Display device
A display device with touch and pressure sensing adjusts sound pressure levels to maintain consistent audio quality across frequency ranges, addressing inconsistent sound pressure due to user interaction.
Patent Information
- Application Number
- JP2019062354
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-10-01
- Filing Date
- 2019-03-28
- Publication Date
- 2025-08-28
- Estimated Expiration
- 2039-03-28
AI Technical Summary
Display devices, such as smartphones, experience varying sound pressure levels based on user interaction, leading to inconsistent audio quality due to ear contact and pressure variations during calls.
Incorporating a touch sensing device and pressure sensing device to adjust sound pressure levels dynamically based on ear contact and pressure, using acoustic drivers to generate sound signals that maintain uniform sound pressure across frequency ranges.
Ensures consistent high-quality sound by adjusting sound pressure levels based on user interaction, maintaining uniformity in low, mid, and high frequency ranges regardless of ear contact and pressure.
Smart Images

Figure 0007730618000001 
Figure 0007730618000002 
Figure 0007730618000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a display device. [Background technology]
[0002] As the information society develops, the demand for display devices for displaying images is increasing in various ways. For example, display devices are applied to various electronic devices such as smartphones, digital cameras, laptops, navigation systems, and smart televisions. The display device includes a display panel for displaying images and an audio generating device for providing audio.
[0003] When the display device is realized as a smartphone, a user can make a call in a call mode by either touching the display device with their ear or without touching the display device. Furthermore, the pressure with which the user presses the display device with their ear in the call mode varies from user to user. However, the sound pressure level of the sound generated by the sound generating device varies depending on whether the user touches the display device with their ear in the call mode and the pressure with which the user presses the display device when the user touches the display device. Therefore, in order to provide a user with high-quality sound in the call mode, it is necessary to adjust the sound pressure level of the sound generated by the sound generating device depending on whether the user touches the display device with their ear and the pressure with which the user presses the display device when the user touches the display device. Summary of the Invention [Problem to be solved by the invention]
[0004] The problem that the present invention aims to solve is to provide a display device that can provide high-quality sound by maintaining a uniform sound pressure level in all low, mid, and high frequency ranges, regardless of whether the user's ear is in contact with the front surface of the display device or the pressure with which the user's ear presses against the front surface of the display device if in contact. The object of the present invention is not limited to the above-mentioned object, and other technical objects not mentioned above will be clearly understood by those skilled in the art from the following description. [Means for solving the problem]
[0005] According to one embodiment of the present invention, a display device includes a display panel for displaying images, a touch sensing device for sensing a touch by an object, an acoustic driver for generating and outputting a first acoustic drive signal and a second acoustic drive signal based on first acoustic data and second acoustic data, and a sound generator for generating sound based on the first acoustic drive signal and the second acoustic drive signal, wherein a sound pressure level of the sound is between a first sound pressure level and a second sound pressure level in a first frequency range when the touch sensing device does not sense a touch by the object and when the touch sensing device senses a touch by the object in a first mode and a second mode, respectively.
[0006] In the first mode and the second mode, the sound pressure level of the sound is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level in a second frequency range higher than the first frequency range. In the first mode and the second mode, the sound pressure level of the sound is between the first sound pressure level and the second sound pressure level in a third frequency range that is higher than the second frequency range. The sound pressure level of the sound is between 200 Hz and 5 kHz and is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level. The touch-sensing device is disposed on a first surface of the display panel, and the sound-generating device is disposed on a second surface of the display panel opposite the first surface. The device further includes a pressure sensing device that senses the pressure applied by the object, and in the second' mode, in a second mode where the pressure is equal to or less than the first pressure, and in a third mode where the pressure is greater than the first pressure and equal to or less than the second pressure, the sound pressure level of the sound is between the first sound pressure level and the second sound pressure level in the first frequency range. The touch sensing device is disposed on a first surface of the display panel, the sound generating device is disposed on a second surface opposite the first surface of the display panel, and the pressure sensing device is disposed on the second surface of the display panel except for the area where the sound generating device is disposed. In the second mode and the third mode, the sound pressure level of the sound is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level in a second frequency range higher than the first frequency range. In the second and third modes, the sound pressure level of the sound is between the first and second sound pressure levels in a third frequency range that is higher than the second frequency range. The sound pressure level of the sound is between 200 Hz and 5 kHz and is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level. In the case of a fourth mode in which the pressure is greater than the second pressure, the sound pressure level of the sound decreases in a frequency range of 2 kHz or higher. In the fourth mode, the sound pressure level of the sound is equal to or lower than a fourth sound pressure level that is lower than the third sound pressure level in a frequency range of 5 kHz or higher. In the second' mode, in a second mode where the contact area of the object sensed by the touch sensing device is equal to or smaller than a first area, and in a third mode where the contact area of the object is greater than the first area and equal to or smaller than a second area, the sound pressure level of the sound is between the first sound pressure level and the second sound pressure level in the first frequency range. In the second mode and the third mode, the sound pressure level of the sound is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level in a second frequency range higher than the first frequency range. In the second and third modes, the sound pressure level of the sound is between the first and second sound pressure levels in a third frequency range that is higher than the second frequency range. The sound pressure level of the sound is between 200 Hz and 5 kHz and is between a third sound pressure level higher than the first sound pressure level and the second sound pressure level. In the case of a fourth mode in which the contact area of the object is larger than the second area, the sound pressure level of the sound decreases in a frequency range of 2 kHz or higher. In the fourth mode, the sound pressure level of the sound is equal to or lower than a fourth sound pressure level that is lower than the third sound pressure level in a frequency range of 5 kHz or higher. The audio signal processing device further includes a digital signal processing unit that modulates the first acoustic data and the second acoustic data into the first frequency region, a second frequency region higher than the first frequency region, and a third frequency region higher than the second frequency region. The acoustic driving unit includes a digital-to-analog conversion unit that converts the first acoustic data and the second acoustic data modulated by the digital signal processing unit into a first drive voltage and a second drive voltage, which are analog signals, and an amplification unit that amplifies and outputs the first drive voltage and the second drive voltage. Specific details of other embodiments are included in the detailed description and drawings. [Effects of the Invention]
[0007] According to an embodiment of the display device, a touch sensing device senses whether a user's ear touches the front surface of the display device, and a pressure sensing device senses the pressure of the user's ear pressing against the front surface of the display device. Therefore, the first sound data and the second sound data can be modulated in consideration of the presence or absence of the user's ear touching the front surface of the display device and the pressure of the contact, thereby increasing or decreasing the sound pressure level for each frequency range. Therefore, regardless of whether the user's ear touches the front surface of the display device or the pressure of the user's ear pressing against the front surface of the display device, the sound pressure level of the sound can be maintained uniformly in the low-frequency range, the mid-frequency range, and the high-frequency range, thereby providing high-quality sound.
[0008] In addition, according to another embodiment of the display device, the pressure of the user's ear pressing against the front surface of the display device can be determined by determining the contact area of the user's ear, which is detected using a touch sensing device instead of a pressure sensing device, thereby eliminating the need for a pressure sensing device for sensing pressure from the front surface of the display device. The effects of the embodiments are not limited to the above-mentioned examples, and various other effects are included in this specification. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a perspective view illustrating a display device according to an embodiment. [Figure 2] 1 is an exploded perspective view of a display device according to an embodiment; [Figure 3] 3 is a rear view showing a panel lower member, a first sound generating device, an acoustic circuit board, a display circuit board, and a touch circuit board in the display device of FIG. 2.
[0023] FIG. [Figure 4] FIG. 4 is a cross-sectional view showing an example of II' in FIG. [Figure 5] 5 is a cross-sectional view showing in detail the display area of the display panel 300 of FIG. 4. FIG. [Figure 6] FIG. 5 is an enlarged cross-sectional view of region A in FIG. [Figure 7] FIG. 4 is a plan view showing the first sound-generating device of FIG. 3. [Figure 8] FIG. 8 is a cross-sectional view showing an example of II-II' in FIG. [Figure 9] 4 is an exemplary diagram illustrating vibration of the first sound generating device. FIG. [Figure 10] 1 is a graph showing sound pressure levels according to the frequency of sound provided to a user's ear when there is no contact between the user's ear and the display device, when there is contact without pressure, when there is contact with a first pressure, and when there is contact with a second pressure. [Figure 11] 1A is an exemplary diagram showing a case where the display device is in contact with the user's ear, and FIG. 1B is an exemplary diagram showing a case where the display device is not in contact with the user's ear. [Figure 12] 2 is a block diagram illustrating a main processor, a sound driver, a first sound generating device, a touch driver, a touch sensing device, a pressure driver, and a pressure sensing device of a display device according to an embodiment. [Figure 13] FIG. 13 is a block diagram showing an example of a main processor and an acoustic driver of FIG. 12. [Figure 14]1 is a flowchart illustrating a method for driving a display device according to an embodiment. [Figure 15] 10A is a graph and FIG. 10B is a table showing the sound pressure level depending on the frequency of the sound output from the first sound-generating device in the first mode and the increase or decrease in the drive voltage applied to the first sound-generating device. [Figure 16] 10A is a graph and FIG. 10B is a table showing the sound pressure level depending on the frequency of the sound output from the first sound generator in the second mode and the increase or decrease in the drive voltage applied to the first sound generator. [Figure 17] 10A is a graph and FIG. 10B is a table showing the sound pressure level depending on the frequency of the sound output from the first sound generator in the third mode and the increase or decrease in the drive voltage applied to the first sound generator. [Figure 18] 10 is a diagram illustrating an example of the directionality of sound generated from the first sound generating device when the front surface of the display device is not in contact with an object. FIG. [Figure 19] 10 is a diagram illustrating an example of the directionality of sound generated by the first sound generating device when the front surface of the display device comes into contact with an object. FIG. [Figure 20] 10 is a graph showing sound pressure levels versus frequencies of sounds generated by the first sound-generating device in a fourth mode. [Figure 21] 10 is a flowchart illustrating a method for driving a display device according to another embodiment. [Figure 22] 10(a) and 10(b) are two exemplary diagrams showing the contact area of a user's ear when in contact with a display device. DETAILED DESCRIPTION OF THE INVENTION
[0010] The advantages, features, and methods for achieving the same of the present invention will become clearer with reference to the following detailed description of the embodiments in conjunction with the accompanying drawings. However, the present invention is not limited to the embodiments disclosed below, and may be realized in various different forms. However, the present embodiments are provided solely to complete the disclosure of the present invention and to fully convey the scope of the invention to those skilled in the art. The present invention is defined solely by the scope of the claims.
[0011] When an element or layer is described as being "on" another element or layer, this includes cases where it is directly on the other element or layer, or where another layer or element is interposed between them. The same reference numerals refer to the same components throughout the specification. The shapes, sizes, ratios, angles, numbers, etc. disclosed in the drawings for explaining the embodiments are merely examples, and the present invention is not limited to the details shown.
[0012] Although terms such as "first" and "second" are used to describe various components, it is understood that these components are not limited by these terms. These terms are used merely to distinguish one component from another. Therefore, a first component referred to below may be a second component within the technical concept of the present invention.
[0013] The features of the various embodiments of the present invention may be partially or fully combined or combined with each other, and may be technically interlocked and driven in various ways, and each embodiment may be implemented independently of each other or together in a linked relationship. Specific embodiments will be described below with reference to the accompanying drawings.
[0014] Fig. 1 is a perspective view showing a display device according to an embodiment, and Fig. 2 is an exploded perspective view of the display device according to an embodiment. 1 and 2 illustrate an example in which the display device according to an embodiment is a mobile terminal. Mobile terminals may include smartphones, tablet PCs, PDAs (Personal Digital Assistants), PMPs (Portable Multimedia Players), game consoles, wristwatch-type electronic devices, etc. However, the display device according to an embodiment is not limited to mobile terminals and can be used in large electronic devices such as televisions and outdoor billboards, as well as small and medium-sized electronic devices such as monitors, laptops, car navigation systems, and cameras.
[0015] Referring to Figures 1 and 2, a display device 10 according to one embodiment includes a cover window 100, a touch sensing device 200, a touch circuit board 210, a display panel 300, a display circuit board 310, a panel lower member 400, a first sound generating device 500, an acoustic circuit board 600, a pressure sensing device 250, a lower bracket 800, a main circuit board 910, and a lower cover 900.
[0016] In this specification, the terms "upper", "top", and "upper surface" refer to the direction in which the cover window 100 is arranged based on the display panel 300, i.e., the third direction (Z-axis direction), and the terms "lower", "lower", "bottom", and "lower surface" refer to the direction in which the panel lower member 400 is arranged based on the display panel 300, i.e., the opposite direction to the Z-axis direction.
[0017] The display device 10 may have a rectangular shape in a plan view. For example, the plan view shape of the display device 100 may be a rectangle having a short side in a first direction (X-axis direction) and a long side in a second direction (Y-axis direction), as shown in FIG. 1. The corner where the short side in the first direction (X-axis direction) and the long side in the second direction (Y-axis direction) intersect may be rounded to have a predetermined curvature, or may be a right angle, as shown in FIG. 1. The plan view shape of the display device 10 is not limited to a rectangle, and may be another polygonal, circular, or elliptical shape.
[0018] The cover window 100 may be disposed above the display panel 300 to cover the upper surface of the display panel 300. In this way, the cover window 100 may function to protect the upper surface of the display panel 300. The cover window 100 may be attached to the touch sensing device 200 via an adhesive layer 110, as shown in FIG. 4 . The adhesive layer 110 may be an optically cleared adhesive film (OCA) or an optically cleared resin (OCR).
[0019] The cover window 100 may include a transmissive portion (DA100) corresponding to the display area DA of the display panel 300, and a light-shielding portion (NDA100) corresponding to the non-display area NDA of the display panel 300. The light-shielding portion (NDA100) of the cover window 100 may be formed to be opaque. Alternatively, the light-shielding portion (NDA100) of the cover window 100 may be formed of a decorative layer having a pattern formed thereon that can be seen by the user when no image is displayed. For example, the light-shielding portion NDA100 of the cover window 100 may be patterned with a company logo such as "SAMSUNG" or various characters.
[0020] The cover window 100 can be made of glass, sapphire, and / or plastic. The cover window 100 can be made rigid or flexible.
[0021] A touch sensing device 200 may be disposed between the cover window 100 and the display panel 300. The touch sensing device 200 is a device for sensing a user's touch position, and may be implemented using a capacitance method such as a self-capacitance method or a mutual capacitance method, or may be implemented using an infrared method.
[0022] The touch sensing device 200 may be formed in a panel shape or a film shape. In this case, the touch sensing device 200 may be formed integrally with the display panel 300. For example, when the touch sensing device 200 is formed in a film shape, it may be formed integrally with a barrier film for sealing the display panel 300.
[0023] A touch circuit board 210 may be attached to one side of the touch sensing device 200. Specifically, the touch circuit board 210 may be attached to a pad provided on one side of the touch sensing device 200 using an anisotropic conductive film. Also, as shown in FIG. 2, the touch circuit board 210 may be provided with a touch connection unit 230. The touch connection unit 230 may be connected to a first connector 330 of the display circuit board 310. The touch circuit board 210 may be a flexible printed circuit board or a chip on film.
[0024] The touch driver 220 applies a touch driving signal to the touch sensing device 200, senses a sensing signal from the touch sensing device 200, and analyzes the sensing signal to calculate a user's touch position. The touch driver 220 may be formed as an integrated circuit and mounted on the touch circuit board 210.
[0025] The display panel 300 may include a display area DA and a non-display area DNA. The display area DA is an area where an image is displayed, and the non-display area NDA is an area where an image is not displayed and may be a peripheral area of the display area NDA. The non-display area NDA may be arranged to surround the display area DA as shown in FIGS. 1 and 2, but is not limited to this. The display area DA may be arranged to overlap the transmissive portion 100DA of the cover window 100, and the non-display area NDA may be arranged to overlap the light-shielding portion 100NDA of the cover window 100.
[0026] The display panel 300 may be a light-emitting display panel including light-emitting elements. For example, the display panel 300 may be an organic light-emitting display panel using organic light-emitting diodes, a micro-LED display panel using micro-LEDs, or a quantum dot light-emitting display panel including quantum dot light-emitting diodes. The following description will be focused on the case where the display panel 300 is an organic light-emitting display panel as shown in FIG. 5.
[0027] Referring to FIG. 5, a display area DA of the display panel 300 is an area where the light emitting element layer 304 is formed and an image is displayed, and a non-display area NDA is an area surrounding the display area DA.
[0028] The display panel 300 may include a support substrate 301 , a flexible substrate 302 , a thin film transistor layer 303 , a light emitting element layer 304 , an encapsulating layer 305 , and a barrier film 306 .
[0029] Flexible substrate 302 is disposed on support substrate 301. Support substrate 301 and flexible substrate 302 may each include a flexible polymer material. For example, support substrate 301 and flexible substrate 302 may each be made of polyethersulfone (PES), polyacrylate (PA), polyarylate (PAR), polyetherimide (PEI), polyethylene naphthalate (PEN), polyethylene terephthalate (PET), polyphenylene sulfide (PPS), polyallylate, polyimide (PI), polycarbonate (PC), cellulose triacetate (CAT), cellulose acetate propionate (CAP), or a combination thereof.
[0030] A thin film transistor 303 is formed on the flexible substrate 302. The thin film transistor layer 303 includes a thin film transistor 335, a gate insulating film 336, an interlayer insulating film 337, a protective film 338, and a planarizing film 339.
[0031] A buffer layer may be formed on the flexible substrate 302. The buffer layer (not shown) may be formed on the flexible substrate 302 to protect the thin film transistor 335 and the light emitting element from moisture that may penetrate through the support substrate 301 and the flexible substrate 302, which are vulnerable to moisture permeability. The buffer layer may be made of a plurality of inorganic layers alternately stacked. For example, the buffer layer may be formed of a multilayer structure in which at least one inorganic layer selected from the group consisting of silicon dioxide (SiOx), silicon nitride (SiNx), and silicon oxynitride (SiON) is alternately stacked. The buffer layer may be omitted.
[0032] A thin film transistor 335 is formed on the buffer film. The thin film transistor 335 includes an active layer 331, a gate electrode 332, a source electrode 333, and a drain electrode 334. Although FIG. 5 illustrates the thin film transistor 335 formed in a top gate manner in which the gate electrode 332 is located above the active layer 331, it should be noted that the thin film transistor 335 is not limited to this. That is, the thin film transistor 335 may be formed in a bottom gate manner in which the gate electrode 332 is located below the active layer 331, or in a double gate manner in which the gate electrode 332 is located both above and below the active layer 331.
[0033] An active layer 331 is formed on the buffer layer. The active layer 331 may be formed of a silicon-based semiconductor material or an oxide-based semiconductor material. A light-shielding layer (not shown) may be formed between the buffer layer and the active layer 331 to block external light from entering the active layer 331.
[0034] A gate insulating film 336 may be formed on the active layer 331. The gate insulating film 336 may be formed of an inorganic film, such as a silicon oxide film (SiOx), a silicon nitride film (SiNx), or a multi-layer thereof.
[0035] A gate electrode 332 and a gate line may be formed on the gate insulating film 336. The gate electrode 332 and the gate line may be formed of a single layer or multiple layers made of any one of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0036] An interlayer insulating film 337 may be formed on the gate electrode 332 and the gate line 333. The interlayer insulating film 337 may be formed of an inorganic film, such as a silicon oxide film (SiOx), a silicon nitride film (SiNx), or a multi-layer thereof.
[0037] A source electrode 333, a drain electrode 334, and a data line may be formed on the interlayer insulating film 337. The source electrode 333 and the drain electrode 334 may be connected to the active layer 331 via a contact hole that penetrates the gate insulating film 336 and the interlayer insulating film 337. The source electrode 333, the drain electrode 334, and the data line may be formed of a single layer or multiple layers made of any one of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0038] A passivation layer 338 for insulating the thin film transistor 335 may be formed on the source electrode 333, the drain electrode 334, and the data line. The passivation layer 338 may be formed of an inorganic layer, such as a silicon oxide layer (SiOx), a silicon nitride layer (SiNx), or a multilayer thereof.
[0039] A planarizing film 339 for flattening steps caused by the thin film transistor 335 can be formed on the protective film 338. The planarizing film 339 can be formed of an organic film such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.
[0040] The light emitting element layer 304 is formed on the thin film transistor layer 303. The light emitting element layer 304 includes a light emitting element and a pixel defining layer 344. The light emitting element and pixel defining layer 344 are formed on the planarization layer 339. The light emitting element may be an organic light emitting device. In this case, the light emitting element may include an anode electrode 341, a light emitting layer 342, and a cathode electrode 343.
[0041] The anode electrode 341 can be formed on the planarization film 339. The anode electrode 341 can be connected to the source electrode 333 of the thin film transistor 335 via a contact hole that penetrates the protective film 338 and the planarization film 339.
[0042] The pixel defining layer 344 may be formed on the planarizing layer 339 to cover the edge of the anode electrode 341 to define pixels. That is, the pixel defining layer 344 serves as a pixel defining layer that defines pixels. Each pixel is an area where an anode electrode 341, a light emitting layer 342, and a cathode electrode 343 are sequentially stacked, and where holes from the anode electrode 341 and electrons from the cathode electrode 343 are combined in the light emitting layer 342 to emit light.
[0043] An emitting layer 342 is formed on the anode electrode 341 and the pixel defining film 344. The emitting layer 342 may be an organic emitting layer. The emitting layer 342 may emit any of red, green, and blue light. The peak wavelength range of the red light may be approximately 620 nm to 750 nm, and the peak wavelength range of the green light may be approximately 495 nm to 570 nm. The peak wavelength range of the blue light may be approximately 450 nm to 495 nm. Alternatively, the emitting layer 342 may be a white emitting layer that emits white light. In this case, the red, green, and blue emitting layers may be stacked and may be a common layer formed in common to the pixels. In this case, the display panel 300 may further include separate color filters for displaying red, green, and blue colors.
[0044] The light-emitting layer 342 may include a hole transporting layer, a light-emitting layer, and an electron transporting layer. The light-emitting layer 342 may also be formed in a tandem structure of two or more stacks. In this case, a charge generation layer may be formed between the stacks.
[0045] The cathode electrode 343 is formed on the light-emitting layer 342. The second electrode 343 may be formed to cover the light-emitting layer 342. The second electrode 343 may be a common layer formed in common to all pixels.
[0046] When the light emitting device layer 304 is formed as a top emission type, in which light is emitted upward, the anode electrode 341 can be formed of a highly reflective metal material such as an aluminum / titanium stacked structure (Ti / Al / Ti), an aluminum / ITO stacked structure (ITO / Al / ITO), an APC alloy, or an APC alloy / ITO stacked structure (ITO / APC / ITO). The APC alloy is an alloy of silver (Ag), palladium (Pd), and copper (Cu). The cathode electrode 263 can be formed of a transparent metal material (TCO, Transparent Conductive Material) such as ITO or IZO, or a semi-transmissive metal material such as magnesium (Mg), silver (Ag), or an alloy of magnesium (Mg) and silver (Ag). When the cathode electrode 343 is formed of a semi-transmissive metal material, light output efficiency can be increased due to micro-cavity.
[0047] When the light emitting device layer 304 is formed as a bottom emission type, in which light is emitted downward, the anode electrode 341 may be formed of a transparent metal material (TCO, Transparent Conductive Material) such as ITO or IZO, or a semi-transmissive metal material such as magnesium (Mg), silver (Ag), or an alloy of magnesium (Mg) and silver (Ag). The second electrode 343 may be formed of a metal material with high reflectivity, such as a laminated structure of aluminum and titanium (Ti / Al / Ti), a laminated structure of aluminum and ITO (ITO / Al / ITO), an APC alloy, or a laminated structure of APC alloy and ITO (ITO / APC / ITO). When the anode electrode 341 is formed of a semi-transparent metal material, light output efficiency can be increased due to microcavities. An encapsulation layer 305 is formed on the light-emitting element layer 304. The encapsulation layer 305 prevents oxygen or moisture from penetrating into the light-emitting layer 342 and the cathode electrode 343. To this end, the encapsulation layer 305 may include at least one inorganic film. The inorganic film may be formed of silicon nitride, aluminum nitride, zirconium nitride, titanium nitride, hafnium nitride, tantalum nitride, silicon oxide, aluminum oxide, or titanium oxide. The encapsulation layer 305 may further include at least one organic film. The organic film may be formed to a sufficient thickness to prevent particles from penetrating the encapsulation layer 305 and entering the light-emitting layer 342 and the cathode electrode 343. The organic film may include epoxy, acrylate, or urethane acrylate.
[0048] A barrier film 306 is disposed on the encapsulation layer 305. The barrier film 306 is disposed to cover the encapsulation layer 305 to protect the light emitting element layer 304 from oxygen or moisture. The barrier film 306 may be integrally formed with the touch sensing device 200.
[0049] A polarizing film may be further attached to the upper surface of the display panel 300 to prevent a decrease in visibility due to reflection of external light. A display circuit board 310 may be attached to one side of the display panel 300. Specifically, the display circuit board 310 may be attached onto a pad provided on one side of the display panel 300 using an anisotropic conductive film.
[0050] 4, the touch circuit board 210 and the display circuit board 310 can be bent downward from above the display panel 300. In contrast, the acoustic circuit board 600 cannot be bent because it is disposed below the panel lower member 400. The display circuit board 310 can be connected to the touch connection portion 230 of the touch circuit board 210 via a first connector 330. The display circuit board 310 can be connected to the acoustic connection portion 620 of the acoustic circuit board 600 via a second connector 340. Although not shown, the display circuit board 310 can be connected to the main circuit board 910 via the third connector 350 (see FIG. 3). Although FIG. 2 illustrates the display circuit board 310 including the first to third connectors 330, 340, and 350, this is not limiting. For example, the display circuit board 310 may include corresponding pads instead of the first and second connectors 330 and 340. In this case, the display circuit board 310 can be connected to the touch circuit board 210 and the acoustic circuit board 600 using an anisotropic conductive film.
[0051] The display driver 320 outputs signals and voltages for driving the display panel 300 through the display circuit board 310. The display driver 320 may be formed as an integrated circuit and mounted on the display circuit board 310, but is not limited to this. For example, the display driver 320 may be attached to one side of the display panel 300.
[0052] The panel lower member 400 may be disposed on the lower surface of the display panel 300. The panel lower member 400 may include at least one of a heat dissipation layer for efficiently dissipating heat from the display panel 300, an electromagnetic wave shielding layer for shielding electromagnetic waves, a light blocking layer for blocking light incident from the outside, a light absorbing layer for absorbing light incident from the outside, and a buffer layer for absorbing external impacts.
[0053] Specifically, as shown in FIG. 6, the panel lower member 400 may include a light absorbing member 410, a buffer member 420, a heat dissipation member 430, and first to third adhesive layers 441, 442, and 443.
[0054] The light-absorbing member 410 may be disposed below the display panel 300. The light-absorbing member 410 blocks light transmission to prevent the component disposed below the light-absorbing member 410, i.e., the first sound-generating device 500, from being viewed from above the display panel 300. The light-absorbing member 410 may include a light-absorbing material such as a black pigment or dye.
[0055] The buffer member 420 may be disposed below the light-absorbing member 410. The buffer member 420 absorbs external impacts to prevent damage to the display panel 300. The buffer member 420 may be composed of a single layer or multiple layers. For example, the buffer member 420 may be made of a polymer resin such as polyurethane, polycarbonate, polypropylene, or polyethylene, or may be made of an elastic material such as a sponge foamed from rubber, a urethane-based material, or an acrylic-based material. The buffer member 420 may be a cushion layer.
[0056] 7, the heat dissipation member 430 may include a first heat dissipation layer 431 including graphite or carbon nanotubes, a second heat dissipation layer 432 formed of a thin metal film such as copper, nickel, ferrite, or silver that is capable of shielding electromagnetic waves and has excellent thermal conductivity, and a fourth adhesive layer 433 for bonding the first heat dissipation layer 431 and the second heat dissipation layer 432 together.
[0057] The first adhesive layer 441 attaches the light absorbing member 410 to the lower surface of the display panel 300. The second adhesive layer 442 attaches the buffer member 420 to the lower surface of the light absorbing member 410. The third adhesive layer 443 attaches the heat dissipation member 430 to the lower surface of the buffer member 420. Each of the first to third adhesive layers 441, 442, and 443 may contain a polymeric material classified into silicone-based, urethane-based, silicone-urethane hybrid SU polymer, acrylic-based, isocyanate-based, polyvinyl alcohol-based, gelatin-based, vinyl-based, latex-based, polyester-based, water-based polyester-based, etc.
[0058] The first sound-generating device 500 can be disposed on the lower surface of the panel lower member 400. If the first sound-generating device 500 is disposed on the heat-dissipating member 430 of the panel lower member 400, the first heat-dissipating layer 431 or the second heat-dissipating layer 432 of the heat-dissipating member 430 may be damaged by vibration of the first sound-generating device 500. Therefore, the heat-dissipating member 430 can be removed from the area where the first sound-generating device 500 is to be disposed, and the first sound-generating device 500 can be disposed on the buffer member 420.
[0059] The first sound-generating device 500 can output the first sound by generating vibrations in response to a first acoustic signal. Therefore, the first sound-generating device 500 can vibrate by the vibration layer 530, which deforms in response to the first acoustic signal. Alternatively, the first sound-generating device 500 can vibrate by electromagnetic force generated by passing a current corresponding to the first acoustic signal through a coil surrounding a magnet. The following description focuses on the case where the first sound-generating device 500 generates sound by vibrating the vibration layer 530.
[0060] As shown in FIGS. 7 and 8, the first sound-generating device 500 may include a first electrode 510, a second electrode 520, a vibration layer 530, a substrate 540, a first pad 550, and a second pad 560.
[0061] The first electrode 510 may be disposed on a first surface of the substrate 540, the vibration layer 530 may be disposed on the first electrode 510, and the second electrode 520 may be disposed on the vibration layer 530. The first pad 550 and the second pad 560 may be disposed on a second surface of the substrate 540.
[0062] The first electrode 510 and the second electrode 520 may be formed of a conductive material, such as a transparent conductive material such as indium tin oxide (ITO) or indium zinc oxide (IZO), an opaque metal material, a conductive polymer, or a carbon nanotube (CNT).
[0063] The first electrode 510 may be connected to the first pad 550 through a first contact hole CH1 that penetrates the substrate 540. As a result, the first electrode 510 may receive a first driving voltage from the acoustic driver 610 of the acoustic circuit board 600 through the first pad 550.
[0064] The second electrode 520 may be connected to the second pad 560 via a second contact hole CH2 that penetrates the vibration layer 530 and the substrate 540. As a result, the second electrode 520 may receive a second driving voltage from the acoustic driver 610 of the acoustic circuit board 600 via the second pad 560.
[0065] 9 according to the difference between the voltage applied to the first electrode 510 and the voltage applied to the second electrode 520. In this case, the vibration layer 530 may be at least one of a piezoelectric material such as a PVDF (Polyvinylidene Fluoride) film or PZT (Lead Zirconate Titanate), and an electroactive polymer.
[0066] In this case, the vibration layer 530 contracts along a first force F1 or relaxes, i.e., expands along a second force F2, depending on the difference between the first driving voltage applied to the first electrode 510 and the second driving voltage applied to the second electrode 520. Specifically, as shown in Fig. 9, if the vibration layer 530 adjacent to the first electrode 510 has a positive polarity characteristic and the vibration layer 530 adjacent to the second electrode 520 has a negative polarity characteristic, when a first driving voltage of positive polarity is applied to the first electrode 510 and a second driving voltage of negative polarity is applied to the second electrode 520, the vibration layer 530 can contract along the first force F1. In addition, if the vibrating layer 530 adjacent to the first electrode 510 has a positive polarity characteristic and the vibrating layer 530 adjacent to the second electrode 520 has a negative polarity characteristic, when a first driving voltage of negative polarity is applied to the first electrode 510 and a second driving voltage of positive polarity is applied to the second electrode 520, the vibrating layer 530 can expand along the second force F2. When the first driving voltage applied to the first electrode 510 and the second driving voltage applied to the second electrode 520 alternate between positive and negative polarities, the vibrating layer 530 repeatedly contracts and relaxes. This causes the first sound-generating device 500 to vibrate, which causes the display panel 300 to vibrate in the vertical direction, thereby outputting the first sound.
[0067] Furthermore, the first sound generating device 500 vibrates the display panel 300 to output the first sound, so the display panel 300 functions as a diaphragm. The larger the diaphragm, the stronger the sound pressure of the sound output from the diaphragm. The size of the diaphragm of the speaker applied to the display device is small compared to the area of the display panel 300, so the sound pressure intensity of the sound can be greater than when the display panel 300 is used as a diaphragm or when a speaker is used.
[0068] Furthermore, since the first sound generating device 500 can vibrate the display panel 300 to output the first sound, the display device 10 can output sound using a sound generating device that is not exposed to the outside. This allows the sound generating device disposed in front of the display device 10 to be removed, which can increase the transmissive portion (DA100) of the window 100. In other words, the display area of the display device 10 can be increased. The substrate 540 may be made of an insulating material, for example, plastic.
[0069] The first pad 550 and the second pad 560 can be connected to the acoustic circuit board 600. The first pad 550 and the second pad 560 can be made of a conductive material. The first sound-generating device 500 can be connected to an acoustic circuit board 600. Specifically, the acoustic circuit board 600 can be attached onto the first and second pads 550, 560 of the first sound-generating device 500 using an anisotropic conductive film. The acoustic circuit board 600 also has an acoustic connection part 620, as shown in FIG. 2, which can be connected to the second connector 340 of the display circuit board 310. The acoustic circuit board 600 can be a flexible printed circuit board or a chip-on-film.
[0070] The acoustic driver 610 may be formed as an integrated circuit and mounted on the acoustic circuit board 600. The acoustic driver 610 may generate a first acoustic signal in response to first acoustic data provided from the main processor 920 of the main circuit board 910. In this case, the first acoustic data from the main processor 920 may be provided to the acoustic driver 610 via the main circuit board 910, the display circuit board 310, and the acoustic circuit board 600, and the first acoustic signal from the acoustic driver 610 may be transmitted to the first sound-generating device 500 via the acoustic circuit board 600.
[0071] The acoustic driver 610 may include a digital signal processor (DSP) that processes the first acoustic data, which is a digital signal, a digital-to-analog converter (DAC) that converts the first acoustic data, which is a digital signal processed by the digital signal processor, into the first acoustic signal, which is an analog signal, and an amplifier (AMP) that amplifies and outputs the first acoustic signal, which is an analog signal converted by the digital-to-analog converter.
[0072] In one embodiment of the display device, the first sound generating device 500 is attached to a panel lower member 400 arranged below the display panel 300, connected to an acoustic circuit board 600 equipped with an acoustic driver 610, and connected to the display circuit board 310, thereby modularizing the first sound generating device 500 and the acoustic circuit board 600 integrally with the display panel 300.
[0073] 3, the pressure sensing device 250 may be attached to the lower panel member 400. The pressure sensing device 250 may include a pressure sensor capable of sensing pressure applied by a user. The pressure sensing device may be implemented using a capacitance type or a resistive film type.
[0074] The pressure sensing device 250 may be formed in a panel or film shape, or may be integrally formed with the touch sensing device 200. To prevent interference with the first sound-generating device 500, the pressure sensing device 250 may be removed from the area where the first sound-generating device 500 is disposed, as shown in FIGS.
[0075] A pressure sensing circuit board 260 may be attached to one side of the pressure sensing device 250. The pressure sensing circuit board 260 may be attached to a pad provided on one side of the pressure sensing device 250 using an anisotropic conductive film. The pressure sensing circuit board 260 may also be provided with a pressure sensing connection part 280 as shown in FIG. 3, and the pressure sensing connection part 280 may be connected to the connector 240 of the touch circuit board 210. Alternatively, the pressure sensing connection part 280 may be attached to a pad of the touch circuit board 210 using an anisotropic conductive film instead of the connector 240. Alternatively, the pressure sensing connection part 280 may be connected to the display circuit board 310 instead of the touch circuit board 210. The pressure sensing circuit board 260 may be a flexible printed circuit board or a chip-on-film.
[0076] The pressure sensing unit 270 applies a pressure driving signal PS to the pressure sensing device 250 and receives a pressure sensing signal PDS from the pressure sensing device 250. The pressure sensing unit 270 analyzes the pressure sensing signal PDS to calculate the degree of pressure applied by the user to the front surface of the display device 10, i.e., pressure information. The pressure sensing unit 270 may be formed as an integrated circuit and mounted on the pressure sensing circuit board 260. Alternatively, the pressure sensing unit 270 may be integrated into the touch driver 220. In this case, the pressure sensing unit 270 mounted on the pressure sensing circuit board 260 may be omitted.
[0077] A lower bracket 800 may be disposed below the panel lower member 400 and the acoustic circuit board 600. The lower bracket 800 may be disposed to surround the cover window 100, the touch sensing device 200, the display panel 300, the panel lower member 400, the first sound-generating device 500, the touch circuit board 210, the display circuit board 310, and the acoustic circuit board 600. The lower bracket 800 may be formed from synthetic resin, metal, or both synthetic resin and metal.
[0078] Depending on the embodiment of the display device 10, the side of the lower bracket 800 may be exposed to the side of the display device 10, or the lower bracket 800 may be omitted and only the lower cover 900 may be present.
[0079] 2, a main circuit board 910 may be disposed below the lower bracket 800. The main circuit board 910 may be connected to the third connector 350 of the display circuit board 310 via a cable connected to the main connector 990. This allows the main circuit board 910 to be connected to the display circuit board 310, the touch circuit board 210, and the acoustic circuit board 600. The main circuit board 910 may be a printed circuit board or a flexible printed circuit board.
[0080] 2, the main circuit board 910 may include a main processor 920, a second sound generating device 930, a charging terminal 950, and a camera device 960. Although Fig. 2 illustrates an example in which the main processor 920, the second sound generating device 930, the charging terminal 950, and the camera device 960 are mounted on one side of the main circuit board 910 facing the lower bracket 800, this is not limiting. In other words, the main processor 920, the second sound generating device 930, the charging terminal 950, and the camera device 960 may be mounted on the other side of the main circuit board 910 facing the lower cover 900.
[0081] The main processor 920 can control all functions of the display device 10. For example, the main processor 920 can output video data to the display driver 320 of the display circuit board 310 so that the display panel 300 displays an image. The main processor 920 can also output first audio data to the audio driver 610 of the audio circuit board 600 via the display circuit board 310 so that the first audio generator 500 outputs audio. The main processor 920 can also output a second audio signal to the second audio generator 930 so that the second audio generator 930 outputs audio. The first audio data can be digital data, and the second audio signal can be an analog signal. The main processor 920 can also control the operation of the camera device 960. The main processor 920 can be an application processor, a central processing unit, or a system chip formed by an integrated circuit.
[0082] The second sound generating device 930 may be a speaker. Specifically, the second sound generating device 930 may directly receive a second sound signal from the main processor 920 or may receive an amplified second sound signal from a second sound generating device amplifier. The second sound generating device 930 may output a second sound based on the second sound signal.
[0083] The second sound-generating device 930 may be disposed on one side of the main circuit board 910. For example, as shown in FIG. 2, the second sound-generating device 930 may be disposed on the lower side of the main circuit board 910 and may provide a second sound to the lower side of the display device 10 through first and second speaker holes SH1 and SH2 disposed on the lower side of the lower cover 900. While FIGS. 1 and 2 illustrate an example in which the second sound-generating device 930 includes a second-first sound-generating device 931 disposed on one side of the charging terminal 950 and a second-second sound-generating device 932 disposed on the other side of the charging terminal 950, the present invention is not limited to this. For example, the second sound-generating device 930 may be disposed on only one side or only the other side of the charging terminal 950. Alternatively, the charging terminal 950 can be placed at either the position where the 2-1 sound generating device 931 is placed or the position where the 2-2 sound generating device 932 is placed, and the second sound generating device 930 can be placed at the remaining position where the charging terminal 950 is not placed.
[0084] The charging terminal 950 is a terminal for receiving power from an external source and can be connected to the power supply unit of the main circuit board 910 . The camera device 960 processes image frames, such as still images or moving images, obtained by an image sensor in camera mode and outputs the processed images to the main processor 920 .
[0085] In addition, a mobile communication module capable of transmitting and receiving wireless signals to and from at least one of a base station, an external terminal, and a server on a mobile communication network may be further mounted on the main circuit board 910. The wireless signals may include various types of data such as voice signals, video call signals, or text / multimedia messages.
[0086] The lower cover 900 may be disposed below the lower bracket 800 and the main circuit board 910. The lower cover 900 may form the bottom surface of the display device 10. One side of the lower cover 900 may be formed with a charging terminal hole CT for exposing the charging terminal 950 and speaker holes SH1 and SH2 for sound output from the second sound generating device 930. The lower cover 900 may include plastic and / or metal.
[0087] FIG. 10 is a graph showing sound pressure levels according to the frequency of sound provided to a user's ear when there is no contact between the user's ear and the display device, when there is contact without pressure, when there is contact with a first pressure, and when there is contact with a second pressure.
[0088] 10 shows a sound pressure level (SPL) FB1 when the user does not touch the front surface of the display device 10 with their ear when making a call using the display device 10, a sound pressure level FB2 when they touch the front surface of the display device 10 without any pressure, a sound pressure level FB3 when they touch the front surface of the display device 10 with a first pressure, and a sound pressure level FB4 when they touch the front surface of the display device 10 with a second pressure. The sound pressure levels according to the frequency of the sound generated by the first sound generating device 500 of the display device 10 in the four cases are different from each other as shown in FIG.
[0089] The sound pressure levels FB2, FB3, and FB4 when the user touches their ear (EAR) to the front surface of the display device 10 as shown in Figure 11(a) are approximately 20 dB higher in the frequency range of 1.5 kHz or less than the sound pressure level FB1 when there is no contact as shown in Figure 11(b). Furthermore, as the pressure with which the user touches their ear (EAR) to the front surface of the display device 10 increases, the sound pressure level becomes 7 to 14 dB higher in the frequency range of 1.5 kHz or less, and the sound pressure levels are similar in the frequency range of 1.5 kHz or more.
[0090] Therefore, when a user makes a call using the display device 10, it is necessary to provide the user with optimal call sound quality by adjusting the sound pressure level for each frequency range depending on whether or not the ear (EAR) is in contact with the front surface of the display device 10 and the degree of contact pressure. This will be described in detail below with reference to the drawings.
[0091] 12 is a block diagram illustrating a main processor, a sound driver, a first sound generating device, a touch driver, a touch sensing device, a pressure driver, and a pressure sensing device of a display device according to an embodiment. FIG. 13 is a block diagram illustrating an example of the main processor and the sound driver of FIG. 12.
[0092] 12 and 13, the touch driver 220 applies a touch drive signal TS to the touch sensing device 200 and receives a sensing signal DS from the touch sensing device 200. The touch driver 220 analyzes the sensing signal DS to calculate the user's touch position. The touch driver 220 outputs touch data TD, which includes information about the user's touch position, to the main processor 920.
[0093] The pressure sensing unit 270 applies a pressure driving signal PS to the pressure sensing device 250 and receives a pressure sensing signal PDS from the pressure sensing device 250. The pressure sensing unit 270 analyzes the pressure sensing signal PDS to calculate the degree to which the user applies pressure to the front of the display device 10. The pressure sensing unit 270 outputs pressure data PD, which includes information about the pressure with which the user applies pressure to the display device 10, to the main processor 920.
[0094] The main processor 920 may include a digital signal processor 921 as shown in Fig. 13. The digital signal processor 921 modulates the first sound data SD1 and the second sound data SD2 in each frequency domain based on the touch data TD and the pressure data PD before outputting them to the sound driver 610. The digital signal processor 921 outputs the modulated first sound data SD1 and the second sound data SD2 to the sound driver 610. A method of modulating the first sound data SD1 and the second sound data SD2 by the digital signal processor 921 will be described in detail with reference to Fig. 14.
[0095] 13, the acoustic driver 610 includes a digital-to-analog converter 611 and an amplifier 612. The digital-to-analog converter 611 converts the modulated first acoustic data SD1 and the modulated second acoustic data SD2 into a first driving voltage DV1 and a second driving voltage DV2. The amplifier 612 amplifies the first driving voltage DV1 and the second driving voltage DV2 and outputs them to the first sound generator 500.
[0096] FIG. 14 is a flowchart showing a method for driving a display device according to an embodiment. 14, first, the main processor 920 determines whether the display device 10 is operating in a call mode, which indicates a mode in which a user makes a voice call or a video call via the mobile communication module of the main circuit board 910 ("Yes" in S101 of FIG. 14).
[0097] Second, when the display device 10 is operating in a call mode, the main processor 920 determines whether the user's ear is in contact with the front surface of the display device 10 through the touch sensing device 200. When the touch sensing device 200 determines that the user's ear is not in contact with the front surface of the display device 10, the main processor 920 controls the sound output of the first sound generating device 500 in the first mode (S102 of FIG. 14).
[0098] Third, the main processor 920 modulates the first sound data SD1 and the second sound data SD2 so that the sound pressure level of the sound generated by the first sound generating device 500 in the first mode is between the first sound pressure level SPL1 and the second sound pressure level SPL2 in a first frequency domain FR1, between the third sound pressure level SPL3 and the second sound pressure level SPL2 in a second frequency domain FR2, and between the first sound pressure level SPL1 and the second sound pressure level SPL2 in a third frequency domain FR3. The first frequency domain FR1 represents a frequency domain greater than 0 Hz and equal to or less than 1.5 kHz, the second frequency domain FR2 represents a frequency domain greater than 1.5 kHz and equal to or less than 3 kHz, and the third frequency domain FR3 represents a frequency domain greater than 3 kHz and equal to or less than 8 kHz (S103 in FIG. 14).
[0099] Specifically, the first curve C1 in Figure 15(a) shows the sound pressure level of the sound generated by the first sound generating device 500 based on the first sound data SD1 and the second sound data SD2 that are not modulated according to an embodiment when the user's ear is not in contact with the front surface of the display device 10. The first' curve C1' in Figure 15(a) shows the sound pressure level of the sound generated by the first sound generating device 500 based on the first sound data SD1' and the second sound data SD2' that are modulated according to an embodiment when the user's ear is not in contact with the front surface of the display device 10.
[0100] When the sound pressure level is between the third sound pressure level SPL3 and the second sound pressure level SPL2 in the frequency range from 200 Hz to 5 kHz as shown in the first 'curve C1' in FIG. 15(a), the sound pressure level is maintained uniformly regardless of frequency, providing the user with optimal sound quality. However, when the user's ear is not in contact with the front surface of the display device 10, the sound pressure level of the sound generated by the first sound-generating device 500 is not uniform across the first to third frequency ranges FR1 to FR3 as shown in the first curve C1 in FIG. 15(a). That is, as shown in the first curve C1 in FIG. 15(a), the sound pressure level is lower than the third sound pressure level SPL3 in the frequency range below 2 kHz in the first frequency range FR1 and the second frequency range FR2. Furthermore, as shown in the first curve C1 in FIG. 15(a), the sound pressure level is higher than the third sound pressure level SPL3 in the frequency range above 2 kHz in the second frequency range FR2 and in the third frequency range FR3.
[0101] Therefore, in order to provide the user with optimal sound quality by maintaining the sound pressure level regardless of frequency, for example, as shown in the first 'curve C1' in Figure 15(a) above, the sound pressure level in the first frequency region FR1 must be increased above the third sound pressure level SPL3, and the sound pressure levels in the second frequency region FR2 and the third frequency region FR3 must be decreased. Whether the sound pressure level in each frequency region should be increased or decreased is determined based on the maximum sound pressure level in each frequency region. Therefore, the sound pressure level in the third frequency region FR3 must be decreased further than the sound pressure level in the second frequency region FR2.
[0102] Therefore, the digital signal processing unit 921 of the main processor 920 modulates the first acoustic data SD1 and the second acoustic data SD2 for each frequency domain. Specifically, the greater the voltage difference between the first drive voltage DV1 applied to the first electrode 510 of the first sound generator 500 and the second drive voltage DV2 applied to the second electrode 520, the higher the vibration strength of the vibration layer 530 of the first sound generator 500. Therefore, in order to raise the sound pressure level in the first frequency domain FR1 above the third sound pressure level SPL3, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so that the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500 increases, as shown in FIG. 15(b). 15(b), the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so as to reduce the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500. Furthermore, to reduce the sound pressure level in the second frequency region FR2, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so as to reduce the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500. Furthermore, to reduce the sound pressure level in the third frequency region FR3, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so as to reduce the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500. In this case, as shown in FIG. 15(b), the reduction in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 in the third frequency region FR3 may be greater than the reduction in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 in the second frequency region FR2. As a result, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2, taking into account all increases and decreases in the voltage difference between the first driving voltage DV1 and the second driving voltage DV2 applied to the first acoustic generating device 500 in the first to third frequency ranges FR1, FR2, and FR3.
[0103] Fourth, the main processor 920 determines whether the pressure sensed by the pressure sensing device 250 is equal to or less than the first pressure when the user's ear touches the front surface of the display device 10 via the touch sensing device 200. If the pressure sensed by the pressure sensing device 250 is equal to or less than the first pressure, the main processor 920 controls the sound output of the first sound generating device 500 in the second mode (S104 of FIG. 14).
[0104] Fifth, the main processor 920 modulates the first sound data SD1 and the second sound data SD2 so that the sound pressure level of the sound generated by the first sound generating device 500 in the second mode is between the first sound pressure level SPL1 and the second sound pressure level SPL2 in the first frequency domain FR1, between the third sound pressure level SPL3 and the second sound pressure level SPL2 in the second frequency domain FR2, and between the first sound pressure level SPL1 and the second sound pressure level SPL2 in the third frequency domain FR3 (S105 in FIG. 14).
[0105] Specifically, the second curve C2 in Fig. 16(a) shows the sound pressure level of the sound generated by the first sound generating device 500 based on the first sound data SD1 and the second sound data SD2 that are not modulated according to an embodiment when the pressure with which the user's ear presses the front surface of the display device 10 is equal to or less than the first pressure. The second' curve C2' in Fig. 16(a) shows the sound pressure level of the sound generated by the first sound generating device 500 based on the first sound data SD1 and the second sound data SD2 that are modulated according to an embodiment when the pressure with which the user's ear presses the front surface of the display device 10 is equal to or less than the first pressure.
[0106] When the sound pressure level is between the third sound pressure level SPL3 and the second sound pressure level SPL2 at frequencies from 200 Hz to 5 kHz as shown in Figure 16(a), the sound pressure level can be maintained uniformly regardless of frequency, thereby providing the user with optimal sound quality. However, when the pressure with which the user's ear presses the front surface of the display device 10 is equal to or less than the first pressure as shown in the second curve C2 of Figure 16(a), the sound pressure level of the sound generated by the first sound-generating device 500 is not uniform from the first frequency range FR1 to the third frequency range FR3. That is, as shown in the second curve C2 of Figure 16(a), the sound pressure level rises and falls near the third sound pressure level SPL3 in the first frequency range FR1, and is between the third sound pressure level SPL3 and the second sound pressure level SPL2 in the second frequency range FR2. Also, as indicated by the second curve C2 in FIG. 16(a), the maximum value of the sound pressure level has a second sound pressure level SPL in the frequency range of 5 kHz to 8 kHz in the third frequency range FR3.
[0107] Therefore, to provide the user with optimal sound quality by maintaining the sound pressure level regardless of frequency, the sound pressure level in the first frequency range FR1 must be increased above the third sound pressure level SPL3, and the sound pressure levels in the second frequency range FR2 and the third frequency range FR3 must be decreased, as shown by the second 'curve C2' in Figure 16(a). Whether the sound pressure level in each frequency range should be increased or decreased is determined based on the maximum sound pressure level in that frequency range. Therefore, the sound pressure level in the third frequency range FR3 must be further decreased than the sound pressure level in the second frequency range FR2.
[0108] Therefore, the digital signal processing unit 921 of the main processor 920 modulates the first acoustic data SD1 and the second acoustic data SD2 for each frequency domain. Specifically, in order to increase the sound pressure level in the first frequency domain FR1 above the third sound pressure level SPL3, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so that the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500 increases, as shown in FIG. 16(b). Furthermore, in order to decrease the sound pressure level in the second frequency domain FR2, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so that the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500 decreases, as shown in FIG. 16(b). 16(b), the digital signal processor 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so as to reduce the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500. In this case, as shown in FIG. 16(b), the decrease in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 in the third frequency region FR3 may be greater than the decrease in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 in the second frequency region FR2. As a result, the digital signal processor 921 modulates the first acoustic data SD1 and the second acoustic data SD2 in consideration of the increase or decrease in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500 in the first to third frequency regions FR1, FR2, and FR3.
[0109] Sixth, when the user's ear touches the front surface of the display device 10 via the touch sensing device 200, the main processor 920 determines whether the pressure sensed by the pressure sensing device 250 is greater than the first pressure and less than or equal to the second pressure. If the pressure sensed by the pressure sensing device 250 is greater than the first pressure and less than or equal to the second pressure, the main processor 920 controls the sound output of the first sound generating device 500 in a third mode. Furthermore, if the pressure sensed by the pressure sensing device 250 is greater than the second pressure, the main processor 920 controls the sound output of the first sound generating device 500 in a fourth mode (S106 of FIG. 14).
[0110] 17(a), even if the main processor 920 does not modulate the first sound data SD1 and the second sound data SD2 in the third mode, the sound pressure level of the sound generated by the first sound generating device 500 is between the third sound pressure level SPL3 and the second sound pressure level SPL2 at frequencies from 200 Hz to 5 kHz. Therefore, the main processor 920 does not modulate the first sound data SD1 and the second sound data SD2 in the third mode, as shown in FIG. 17(b). Seventh, in the fourth mode, the main processor 920 increases the sound pressure level in the first frequency region FR1 and decreases the sound pressure levels in the second frequency region FR2 and the third frequency region FR3 (S107 in FIG. 14).
[0111] Specifically, when a user is in a noisy environment in call mode, the user typically presses the front of the display device 10 with their ear to hear the other person's voice clearly. Furthermore, as shown in Fig. 18, when the front of the display device 10 is not in contact with an object, the sound generated by the first sound-generating device 500 radiates in all directions. However, as shown in Fig. 19, when the front of the display device 10 is in contact with an object, the sound generated by the first sound-generating device 500 with a sound pressure level of 2 kHz or less is directed forward, and the sound with a sound pressure level of 2 kHz or more radiates in all directions.
[0112] Therefore, if a user is in a noisy environment in call mode, increasing the sound pressure level of sound below 2 kHz, which has high frontal directivity, allows the user to hear the other person's voice more clearly. Therefore, as shown in FIG. 20, the main processor 920 can increase the sound pressure level of sound in the frequency range below 2 kHz and decrease the sound pressure level of sound in the frequency range above 2 kHz. For example, the main processor 920 can include a low-pass filter that passes frequencies below 2 kHz and blocks frequencies above 2 kHz. In this case, the sound pressure level of the sound generated by the first sound-generating device 500 is significantly reduced at frequencies above 2 kHz. As a result, the sound pressure level of the sound generated by the first sound-generating device 500 can be equal to or lower than a fourth sound pressure level SPL4 at frequencies above 5 kHz. The fourth sound pressure level SPL4 can be lower than the third sound pressure level SPL3, for example, 35 dB or lower.
[0113] Alternatively, in the fourth mode, the main processor 920 can increase the sound pressure level in the first frequency region FR1 and decrease the sound pressure levels in the second frequency region FR2 and the third frequency region FR3. To this end, the digital signal processing unit 921 of the main processor 920 modulates the first sound data SD1 and the second sound data SD2 for each frequency region. Specifically, in order to increase the sound pressure level in the first frequency region FR1, the digital signal processing unit 921 modulates the first sound data SD1 and the second sound data SD2 so that the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generating device 500 increases. 16(b), the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2 so as to reduce the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500. As a result, the digital signal processing unit 921 modulates the first acoustic data SD1 and the second acoustic data SD2, taking into consideration all increases and decreases in the voltage difference between the first drive voltage DV1 and the second drive voltage DV2 applied to the first sound generator 500 in the first to third frequency ranges FR1, FR2, and FR3.
[0114] 14, the display device 10 can increase or decrease the sound pressure level for each frequency range by modulating the first sound data SD1 and the second sound data SD2 in consideration of whether the user's ear contacts the front surface of the display device 10 and the pressure with which the user's ear presses the front surface of the display device 10. Therefore, regardless of whether the user's ear contacts the front surface of the display device and the pressure with which the user's ear presses the front surface of the display device, the sound pressure level of the sound can be maintained uniformly in the low frequency range, the mid frequency range, and the high frequency range, thereby providing high quality sound.
[0115] FIG. 21 is a flowchart showing a method for driving a display device according to another embodiment. S201 to S203 shown in Fig. 21 are substantially the same as S101 to S103 explained in connection with Fig. 14. Therefore, detailed explanation of S201 to S203 shown in Fig. 21 will be omitted.
[0116] When the user's ear touches the front surface of the display device 10, the main processor 920 determines whether the contact area of the user's ear is equal to or smaller than the first area A1 as shown in FIG. 22(a) through the touch sensing device 200. The main processor 920 may determine the contact area of the user's ear by analyzing the touch data TD. For example, the main processor 920 may calculate the touch area based on the number of touch cells where the user's touch is detected.
[0117] As the pressure with which the user presses the front surface of the display device 10 increases, the contact area of the user's ear increases, so when the contact area of the user's ear is equal to or smaller than the first area A1, the main processor 920 can determine that the user's ear presses the front surface of the display device 10 with a first pressure or less. Therefore, when the contact area of the user's ear is equal to or smaller than the first area A1, the main processor 920 controls the sound output of the first sound generating device 500 in the second mode (S204 in FIG. 21).
[0118] S205 shown in FIG. 21 is substantially similar to S105 explained in connection with FIG. 14, and therefore a detailed explanation of S205 shown in FIG. 21 will be omitted.
[0119] Next, the main processor 920 determines whether the contact area of the user's ear is greater than the first area A1 as shown in FIG. 22(a) and less than or equal to the second area A2 as shown in FIG. 22(b) when the user's ear contacts the front surface of the display device 10 using the touch sensing device 200.
[0120] As the pressure with which the user presses the front surface of the display device 10 increases, the contact area of the user's ear also increases. Therefore, when the contact area of the user's ear is greater than the first area A1 and equal to or less than the second area A2, the main processor 920 can determine that the user's ear presses the front surface of the display device 10 with a pressure greater than the first pressure and less than the second pressure. Therefore, when the contact area of the user's ear is greater than the first area A1 and equal to or less than the second area A2, the main processor 920 controls the sound output of the first sound generating device 500 in the third mode. Furthermore, when the contact area of the user's ear is greater than the second area A2, the main processor 920 controls the sound output of the first sound generating device 500 in the fourth mode (S206 in FIG. 14).
[0121] Even if the main processor 920 does not modulate the first sound data SD1 and the second sound data SD2 in the third mode as shown in Fig. 17(a), the sound pressure level of the sound generated by the first sound generating device 500 is between the third sound pressure level SPL3 and the second sound pressure level SPL2 at frequencies from 200 Hz to 5 kHz. Therefore, the main processor 920 does not modulate the first sound data SD1 and the second sound data SD2 in the third mode as shown in Fig. 17(b). S207 shown in FIG. 21 is substantially the same as S107 explained in connection with FIG. 14, and therefore a detailed explanation of S207 shown in FIG. 21 will be omitted.
[0122] 21, the display device 10 can increase or decrease the sound pressure level for each frequency range by modulating the first sound data SD1 and the second sound data SD2 in consideration of whether the user's ear contacts the front surface of the display device 10 and the pressure with which the user's ear presses the front surface of the display device 10. Therefore, regardless of whether the user's ear contacts the front surface of the display device and the pressure with which the user's ear presses the front surface of the display device, the sound pressure level of the sound can be maintained uniformly in any of the low-frequency range, mid-frequency range, and high-frequency range, thereby providing high-quality sound.
[0123] 21, the pressure of the user's ear pressing against the front surface of the display device can be determined by determining the contact area of the user's ear, which is sensed using the touch sensing device 200 instead of the pressure sensing device 250. Therefore, the pressure sensing device 250 for sensing the pressure applied from the front surface of the display device 10 can be omitted.
[0124] Although the embodiments of the present invention have been described above with reference to the accompanying drawings, those skilled in the art will understand that the present invention can be embodied in different specific forms without changing the technical idea or essential features of the present invention. Therefore, it should be understood that the embodiments described above are illustrative in all respects and are not limiting. [Explanation of symbols]
[0125] 100 Cover Window 110 Adhesive layer 200 Touch-sensitive device 210 Touch Circuit Board 220 Touch drive unit 230 Touch Connection 240 Connector of touch circuit board 210 250 Pressure Sensing Device 260 Pressure Sensing Circuit Board 270 Pressure sensor 280 Pressure Sensing Connection 300 Display Panel 301 Support substrate 302 Flexible PCB 303 Thin Film Transistor Layer 304 Light emitting element layer 305 Sealing layer 306 Barrier film 310 Display circuit board 320 Display driver 330 First Connector 331 active users 332 gate electrode 333 Source Electrode 334 Drain electrode 335 Thin-Film Transistor 336 Gate insulating film 337 Interlayer insulating film 338 Protective film 339 Planarization film 340 Second Connector 341 Anode Electrode 342 Light-emitting layer 343 Cathode Electrode 344 Pixel-Defined Membrane 350 3rd Connector 400 Panel lower member 410 Light absorbing member 420 Cushioning material 430 Heat dissipation materials 431, 432 1st, 2nd heat dissipation layer 433 4th adhesive layer 441, 442, 443 1st, 2nd, 3rd adhesive layer 500 First Sound Generator 510 1st electrode 520 2nd electrode 530 Vibration layer 540 PCB 550, 560 1st and 2nd pads 600 Acoustic Circuit Board 610 Acoustic Drive Unit 611 Digital-to-analog converter 612 Amplifier 620 Acoustic Connection 800 bottom bracket 900 Lower cover 910 Main Circuit Board 920 main processor 921 Digital Signal Processing Unit 930 Second Sound Generator 931, 932 No. 2-1, No. 2-2 sound generator 950 charging terminal 960 Camera Equipment CH1, CH2 1st and 2nd contact holes CT charging terminal hole DA display area DA100 transparent part DV1, DV2 First and second drive voltages NDA Hidden Area NDA100 light shielding part PD Pressure Data PDS Pressure Sensing Signal PS Pressure drive signal SD1, SD2 Modulated 1st and 2nd acoustic data SH1, SH2 1st and 2nd Speaker Halls TD Touch Data
Claims
1. a display panel for displaying images; a touch sensing device for sensing a touch of an object; an acoustic driving unit that generates and outputs a first acoustic driving signal and a second acoustic driving signal based on the first acoustic data and the second acoustic data; a pressure sensing device that senses the pressure applied by a user; and a sound generating device that generates sound based on the first sound drive signal and the second sound drive signal; In a first mode in which the touch of the object is not sensed by the touch sensing device and a second mode in which the touch of the object is sensed by the touch sensing device, a sound pressure level of the sound is modulated to be between a first sound pressure level and a second sound pressure level in a first frequency range; In the first mode and the second' mode, the sound pressure level of the sound is modulated to be between the second sound pressure level and a third sound pressure level higher than the first sound pressure level and lower than the second sound pressure level in a second frequency range higher than the first frequency range, In the first mode and the second' mode, the sound pressure level of the sound is modulated to be between the first sound pressure level and the second sound pressure level in a third frequency range higher than the second frequency range, vibrating the display panel with the sound generating device to output sound; When the pressure sensed by the pressure sensing device in the second' mode is equal to or less than the first pressure, the display device increases a sound pressure level in the first frequency range and decreases a sound pressure level in the second frequency range and the third frequency range.
2. 2. The display device according to claim 1, wherein the sound pressure level of the sound is modulated between the second sound pressure level and the third sound pressure level, which is higher than the first sound pressure level and lower than the second sound pressure level, at 200 Hz to 5 kHz.
3. 2. The display device of claim 1, wherein in the second' mode, in a second mode in which the contact area of the object sensed by the touch sensing device is equal to or smaller than a first area, and in a third mode in which the contact area of the object is greater than the first area and equal to or smaller than a second area, the sound pressure level of the sound is modulated to be between the first sound pressure level and the second sound pressure level in the first frequency range.
4. 4. The display device according to claim 3, wherein in the second mode and the third mode, the sound pressure level of the sound is modulated to be between the third sound pressure level, which is higher than the first sound pressure level and lower than the second sound pressure level, in a second frequency range higher than the first frequency range.
5. 4. The display device according to claim 3, wherein in the second mode and the third mode, the sound pressure level of the sound is modulated to be between the first sound pressure level and the second sound pressure level in a third frequency range higher than the second frequency range.
6. 4. The display device according to claim 3, wherein the sound pressure level of the sound is modulated between the second sound pressure level and the third sound pressure level, which is higher than the first sound pressure level and lower than the second sound pressure level, at 200 Hz to 5 kHz.
7. 2. The display device of claim 1, further comprising a digital signal processing unit that modulates the first acoustic data and the second acoustic data into the first frequency region, a second frequency region higher than the first frequency region, and a third frequency region higher than the second frequency region.
Citation Information
Patent Citations
Mount structure for touch panel also used as speaker
JP2011053744A
Electronic apparatus
JP2013247661A
Electronic apparatus
JP2016146638A
Portable electronic device including touch-sensitive display and method of controlling audio output
US20160132285A1
Telephone set, and sound adjustment method of telephone set
WO2011121740A1