MULTIPLE SUNLIGHT COLLECTION STRUCTURE
20170363782 · 2017-12-21
Inventors
Cpc classification
F24S23/71
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L31/0547
ELECTRICITY
F24S23/79
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/52
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F21S11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B19/0028
PHYSICS
International classification
F21S11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B19/00
PHYSICS
Abstract
The present invention relates to a method for collecting sunlight through an image method by tracking the sun using a dish-shaped light collector or a paraboloidal light collector and, and to a method and an apparatus for transmitting high-density light as the collected sunlight to a remote place, to which the light is applied, and for generating super-high-density light by combining, in a multi-stage manner, the high-density light obtained through a plurality of light collectors. A first concaveparaboloidal reflector of a paraboloidal light collection unit can collect light, transmit the collected light to the remote place, and provide an efficient and quantitative use environment to an applied device by using a paraboloidal reflector set including: a first concave-paraboloidal mirror in which a slope of a paraboloide is provided to make a narrow width so that downward reflection is greater than or equal to 90% by an angle between an incident angle at an inner point of a paraboloidal mirror and a normal surface, the angle being larger than a critical angle, and which has an opening formed at the lower side of a central axis thereof; and a second convex-paraboloidal reflector, which has a small diameter, shares a focus of the first concave-paraboloidal mirror, and has a miniaturized shape of the first concave-paraboloidal mirror at a focal portion without an opening at a central axis thereof.
Claims
1. Multiple sunlight collection structure, comprising a plurality of sunlight collecting structures and a sunlight collection unit, wherein a sunlight collecting structure transmits parallel light outside after the multiple sunlight collection structure collects sunlight by performing total reflection of sunlight in parallel and concentrating sunlight by combining multiple collected sunlight in a multistage manner, wherein the sunlight collecting structure transmits sunlight in parallel outside the multiple sunlight collection structure after collecting sunlight by performing total reflection and concentrating sunlight by combining collected sunlight in a multistage manner, wherein the sunlight collecting structure includes: a first paraboloidal reflector formed a inner peripheral surface of the first paraboloidal reflector, wherein an applied angle of the sunlight regarding respective point of the inner peripheral surface is larger than a threshold angle for applied sunlight to perform total reflection, and has a structure which a segment in which a tangent slope of paraboloidal surface is more than 40° maintains to 90% or more reflection; and a second paraboloidal reflector positioned inside the first paraboloidal reflector and sharing a same focus with the first paraboloidal reflector, and wherein the sunlight collecting structure has an opening of the first paraboloidal reflector, and the opening for transmitting sunlight totally reflected from the second paraboloidal reflector is formed at a lower portion of the first paraboloidal reflector, wherein the opening is equipped with a light transmitting pipe for transmitting sunlight collected through the first paraboloidal reflector and the second paraboloidal reflector, wherein the sunlight collection unit collects sunlight transmitted from a respective light transmitting pipe, and comprises a first paraboloidal mirror and a second paraboloidal mirror, wherein an optic pipe holder is formed in an upper opening of the first paraboloidal mirror, wherein the optic pipe holder has a plurality of pipe holes that insets and attaches a plurality of light pipe vertically, and at a central axis of the optic pipe holder, the second paraboloidal mirror is coupled and attached to a support, wherein the threshold angle is an angle when the applied angle of the sunlight performs total reflection.
2. The multiple sunlight collection structure of claim 1, wherein the sunlight collection unit comprises: a first paraboloidal mirror formed an inner peripheral surface of the first paraboloidal mirror, wherein an applied angle of the sunlight regarding respective point of the inner peripheral surface is larger than a threshold angle for applied sunlight to perform total reflection, the sunlight applied from a respective light transmitting pipe, and a second paraboloidal mirror positioned inside the first paraboloidal mirror and sharing a same focus with the first paraboloidal mirror.
3. The multiple sunlight collection structure of claim 2, wherein a second opening is formed at a lower portion of the sunlight collection unit, and the second opening is equipped with a second light transmitting pipe for transmitting sunlight collected through the first paraboloidal mirror and the second paraboloidal mirror.
4. The multiple sunlight collection structure of claim 3, wherein one or more joint portion is formed at one side of the second light transmitting pipe, and the joint portion is equipped with one or more reflector for reflected sunlight to perform total reflection.
5. The multiple sunlight collection structure of claim 4, wherein the joint portion of the second light transmitting pipe can rotate.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
BEST MODES FOR CARRYING OUT THE INVENTION
[0036] Hereinafter, an exemplary embodiment of the present invention will be described in detail with reference to the drawings.
[0037] Referring to
[0038] a light transmitting pipe 2 for transferring sunlight to another location; and
[0039] a sunlight collecting unit 3 for collecting sunlight at one location with a plurality of light transmitting pipes 2 and for forming the sunlight into one light.
[0040] When sunlight is reflected to a first paraboloidal reflector 1, by maintaining an applied angle to be larger than a threshold angle at a contact point, a paraboloid is formed to occur total reflection, and in a lower portion of the first paraboloidal reflector 1, a second paraboloidal reflector 4 for reflecting again reflected sunlight and transferring the sunlight to the light transmitting pipe 2 is formed.
[0041] The second aspheric reflector 15 shares a focus with the first paraboloidal reflector 1, has a reduced form, and reflects sunlight downward, when sunlight is applied to a lower side surface of the first paraboloidal reflector 1, and by forming an applied angle to be larger than a threshold angle, total reflection occurs, and thus a heat does not occur at the second paraboloidal reflector 4, whereby deformation and loss does not occur at the second aspheric reflector 15.
[0042] Further, in an upper end portion of the first paraboloidal reflector 1, a transparent body 5 formed with glass or a synthetic resin is mounted to prevent rainwater, dust, or a foreign substance from being injected to the inside and thus sunlight can be effectively collected.
[0043] As shown in
[0044] In the light transmitting pipe 2, a joint portion 7 is formed, the light transmitting pipe 2 can freely rotate, and in the joint portion 7, two reflectors 9 are mounted to form an applied angle to be larger than a threshold angle and thus total reflection occurs, and the joint portion 7 can rotate, and in a lower portion of the joint portion 7, a connection pipe 10 is formed.
[0045] The connection pipe 10 can change a direction while rotating.
[0046] When a plurality of joint portions are connected, sunlight can be transmitted in a vertical and lateral direction.
[0047] At one side of the light transmitting pipe 2, the sunlight block valve is installed, and thus when sunlight is unnecessary, by closing the sunlight block valve, sunlight is not passed through.
[0048] The sunlight block valve is mounted across the light transmitting pipe 2, and at one side thereof, a motor is formed, and by forming a penetration pipe and a block plate adjacent to the motor 21, while the sunlight block valve laterally moves by the motor, the sunlight block valve passes through or blocks sunlight.
[0049] Further, by mounting a sunlight sensor unit at one side of the sunlight block valve, the sunlight sensor unit determines whether sunlight passes through, and when a work is performed, the sunlight sensor unit can recognize the work.
[0050] In order to collect sunlight collected by two or more first paraboloidal reflectors 1 at one location through the light transmitting pipe 2, the sunlight collecting unit 3 is mounted in an intermediate portion.
[0051] In order to achieve the above object, in the sunlight collecting unit 3, in order to enable parts for reflecting applied sunlight to perform total reflection, a structure of the parts is formed so that an applied angle is larger than a threshold angle,
[0052] By enabling parts that receive sunlight of a high temperature for a long time to perform total reflection, a heat is not transferred to the parts, and in order to prevent a thermal loss, in order to maintain an applied angle to be larger than a threshold angle, a paraboloid is formed, and at the inside that shares a focus, the second paraboloidal reflector 4 is mounted, and at the central part side of the narrowing inside, a focus is shared and thus sunlight advances in one side direction.
[0053] the sunlight collecting unit 3 is a device for collecting sunlight separated into several sunlight at one location and integrating to one light and may be installed in several pieces.
[0054] When only one paraboloidal reflector 1 is used, the sunlight collecting unit 3 is unnecessary, and when two or more paraboloidal reflectors 1 are used, by connecting the two or more paraboloidal reflectors 1, the two or more paraboloidal reflectors 1 collects sunlight.
[0055]
[0056] The sunlight collection unit has a joint portion 7, a reflector 6, a pipe hole 26, a screw 27, and optical pipe holder 14, and a support 28.
[0057] In addition, a connection portion is formed integrally with the transmitting pipe combining light collecting device, and in order to a portion connected to the transmitting pipe combining light collecting device to perform total reflection, the connection portion enables a region having a slope of a contact point in which sunlight applied to a paraboloid reflects downward to exceed 90%.
[0058] Therefore, even when diffused reflection is applied to the transmitting pipe combining light collecting device 3, diffused reflection is emitted to a lower reflection port.
[0059] Further,
Modes for Carrying Out the Invention
[0060] Hereinafter, solving means of the present invention will be described in detail.
[0061] A paraboloid having a rapid second function value is formed so that a segment in which a tangent slope of a paraboloid of a first concave paraboloidal reflector is more than 40° becomes 90% or more, the first concave paraboloidal reflector has an opening in a lower portion of a focus, and a paraboloid condenser cell by coupling the first concave paraboloidal reflector and a wedge-shaped small second convex paraboloidal reflector formed in a lower portion of the inside of the first concave paraboloidal reflector while sharing the same focus is formed, a light pipe and light pipe elbow are coupled to a lower opening of a first condenser cell, the light pipe elbow forms a polygonal specular surface to emit light in one side direction, and a plurality of plane reflectors are coupled to a specular surface of a flexure portion, and by attaching a light pipe elbow for coupling a plurality of reflectors for reflecting sunlight in an applied angle and a light emitting angle larger than 45°, a first condenser cell is formed.
[0062] the first condenser cell forms a cover, and by transparently forming the cover, contamination of a reflector is prevented.
[0063] In an exemplary embodiment, as shown in
[0064] In this case, when metal reflection coating is performed in the second convex aspheric reflector formed alone at the center, reflected light under a focus is reflected to the light emitting port and thus light collecting efficiency is enhanced.
[0065] As a means for super highly concentrating concentration light by combining in Multiple each concentration light collected at the first condenser cells, a method of connecting a light applying elbow of the sunlight collecting unit 3 and a lower light pipe elbow of each condenser cell with a light transmitting pipe is performed.
[0066] A light pipe, which is a transmitting means uses a hollow pipe shape and is made of glass or a metal, an inner surface thereof is processed to have gloss, and a light pipe that enhances a reflectivity by coating a reflector to a transparent pipe with a mirror processing is used, and a common glass fiber or an optical fiber of a synthetic resin material is used.
[0067] A hollow multi pipe formed with at least twofold clothes may be used, and by forming an inside pipe to have a refractive index larger than that of an outside pipe, total reflection easily occurs.
[0068] Particularly, a heat withdrawal system light pipe is a light pipe in which a first pipe at innermost of a multi pipe is a hollow pipe and in which a second pipe is formed at an outer edge of the first pipe, and the light pipe is formed by filling a liquid between the inside first pipe and the outside second pipe and exchanges a heat by absorbing a heat lost when transmitting light.
[0069] As shown in
[0070] The second convex paraboloidal reflector 4 is characterized by screw combining to the support coupled and attached to a cover 14 and adjusting a focus position of the second convex paraboloidal reflector 4 and the first concave paraboloidal reflector 1 by adjusting a screw,
[0071] As an optical transmission means, a light pipe is made of a metal, glass, or an optical fiber, and at a cover of the glass pipe, a reflective glass pipe coated with a reflector may be used, and in a Multiple glass pipe, a medium having a high refractive index is used for an inside pipe of the inside pipe and an outside pipe, and thus this is similar to a state in which a pupil is formed at an inside core of an optical fiber.
[0072] In another exemplary embodiment, space is formed between an inside pipe and an outside pipe with a multi-pipe, and the multi-pipe is formed by filling a solvent at this space, and as a solvent absorbs an optical loss heat while transmitting, an additional waste heat withdrawal system that absorbs a heat of a solvent and that exchanges the heat is provided, and an inside light pipe is made of a dense material, and a medium of a solvent that encloses the light pipe is thin, and thus light is transmitted by total reflection.
[0073] Further, first, second, third, fourth, and fifth pipes for transmitting the sunlight have reflective optical paths, respectively and individually perform a rotation motion at a position of a horizontal axis and a vertical axis.
[0074] That is, an elbow for connecting the first, second, third, fourth, and fifth pipes is fixed, but the first, second, third, fourth, and fifth pipes horizontally and vertically connected about each elbow can perform a vertical and lateral rotation.
[0075] In this way, a light transmitting pipe 2 has a rotation bending portion, and the light transmitting pipe 2 having Multiple rotation bending portions at a connection portion thereof connects two or more of the elbow, i.e., a rotation bending portion at every predetermined distance upon a remote place piping, and each elbow mounts a reflector 130 at a bent corner, and an applied angle and a reflection angle of the reflector are installed to correspond to a central axis of the elbow, and by continuously installing a plurality of elbows, as needed, the light transmitting pipe 2 that can increase flexibility, absorptiveness of a displacement, and buffering power is a rotation bending pipe.
[0076] This is characterized by transmitting sunlight in all directions or in an extensile and contractile direction of a pipe by providing flexibility and absorptiveness of a displacement to the light transmitting pipe 2, when inducing sunlight transmitted as high density parallel light that maintains linearity to a remote place, even if sunlight is moved by the light transmitting pipe 2.
[0077] Here, the reason of providing flexibility and absorptiveness of a displacement to the light transmitting pipe 2 is to limit an angle range to an angle within 45° while giving a reflection angle of two times to a reflected light path of sunlight that maintains linearity in order to provide flexibility and absorptiveness of a displacement to the light transmitting pipe 2, when inducing sunlight transmitted as high density parallel light that maintains linearity to a remote place by moving by the light transmitting pipe for transmitting sunlight through the first, second, third, fourth, and fifth pipes formed in a condenser.
[0078] That is, by giving a reflection angle of two times to a light transmitting pipe for collecting and transmitting sunlight of the present invention, i.e., by giving a first reflection angle of 22.5° and giving again a second reflection angle of 22.5°, sunlight is reflected to the outside to an angle within entire 45° and thus total reflection of sunlight occurs.
INDUSTRIAL APPLICABILITY
[0079] Sunlight of a natural state can be collected to a desired density, and highly collected sunlight can be transmitted to a remote place, and this provides many application fields, and by transmitting sunlight while forming a network to a short distance and a remote place, natural lighting can be performed to a shadow location within a building or a deep location of underground, and when light is collected with a center concentration method and thermal conversion is performed, solar thermal power generation can be performed using a high temperature heat, and sunlight as a thermal energy source can be used in an industrial blast furnace and be applied to a heat for a chemical reaction process, i.e., the present invention can be applied to various fields.