrared receiver (142) may be positioned at the horizontal center of the light-emitting surface (1625) of the light guide (162) so as to recognize signals incident from various angles.

[0092] FIG. 7 is a cross-sectional view illustrating the shape of light incident along the light guide (162) of the display device (100) of the present invention. Even if the light incident on the light entry surface (1621) of the light guide (162) is the same amount of light, the amount of light detected by the illuminance sensor (143) may vary depending on the angle of incidence, as shown in FIG. 7(a) and FIG. 7(b).

[0093] To satisfy the strengthened energy regulations of some countries such as Europe, the display device (100) can reduce energy consumption by measuring the ambient light level with an illuminance sensor (143) and lowering the brightness of the display device (100) when the illuminance is low.

[0094] FIG. 7(a) is a diagram illustrating the case where light is incident on the light receiving surface (1621) at an angle of incidence of 45°, and FIG. 7(b) is a diagram illustrating the case where light is incident at an angle of incidence of 10°. Depending on the angle of incidence of the external light, the angle of light emitted from the light output surface (1625) changes, and the measured amount of light changes. The smaller the angle of incidence, the greater the amount of light is detected, so an error may occur with the actual amount of light.

[0095] To prevent this, as illustrated in FIG. 5, the light guide (162) of the present invention may form a scattering pattern (1625a) in a first area where the illuminance sensor (143) is located. The scattering pattern (1625a) may be an etching pattern including fine irregularities formed on the light-emitting surface (1625), or it may be implemented by attaching a scattering film including fine irregularities attached to the light-emitting surface (1625).

[0096] A corrosion pattern can be implemented by forming micro-irregularities on the mold, and the corrosion level (fine corrosion or coarse corrosion) can be determined by examining the light intensity level and deviation.

[0097] As shown in Fig. 7 (c), light is scattered in the scattering pattern (1625a) so that the amount of light incident on the illuminance sensor (143) can be uniformly introduced regardless of the angle of emission which varies depending on the angle of incidence.

[0098] FIG. 8 is a table showing the amount of light according to the presence or absence of the scattering pattern (1625s) of the light-emitting part (1643). It is a table showing the amount of light measured by the illuminance sensor (143) of a plurality of display devices (100) at different positions from the light source in a space of the same illuminance.

[0099] If a scattering pattern (1625a) is not applied to the light-emitting surface (1625), the display device (100) at a specific location may detect an illuminance that is outside the error range because the angle of incidence of light incident on the illuminance sensor (143) is small.

[0100] When a scattering pattern (1625a) is positioned on a surface facing the illuminance sensor (143), the maximum and minimum values ​​are within a 10% range from the average value, so a relatively accurate amount of light can be measured. At this time, since the total amount of light incident on the illuminance sensor (143) can be reduced, the sensitivity of the illuminance sensor (143) can be increased to measure the illuminance accurately.

[0101] Since the infrared receiver (142) does not consider the magnitude of the light quantity to be important and instead needs to increase the intensity of the light with a large angle of incidence incident from the side, the scattering pattern (1625a) may be partially formed only in the first area corresponding to the illuminance sensor (143) among the light-emitting surfaces (1625) of the light guide (162), and the scattering pattern may not be formed in the other area (1625b).

[0102] As seen above, the display device (100) of the present invention has an excellent design effect and reduces damage accidents during transport or use of the product by omitting a structure protruding from the bottom.

[0103] In addition, the display device (100) of the present invention can sufficiently secure the reception rate of the infrared receiver (142) and the amount of light detected by the illuminance sensor (143).

[0104] In addition, the display device (100) of the present invention can reduce the number of boards by mounting an infrared receiver (142), an illuminance sensor (143), an LED lamp (144), a power button (1615), etc., on a main board (181).

[0105] In addition, the display device (100) of the present invention can simplify the assembly process by implementing an infrared receiver (142), an illuminance sensor (143), a light guide (162) structure for an LED lamp (144), and a power button (1615) as a single assembly.

[0106] In addition, the display device (100) of the present invention can reduce the deviation in the amount of light entering the illuminance sensor (143), thereby improving the accuracy of the illuminance sensor (143).

[0107] The foregoing detailed description should not be interpreted restrictively in all respects and should be considered exemplary. The scope of the invention shall be determined by a reasonable interpretation of the appended claims, and all modifications within the equivalent scope of the invention are included within the scope of the invention.

[0108] Regarding various embodiments for implementing the present invention, descriptions that are redundant with those described above in the previous section on the best mode for carrying out the invention are omitted.

[0109] Since the present invention is applicable to display devices (100) in various fields, industrial applicability is recognized.

Claims

1. Display panel; A main board mounted on the back of the above-mentioned display panel; An illuminance sensor mounted on the main board above and facing downward; and It includes a light guide that extends from the bottom of the display panel to the bottom of the illuminance sensor and includes a light-transmitting material, and The above light guide is A light-receiving surface located at the bottom of the above-mentioned display panel; and A display device comprising a light-emitting surface facing the above-mentioned illuminance sensor.

2. In Paragraph 1, A display device characterized by including a scattering pattern formed in a first region of the light-emitting surface.

3. In Paragraph 2, The above scattering pattern is A display device characterized by being formed by injection molding through mold corrosion or by attaching a scattering film.

4. In Paragraph 2, It includes an infrared receiver mounted on the main board adjacent to the above illuminance sensor, and A display device characterized in that the infrared receiver is located in a second region where the scattering pattern of the light-emitting surface of the light guide is not formed.

5. In Paragraph 4, A display device characterized in that the infrared receiver is located at the horizontal center of the light-emitting surface.

6. In Paragraph 1, The above light guide is A horizontal guide extending rearward from the above light entry surface and A display device characterized by including a vertical guide that extends vertically from the light-emitting surface and is connected to the horizontal guide.

7. In Paragraph 6, A display device characterized in that the corner of the connection portion between the horizontal guide and the vertical guide includes an inclined reflective surface.

8. In Paragraph 1, It includes a case top that covers the front perimeter and sides of the above-mentioned display panel, and A display device characterized in that the light receiving surface of the light guide is located at a rear position relative to the bottom of the case top.

9. In Paragraph 8, The 45° oblique extension line from the bottom corner of the top of the above case is A display device characterized by being located vertically above the light-receiving surface.

10. In Paragraph 8, A display device characterized in that the bottom corner of the case top includes a chamfer connecting the front and bottom surfaces.

11. In Paragraph 8, A display device characterized by further including a guide bracket for fixing the light guide to the case top.

12. In Paragraph 1, A display device characterized by including guide hooks that protrude from both sides of the light-emitting surface of the light guide and are inserted into the main substrate.