Light-transmitting stone table
By integrating the light emitting unit in the table and using light projection to make the slate shine, the problem of existing lighting equipment occupying space and wired power limitations is solved, and efficient space utilization and convenient mobility are achieved.
Patent Information
- Application Number
- CN202290000695.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2021-10-07
- Filing Date
- 2022-09-01
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2032-09-01
Smart Images

Figure CN222853382U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a table, in particular to a table which uses a light-transmitting stone material to transmit part of external light. Background Art
[0002] Recently, as the social atmosphere emphasizes work-life balance, the desire to decorate one's living space more warmly and diversely and to experience new emotions is increasing. As part of this, the demand for redecorating the interior or changing the environment around the desk is also increasing.
[0003] In this regard, a variety of lighting fixtures that can create various atmospheres around the table using lighting light have recently been launched in large quantities. These lighting fixtures are vertical lighting fixtures installed in a separate space at a certain distance from the table, and can be divided into table lighting fixtures that are directly installed on the table and provide various forms of lighting on the table.
[0004] These lighting devices have the advantage of being able to create a variety of atmospheres around the table and table, but they also have various inconveniences.
[0005] First, since these lighting devices are configured to occupy a certain area of the space around the table or to occupy a certain portion of the table top, there is a problem that the user cannot effectively utilize the table space and the surrounding space.
[0006] Meanwhile, these lighting devices have a wired power supply line connected to a socket for lighting the lighting device. Such a power supply line is not aesthetically pleasing in itself, not only hinders the user's movement and causes trouble to the user, but also has the risk of causing dangerous injuries to the user when negligent. Moreover, when using the lighting device on a table, the user must drag the power supply line or unplug it to connect it to another socket every time the table is moved. Moreover, in the absence of other sockets, the distance to move the table is limited, so the scope of use is limited, which is inconvenient. Utility Model Content
[0007] 1. Technical issues to be resolved
[0008] The utility model aims to provide a light-transmitting stone table, which can not only provide various lighting functions and the functions of the table itself, but also has excellent space utilization.
[0009] Another object of the utility model is to provide a light-transmitting stone table, the light-transmitting stone table can remove the wired power supply line, so that it can be easily moved without being restricted by space.
[0010] The purpose of the present invention is not limited to the above content, and another purpose not mentioned can be clearly understood from the following description by those skilled in the art to which the present invention belongs.
[0011] (II) Technical solution
[0012] In order to achieve the above-mentioned problems, according to one aspect of the utility model, a light-transmitting stone table may include: a stone slab; a shell supporting the stone slab; and a light-emitting unit, which is located in the shell and makes the stone slab glow by projecting light onto the stone slab.
[0013] Here, the light-emitting unit is arranged to be 5mm to 200mm away from the bottom of the stone slab, and the stone slab includes light-transmitting particles that refract the light received from the light-emitting unit and re-emit it, and light-scattering particles that scatter and emit the light received from the light-transmitting particles in multiple directions, and can be formed to output the light received from the light-emitting unit in the form of surface emission.
[0014] Here, the translucent stone table may further include: a bottom reflective plate arranged in the shell and on which the light-emitting unit is installed; and an inclined reflective plate extending from the bottom reflective plate, tilted upward toward the stone slab, receiving light reflected from the bottom reflective plate, and then re-reflecting it toward the stone slab; the light-emitting unit may be configured to emit light toward the bottom reflective plate.
[0015] Here, the light-emitting unit may include: an LED module that projects light onto the stone slab; a dimming controller connected to the LED module to adjust the amount of light output from the LED module; and a wireless control unit connected to the dimming controller to receive wireless signals through one or more communication methods such as RF, WIFI, Bluetooth, or IR to control the dimming controller.
[0016] Here, the translucent stone table may further include: a rechargeable secondary battery for supplying power to the light-emitting unit; and an adapter connected to the secondary battery and converting power supplied from an external power source into power having a voltage of 5V, 9V, 12V or 24V and providing the power to the secondary battery.
[0017] Here, the translucent stone table may further include: a bone conduction speaker detachably attached to the stone slab, transmitting vibration to the stone slab, causing the stone slab to vibrate and output sound, and the shell may include: an outer shell supporting the stone slab; an echo space formed in the outer shell and amplifying the sound output from the stone slab; and a sound output hole penetrating the outer shell and outputting the sound amplified by the echo space to the outside of the outer shell.
[0018] Here, the translucent stone table also includes: a thermoelectric module arranged between the bottom of the stone slab and the light-emitting unit; a blower arranged in the shell; and a spice storage box arranged on one side of the light-emitting unit; the electricity generated by the thermoelectric module is supplied to the blower, and the blower can send air to the spice storage box.
[0019] Technical Effects
[0020] (III) Beneficial effects
[0021] According to the light-transmitting stone table of the utility model constructed as described above, various lighting design functions as well as the table itself can be provided. At the same time, since the lighting function is integrated into the table, not only can the lighting function be provided without a separate lighting design, but also the space for installing lighting equipment can be saved, thereby improving space utilization.
[0022] In addition, since the wired power supply line can be omitted, it is easier to move, and the range of movement is not limited by distance, so it can provide users with a wide range of applications.
[0023] The effects of the present invention are not limited to the above contents, and other effects not mentioned can be clearly understood from the following description by those skilled in the art to which the present invention belongs. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is an oblique view of a light-transmitting stone table according to an embodiment of the utility model.
[0025] Figure 2 yes Figure 1 Side view of the translucent stone table.
[0026] Figure 3 yes Figure 1 Schematic diagram of the interior of the translucent stone table.
[0027] Figure 4 It is a schematic diagram for illustrating a light-transmitting stone table according to other embodiments of the utility model.
[0028] Figure 5 yes Figure 4 Schematic diagram of the light projection state of the medium-translucent stone table.
[0029] Figure 6 It is a schematic diagram for illustrating a light-transmitting stone table according to another embodiment of the utility model.
[0030] Figure 7 It is a side view of a light-transmitting stone table according to another embodiment of the utility model. DETAILED DESCRIPTION
[0031] The purpose and effect of the utility model, as well as the technical configuration for achieving them, will become clear by referring to the accompanying drawings and the embodiments described in detail. When describing the utility model, if it is considered that the specific description of the announced function or composition may unnecessarily obscure the gist of the utility model, its detailed description will be omitted. Also, the following terms are defined in consideration of the functions in the utility model, which may vary depending on the intention or convention of the user or operator.
[0032] However, the present invention is not limited to the embodiments disclosed below, but can be implemented in various forms. However, the present embodiment is to ensure the completeness of the beginning of the present invention and to fully inform the scope of the present invention to those who have general knowledge in the technical field to which the present invention belongs, and the present invention is only defined by the scope of the claims. Therefore, the definition should be issued based on the overall content of this specification.
[0033] Throughout the specification, when a part "includes" or "has" a certain component, it means that it may also include other components, unless otherwise specifically described to the contrary. In addition, the terms "...unit", "...part" or "...module" recorded in the specification refer to at least one unit of processing function or action, which can be implemented by hardware or software or a combination of hardware and software.
[0034] The following is a detailed description of the light-transmitting stone table according to a preferred embodiment of the utility model with reference to the accompanying drawings. In this specification, even if different embodiments, the same or similar components are given the same or similar reference numerals, and their descriptions are replaced by the first description.
[0035] Figure 1 It is an oblique view of a light-transmitting stone table 100 according to an embodiment of the present utility model.
[0036] Referring to the accompanying drawings, the light-transmitting stone table 100 has a shape similar to that of an existing table as a whole. The light-transmitting stone table 100 can have the corresponding size of a mini table as shown in the figure. At the same time, the light-transmitting stone table 100 can also be formed into an office desk or a large-sized multi-person table.
[0037] The light-transmitting stone table 100 may include a stone plate 110, a housing 120 and a leg 130. In addition, the light-transmitting stone table 100 may further include a bone conduction speaker 140. Figure 2 and Figure 3 , the structure of the light-transmitting stone table 100 is specifically described.
[0038] Figure 2 yes Figure 1 A side view of the translucent stone table 100, Figure 3 yes Figure 1 Schematic diagram of the interior of the light-transmitting stone table 100 .
[0039] Referring to the drawings, the light-transmitting stone table 100 may include a stone plate 110, a housing 120, a light-emitting unit 150, and a power supply unit 170. Moreover, the light-transmitting stone table 100 may further include a bone conduction speaker 140.
[0040] The thickness of the stone slab 110 is 5 mm to 20 mm. The stone slab 110 may be made of one or more of marble, granite or quartz stone. The stone slab 110 made of these stones may include light-transmitting particles and light-scattering particles.
[0041] The light-transmitting particles are particles that refract the light (L) received by the light-emitting unit 150 and then re-emit the light. The light-transmitting particles may include quartz or calcium carbonate. Here, quartz may include crystalline crystals. Crystal refers to the state in which quartz forms a crystalline growth, also known as crystal. Crystal has a variety of colors due to the trace elements it contains and the lattice defects in the structure, so crystals are sometimes classified according to color. Specifically, quartz contains FeO4 4- Purple amethyst, containing a small amount of Ti 4+ The red or pink rose quartz contains trace amounts of Al 3+ Dark smoky quartz, containing trace amounts of Al 3+ There are yellow citrine and white milky quartz with fluid inside the crystal like mammalian milk.
[0042] Light scattering particles are particles that scatter and emit light (L) received from light-transmitting particles in multiple directions. Light scattering particles can contain iron, copper, calcium, aluminum, magnesium, zinc or titanium. These are generally materials with low light transmittance and have the function of reflecting or scattering the received light (L) in multiple directions.
[0043] The housing 120 may include a casing 121 , an echo space 123 , and a sound output hole 125 .
[0044] The housing 121 is a structure that supports the stone slab 110. The housing 121 may have a hexahedral shape with an upper portion open. The housing 121 may be made of acrylic, Formax, polycarbonate, aluminum, stainless steel, steel, or wood.
[0045] Here, the wood may include logs, laminated wood, MDF (Medium Density Fiberboard), ecoboard (ecoboard), PB (Particle Board), plywood or solid material.
[0046] The echo space 123 is composed of a space formed inside the housing 121 .
[0047] The sound output hole 125 is formed through the outer wall of the housing 121 .
[0048] The bone conduction speaker 140 is detachably mounted on the stone plate 110. The bone conduction speaker 140 is configured to receive a sound signal and convert it into a vibration signal, and then transmit the vibration signal to the stone plate 110.
[0049] The light emitting unit 150 is located in the housing 120 . The light emitting unit 150 may include an LED module 151 , a dimming controller 161 , and a wireless control unit 163 .
[0050] The LED module 151 projects light (L) toward the stone slab 110. The LED module 151 may be disposed at a distance of 15 mm to 200 mm from the bottom 11 of the stone slab 110. The light-emitting structure of the LED module 151 may be composed of a light-emitting LED chip 153 and a PCB substrate 155 combined therewith. In addition, in addition to the three-zone module mode shown in the figure, the LED module 151 may also be applied to an LED strip, an LED block, a surface-emitting LED, an LED line, or an LED strip module.
[0051] The dimming controller 161 is connected to the LED module 151 and adjusts the amount of light output from the LED module 151 .
[0052] The dimming controller 161 may be disposed inside or outside the housing 120 according to the design of the housing 120 .
[0053] The wireless control unit 163 is configured to control the dimming controller 161. To this end, the wireless control unit 163 receives a wireless signal from the outside to control the dimming controller 161 through one or more communication methods of RF, WiFi, Bluetooth, or IR.
[0054] The power supply unit 170 is configured to supply power to the light emitting unit 150. The power supply unit 170 may include a secondary battery 171 and an adapter 173.
[0055] The secondary battery 171 supplies power to the light emitting unit 150. To this end, the secondary battery 171 may use a plurality of 18650 batteries connected in series or in parallel. The secondary battery 171 may be disposed inside or outside the housing 120 according to the design of the housing 120.
[0056] The adapter 173 is configured to recharge the secondary battery 171. The adapter 173 converts the power supplied from the external power source into power having a voltage of 5V, 9V, 12V, or 24V and supplies the power to the secondary battery 171.
[0057] On the other hand, as to the size of the stone board 110, considering the current consumption, rated voltage, power consumption and charging capacity of the LED module, the width is about 1m. 2 More suitable within.
[0058] The utility model relates to a light-transmitting stone table 100 that maximizes mobility and convenience. For portability, preferably, the LED chips 153 built into the LED module emit light through batteries. As the number of LED modules required for light emission increases, the number of LED chips 153 will also increase. Therefore, due to the increase in current consumption, considering the weight, efficiency and light emission of the battery, when using more than about 1m 2 When the size of the stone board 110 exceeds 1m, the portability is greatly reduced, and the current consumption increases due to the increase of the light emitting module, resulting in a sharp decrease in the time to maintain the same light emitting efficiency. 2 When the number of LED modules installed increases, the consumed current and power increase, the battery discharge speed increases, and the brightness of the LED light decreases.
[0059] Therefore, considering the above situation, when the light-transmitting stone table 100 of the embodiment of the utility model uses LED three-zone modules, it is preferred to use less than 30 modules.
[0060] For example, when using a three-zone LED module with 0.06A and an adapter with 2A,
[0061] When using a 30 LED three-zone module, there will be 0.06A 30 LEDs, three-zone module = 1.8A.
[0062] Since the adapter only uses 80% to 90% of the total A to prevent overload, it is preferred to use a three-zone module with less than 30 LEDs.
[0063] The method of operating the light-transmitting stone table 100 configured as described above is as follows.
[0064] First, the adapter 173 can receive power from an external power source to charge the secondary battery 171. After charging, the adapter 173 can be disconnected from the secondary battery 171. Therefore, the user can move the light-transmitting stone table 100 to a desired location for use without being limited by the limited length of the adapter 173 connection line. At the same time, the cumbersomeness caused by the adapter 173 connection line can also be eliminated. On the other hand, the LED chip 153 obtains power supply from the charged secondary battery 171 and emits light, projecting light (L) to the stone slab 110, and the stone slab 110 receives light (L) from the LED chip 153 and emits light. Here, the LED chip 153 as a whole points to the bottom 111 of the stone slab 110, but not in one direction, but outputs light (L) in the form of diffusion in multiple directions. In addition, since the LED module 151 is 5mm to 200mm away from the bottom 111 of the stone slab 110 as described above, the light (L) emitted from the LED chip 153 reaches the bottom 111 of the stone slab 110 in the form of wide diffused light, rather than in the form of concentrated light. Therefore, when viewed from above the slate 110, the light is not in the form of spots, but in the form of overall light emission. At the same time, the LED chips 153 are evenly distributed on the bottom of the housing 121, so that the upper side 113 of the slate 110 can emit light (Ls) more evenly over the entire surface.
[0065] On the one hand, the distance between the bottom 111 of the stone slab 110 and the LED module 151 can be adjusted between 5 mm and 200 mm according to the thickness and light transmittance of the stone slab 110 and the light amount of the LED module 151. Experimentally, when the LED module 151 is located within 5 mm from the bottom 111 of the stone slab 110, the light (L) output from the LED module 151 will emit in a spot form when passing through the stone slab 110, and the overall light distribution is uneven, thereby hindering the surface emission (Ls) characteristics of the stone slab 110.
[0066] On the contrary, when the LED module 151 is arranged more than 200 mm away from the bottom 111 of the stone slab 110, the brightness of the light output through the stone slab 110 through its upper side 113 may be quite weak. Therefore, the LED modules 151 are appropriately arranged at intervals within 5 mm to 200 mm according to the characteristics of the stone slab 110, etc., taking the above factors into consideration.
[0067] Preferably, within the range of 5 mm to 200 mm of the bottom 111 of the stone board 110 , the diffusion lens cover LED modules with a wide viewing angle (more than 150 degrees) are appropriately spaced and positioned to have an optimized surface luminous (Ls) characteristic of the stone board 110 .
[0068] The slate 110 that receives the light (L) from the light-emitting unit 150 configured in this form emits light in the form of surface emission (Ls). The characteristic of this surface emission (Ls) is derived from the composition of the slate 110 itself in addition to the composition of the light-emitting unit 150. Specifically, as described above, the slate 110 may include light-transmitting particles and light-scattering particles. Here, the light-transmitting particles refract the light (L) received from the light-emitting unit 150 and then re-emit the light, and the light-scattering particles scatter the light (L) received from the light-transmitting particles in multiple directions and then re-emit the light. Due to the composition of these light-transmitting particles and light-scattering particles, the light (L) projected onto the slate 110 passes through the light-transmitting particles and light-scattering particles multiple times in the slate 110, and is converted into a diffuse light form, rather than a concentrated light form, so the slate 110 outputs light in the form of surface emission (Ls).
[0069] On the one hand, as described above, the housing 121 may be composed of acrylic, Formax or polycarbonate materials, which may also be composed in a translucent form. In this case, not only the slate 110 but also the housing 121 may receive the light (L) output from the light emitting unit 150 and emit light in the form of surface emission. Accordingly, a soft form of illumination light may be output not only from above the slate 110 but also from below the housing 120, thereby providing a more sensual illumination for the user.
[0070] Furthermore, various colors of illumination light can be displayed by adding a light-transmitting film or a light-transmitting acrylic board, such as any one of colored paper, colored film, PVC colored film, transparent cardboard and colored acrylic board, to the bottom of the slate 110. For example, light-transmitting colored paper is pasted under the slate 110, and the light emitted by the LED chip 153 is transmitted to the color on the colored paper, and the transmitted light is transmitted to the slate again, so that the color of the colored paper and the color of the slate 110 itself are mixed together to produce soft illumination light.
[0071] Therefore, even without changing the color of the LED chip, various lighting lights can be displayed through the colored paper.
[0072] An example of an attachment method is to closely adhere paper or acrylic coated with an adhesive on one side to the bottom of the stone plate 110.
[0073] In one aspect, the user can use the touch dimming switch to adjust the amount of light output from the slate 110. In addition, it can also be used as a power button. For example, when the user touches the dimming switch lightly, the operation can be turned on / off, and the amount of light can be adjusted by long touching the dimming switch.
[0074] Different from this, the user can use a remote controller or the like to adjust the amount of light output from the slate 110. Specifically, when the user sends a signal for adjusting the amount of light through the remote controller, the wireless control unit 163 can receive the signal through IR (Infrared Ray) communication and resend it to the dimming controller 161. The dimming controller 161 that receives these signals controls the LED module 151 connected thereto, and can adjust the amount of light output by the LED module 151 according to the needs of the user. In addition to the infrared communication method, this wireless control can also be implemented through the RF (Radio Frequency), WiFi or Bluetooth communication method.
[0075] On the one hand, the light-transmitting stone table 100 can also provide sound to provide a more sensual atmosphere for the user. Specifically, the bone conduction speaker 140 installed on the upper side 113 of the stone slab 110 is configured to receive the sound signal as described above and convert it into a vibration signal, and then transmit the vibration signal to the stone slab 110. The stone slab 110 itself, which receives the vibration signal, vibrates according to the vibration signal, and therefore, the stone slab 110 itself outputs a sound corresponding to the sound signal.
[0076] This sound is amplified by the echo space 123 of the space housing 121 opposite to the bottom 111 of the stone plate 110, and the amplified sound is output to the outside of the housing 121 through the sound output hole 125. According to this configuration, only the small bone conduction speaker 140 with a small vibration output can output a sound with a larger output and an enhanced timbre in the mid-low range, thereby providing a larger and wider range sound to the user.
[0077] The following references Figure 4 and Figure 5 , a light-transmitting stone table 100 ′ according to another embodiment of the utility model is described.
[0078] Figure 4 1 is a diagram illustrating a light-transmitting stone table 100' according to another embodiment of the present invention. Figure 5 Yes Display Figure 4 A diagram of a light transmission state of the light-transmitting stone table 100'.
[0079] Referring to the drawings, the light-transmitting stone table 100 ′ may further include a ground reflection plate 180 and an inclined reflection plate 181 . Also, unlike the above-described embodiment, the light-emitting unit 150 ′ is configured to output light to the ground reflection plate 180 .
[0080] The ground reflection plate 180 is placed at the bottom of the housing 121. The ground reflection plate 180 is mounted with an LED module 151'.
[0081] The inclined reflective plate 181 is disposed to be inclined upward toward the stone slab 110. The inclined reflective plate 181 and the ground reflective plate 180 are formed as one body.
[0082] The operation of the light-transmitting stone table 100' configured as above is as follows.
[0083] First, the LED module 151' outputs light to the ground reflection plate 180. Here, the light output from the LED module 151' has the form of diffused light in multiple directions, so the final arrival point of these lights will also change with the difference of the initial arrival point. Specifically, these lights can be divided into the first light (L1) that is directed to the area near the LED module 151' in the area of the ground reflection plate 180, the second light (L2) that is directed to the area of the ground reflection plate 180 farther away, and the third light (L3) that is directed to the inclined reflection plate 181.
[0084] Here, the first light (L1) is reflected from the ground reflection plate 180 and directly reaches the bottom 111 of the stone plate 110. Also, the second light (L2) is reflected from the ground reflection plate 180, and then reflected from the inclined reflection plate 181 again, and finally reaches the bottom 111 of the stone plate 110. Also, the third light (L3) is reflected from the inclined reflection plate 181 and reaches the bottom 111 of the stone plate 110.
[0085] According to this configuration, even when the light emitting unit 150' is composed of a spot-shaped light source such as an LED chip 153, the light output from the point light source is reflected and re-reflected along different paths and is evenly dispersed and reaches the bottom 111 of the entire slate 110. As a result, the slate 110 can receive fairly uniform light from the light emitting unit 150', thereby making the surface light emission (Ls) more uniform.
[0086] The following references Figure 6 A light-transmitting stone table 100" shown in another embodiment of the present invention is described.
[0087] Figure 6 1 is a diagram illustrating a light-transmitting stone table 100" according to another embodiment of the present invention.
[0088] Referring to the drawings, the light-transmitting stone table 100 ″ may further include a fragrance storage box 190 , a thermoelectric module 191 , a blower 192 and a dimmer 193 .
[0089] The fragrance storage box 190 is disposed on one side of the LED module 151, the thermoelectric module 191 is disposed between the LED module 151 and the bottom 111 of the stone plate 110, and the blower 192 may be disposed to blow air toward the fragrance storage box 190. The dimmer 193 is configured to adjust the light amount of the LED module 151.
[0090] The operation method of assembling the light-transmitting stone table 100" as described above is as follows.
[0091] First, when the LED module 151 is turned on and outputs light (L), the LED module 151 generates heat therewith. This heat affects the fragrance storage box 190 provided on one side of the LED module 151. Specifically, the fragrance storage box 190 receiving heat from the LED module 151 becomes active as the molecular movement of the fragrance stored therein becomes active, and has the same function as a diffuser.
[0092] On the one hand, the thermoelectric module 191 can generate electricity by heat from the LED module 151. Here, the thermoelectric module 191 is a component using the Seebeck effect, which refers to a component that generates a potential difference in a closed circuit using a temperature difference. In this embodiment, the thermoelectric module 191 is provided between the LED module 151, which is a high temperature area, and the bottom 111 of the stone slab 110, which is a relatively low temperature area, so as to generate a potential difference. Therefore, the current flows through the blower 192 connected to the thermoelectric module 191 through the potential difference generated from the thermoelectric module 191.
[0093] According to this configuration, the blower 192 blows air to the fragrance storage box 190, and this air blows the fragrance whose molecules are activated by the heat of the LED module 151 to the outside of the housing 121 through the sound output hole 125, so that the fragrance quickly spreads around the translucent stone table 100".
[0094] As a result, according to the light-transmitting stone table 100", by providing the stone slab 110 that emits surface light (Ls), the bone conduction speaker 140, and the configuration of providing fragrance, the user can be provided with visual, auditory, and olfactory sensations, respectively.
[0095] On the one hand, the light-transmitting stone table 100" is different from the wireless control unit 163 and the dimming controller 161 in the above-mentioned embodiment, and can also be equipped with a manual dimmer 193. When a wired power supply (220V) is provided, in addition to the secondary battery 171 configuration, a manual dimmer 193 and an adapter 173 that directly converts the voltage into 5V, 9V, 12V or 24V, etc. can be connected. Alternatively, in order to more stably supply power to the LED module 151, a conventional switching mode power supply SMPS (Switching Mode Power Supply) can also be prepared to convert the voltage into 5V, 9V, 12V or 24V, etc. These configurations can further reduce the manufacturing cost.
[0096] Figure 7 1 is a side view of a light-transmitting stone table 100"' according to another embodiment of the present invention.
[0097] Referring to the drawings, the translucent stone table 100 ″′ may further include a clamping frame 194 . The clamping frame 194 may include a leg portion 195 , a hook portion 196 , a bracket 197 and a fastener 198 .
[0098] The clamping frame 194 is mounted as follows.
[0099] First, the hook portion 196 is positioned at the upper corner of the stone slab 110. In this case, the housing 120 is stacked and positioned below the stone slab 110, and then the fastener 198 located below the housing 120 is tightened. The fastener 198 is tightened to make the stone slab 110 and the housing 120 fit each other, and then another clamping frame 194 is positioned at the other upper corner of the stone slab 110, and then the above process is repeated.
[0100] According to this configuration, the slate 110 and the shell 120 can be fixed as a whole at one time through the configuration of the clamping frame 194, so there is no need for a separate configuration to fix them to each other, and the clamping frame 194 with a leg 195 of another length can be easily replaced, so that the length of the leg 195 required by the user can be easily adjusted.
[0101] In one aspect, although not shown, an illumination sensor unit for measuring the illumination of the space where the stone slab is located can be provided on one side of the light-transmitting stone table. The illumination sensor unit can measure the illumination around the light-transmitting stone and output it to a control signal of the dimming controller. For example, when the illumination around is very low, the dimming controller can adjust the amount of light output from the LED module to output a small amount of light. At the same time, when there is a light source around, it can be controlled to output light with a higher illumination than the illumination provided by the light source.
[0102] In the illumination sensor, a complementary metal-oxide semiconductor (Complementary Metal-Oxide Semiconductor) image sensor may be additionally provided. The image sensor may sense the color of the surrounding light, and by sensing the color of the surrounding light of the translucent stone table, transmit the color information of the surrounding light to the dimming controller to output light of the same color as the surrounding light, or output complementary light to the surrounding light. For example, if the color of the surrounding light is red light, cyan light as complementary light may be output, or if the color of the surrounding light is orange light, blue light may be output. By outputting color light that contrasts sharply with the surrounding light, objects placed on the translucent stone table may be more clearly identified.
[0103] The light-transmitting stone table as described above is not limited to the configuration and operation method of the above-mentioned embodiment. The above-mentioned embodiment can also be configured to achieve various modifications by selectively combining all or part of each embodiment.
[0104] Although the embodiments of the present invention are described above with reference to the accompanying drawings, it is understood by those skilled in the art that the present invention can be implemented in other specific forms without changing its technical ideas or essential features. Therefore, the above embodiments are exemplary in all aspects and must be understood as non-restrictive.
Claims
1. A light-transmitting stone table, characterized in that: include: slate: a housing supporting the slab; as well as a light emitting unit located in the housing and transmitting light to the stone slab to make the stone slab emit light, The light emitting unit comprises: an LED module for projecting light onto said slate; A dimming controller connected to the LED module to adjust the amount of light output from the LED module; and The device is connected to the dimming controller and receives wireless signals through one or more communication modes such as RF, WIFI, Bluetooth, or IR to control the wireless control unit of the dimming controller.
2. The light-transmitting stone table according to claim 1, characterized in that: The light emitting unit is arranged at a distance of 5 mm to 200 mm from the bottom of the stone slab.
3. The light-transmitting stone table according to claim 1, characterized in that: Also includes: A bottom reflector plate disposed in the housing and mounting the light-emitting unit; as well as, An inclined reflector extending from the bottom reflector and tilted upward toward the stone slab to receive light reflected from the bottom reflector and then re-reflect the light toward the stone slab; The light emitting unit is configured to emit light toward the bottom reflective plate.
4. The light-transmitting stone table according to claim 1, characterized in that: Also includes: a rechargeable secondary battery for powering the light emitting unit; as well as An adapter is connected to the secondary battery and converts power supplied from an external power source into power having a voltage of 5V, 9V, 12V, or 24V and supplies the power to the secondary battery.
5. The light-transmitting stone table according to claim 1, characterized in that: Also includes: A bone conduction speaker detachably mounted on the stone plate to transmit vibration to the stone plate, causing the stone plate to vibrate and output sound, The housing comprises: a casing supporting said slab; an echo space formed in the housing and amplifying the sound output from the stone plate; and A sound output hole penetrates the housing and outputs the sound amplified by the echo space to the outside of the housing.
6. The light-transmitting stone table according to claim 1, characterized in that: Also includes: a thermoelectric module disposed between the bottom of the slab and the light-emitting unit; a blower disposed in the housing; as well as A fragrance storage box disposed on one side of the light-emitting unit; The electricity generated by the thermoelectric module is supplied to the blower, and the blower is configured to send air to the fragrance storage box.