TWM470281U - Optical lens - Google Patents
Optical lens Download PDFInfo
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- TWM470281U TWM470281U TW102216395U TW102216395U TWM470281U TW M470281 U TWM470281 U TW M470281U TW 102216395 U TW102216395 U TW 102216395U TW 102216395 U TW102216395 U TW 102216395U TW M470281 U TWM470281 U TW M470281U
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Description
本新型係關於一種光學透鏡,尤指一種在光學透鏡的透鏡本體的外側面形成有複數個溝槽結構的光學透鏡。The present invention relates to an optical lens, and more particularly to an optical lens in which a plurality of groove structures are formed on the outer side surface of a lens body of an optical lens.
燈具常配置有反射杯或是準直透鏡來調整光源,以使光源可以更為有效的利用。Lamps are often equipped with reflector cups or collimating lenses to adjust the light source so that the light source can be used more efficiently.
一般的反射杯是藉由金屬材質製成,或是在一塑膠材質的本體部的一側電鍍一反射層,但前述這兩種製造方式都不夠簡便,以至於成本無法再降低。A typical reflector cup is made of a metal material or a reflective layer is plated on one side of a plastic body portion, but the above two manufacturing methods are not so simple, so that the cost can no longer be reduced.
準直透鏡包含一透鏡本體,透鏡本體包含入光面、出光面以及側面,其中側面係圍繞於透鏡本體的外圍。為了讓從入光面進入透鏡本體的光線可以在側面上產生全反射,依據光學原理,側面的傾斜角需要大於一定的角度,以致於,準直透鏡的整體外型設計會被侷限。The collimating lens comprises a lens body, and the lens body comprises a light incident surface, a light exit surface and a side surface, wherein the side surface surrounds the periphery of the lens body. In order to allow the light entering the lens body from the light entrance surface to generate total reflection on the side surface, according to the optical principle, the inclination angle of the side surface needs to be larger than a certain angle, so that the overall shape design of the collimator lens is limited.
為了解決先前技術所述的問題,本新型之一目的在於提供一種製程簡便,且外型設計具有較大自由度的光學透鏡。In order to solve the problems described in the prior art, it is an object of the present invention to provide an optical lens which is simple in process and has a large degree of freedom in design.
為達上述目的,本新型提供一種光學透鏡,此光學透鏡包含一透鏡本體以及複數個溝槽結構。透鏡本體包含一入光面、一出光面以及 一外側面,其中入光面和出光面係分別形成於透鏡本體的相異二側上,外側面係位於透鏡本體的外圍,其中外側面的相對二緣邊分別直接或間接連接入光面和出光面。複數個溝槽結構係形成於透鏡本體的外側面上,以使從入光面進入透鏡本體的一光線產生全反射,再從出光面射出透鏡本體。To achieve the above object, the present invention provides an optical lens comprising a lens body and a plurality of trench structures. The lens body includes a light incident surface, a light exit surface, and An outer side surface, wherein the light incident surface and the light exit surface are respectively formed on different sides of the lens body, and the outer side surface is located at a periphery of the lens body, wherein the opposite edge edges of the outer side surface are directly or indirectly connected to the light surface and Glossy. A plurality of trench structures are formed on the outer side surface of the lens body such that a light entering the lens body from the light incident surface is totally reflected, and then the lens body is emitted from the light exit surface.
根據本新型之一實施例,上述溝槽結構具有一第一表面和第二表面,且該第一表面和該第二表面之間具有一夾角。According to an embodiment of the present invention, the trench structure has a first surface and a second surface, and the first surface and the second surface have an included angle.
根據本新型之一實施例,上述夾角的角度係介於60至120度之間。According to an embodiment of the present invention, the angle of the above angle is between 60 and 120 degrees.
根據本新型之一實施例,上述夾角的角度係介於89至93度之間。According to an embodiment of the present invention, the angle of the above angle is between 89 and 93 degrees.
根據本新型之一實施例,上述溝槽結構形成複數個具有稜角之凸條。According to an embodiment of the present invention, the groove structure forms a plurality of ribs having an angular shape.
根據本新型之一實施例,上述入光面位於透鏡本體的中央部位。According to an embodiment of the present invention, the light incident surface is located at a central portion of the lens body.
根據本新型之一實施例,上述溝槽結構係呈以入光面之中心為軸心之發散狀。According to an embodiment of the present invention, the groove structure has a divergent shape centered on the center of the light incident surface.
根據本新型之一實施例,上述溝槽結構係呈以入光面之中心為軸心之輻射狀。According to an embodiment of the present invention, the groove structure is in a radial shape with the center of the light incident surface as an axis.
根據本新型之一實施例,上述透鏡本體呈碗狀。According to an embodiment of the present invention, the lens body is in the shape of a bowl.
根據本新型之一實施例,上述光學透鏡的折射率係介於1.3至1.7之間。According to an embodiment of the present invention, the optical lens has a refractive index of between 1.3 and 1.7.
因此應用本新型之實施例,除可使光源所發出的光線較為集 中之外,形成於透鏡本體的外側面上的複數個溝槽結構,可以大幅增加進入透鏡本體的光線產生全反射的機會,而具有使光線更為有效利用的光學效果。此外,透鏡本體外側面的傾斜角度可以有更大的範圍,從而增加光學透鏡的整體外型設計的自由度。Therefore, the embodiment of the present invention is applied, except that the light emitted by the light source can be set. In addition, a plurality of groove structures formed on the outer side surface of the lens body can greatly increase the chance of total reflection of light entering the lens body, and have an optical effect of making light more efficient. In addition, the angle of inclination of the outer side of the lens body can have a larger range, thereby increasing the degree of freedom of the overall design of the optical lens.
另一方面,本新型之光學透鏡係藉由形成於透鏡本體的外側面上的複數個溝槽結構來產生全反射,因此不需要另外設有反射層,也不需要以金屬材質來製造,而可以直接以射出成型製造,所以製程較一般反射杯來的簡便。因此,本新型之光學透鏡相較於反射杯,可大幅減少製造成本。On the other hand, the optical lens of the present invention generates total reflection by a plurality of groove structures formed on the outer surface of the lens body, so that it is not necessary to separately provide a reflective layer, and it is not required to be made of a metal material. It can be directly manufactured by injection molding, so the process is simpler than that of a general reflective cup. Therefore, the optical lens of the present invention can greatly reduce the manufacturing cost compared to the reflective cup.
1‧‧‧光學透鏡1‧‧‧ optical lens
11‧‧‧透鏡本體11‧‧‧ lens body
111‧‧‧入光面111‧‧‧Into the glossy surface
112‧‧‧出光面112‧‧‧Glossy
113‧‧‧外側面113‧‧‧Outside
12‧‧‧溝槽結構12‧‧‧ Groove structure
121‧‧‧凸條121‧‧ ‧ ribs
122‧‧‧第一表面122‧‧‧ first surface
123‧‧‧第二表面123‧‧‧ second surface
124‧‧‧夾角124‧‧‧ angle
2‧‧‧光線2‧‧‧Light
第1圖係本新型之光學透鏡之一實施方式的立體示意圖。Figure 1 is a perspective view of one embodiment of the optical lens of the present invention.
第2圖係本新型之光學透鏡之一實施方式的側視示意圖。Figure 2 is a side elevational view of one embodiment of the optical lens of the present invention.
第3圖係本新型之光學透鏡之一實施方式的剖視示意圖。Figure 3 is a schematic cross-sectional view showing one embodiment of the optical lens of the present invention.
第4圖係本新型之光學透鏡之一實施方式的俯視示意圖。Figure 4 is a top plan view of one embodiment of the optical lens of the present invention.
第5圖係本新型之光學透鏡之一實施方式的仰視示意圖。Figure 5 is a bottom plan view of one embodiment of the optical lens of the present invention.
第6圖係第1圖之局部放大示意圖。Fig. 6 is a partially enlarged schematic view of Fig. 1.
第7圖係本新型之光學透鏡之一實施方式在使用時的光跡示意圖。Figure 7 is a schematic view of the light trace of one embodiment of the optical lens of the present invention in use.
第8圖係本新型之光學透鏡之一實施方式在使用時的另一視角的光跡示意圖。Figure 8 is a schematic view of a light trace of another viewing angle of one embodiment of the optical lens of the present invention.
第9圖係本新型之光學透鏡之一實施方式在使用時的光跡示意圖。Figure 9 is a schematic view of a light trace of one embodiment of the optical lens of the present invention in use.
請參閱第1圖所示,在一實施方式中,本新型之光學透鏡1包含一透鏡本體11以及複數個溝槽結構12。在本實施方式中,光學透鏡1可用來調整燈具(圖未顯示)的光源(圖未顯示)所發出的光,且光學透鏡1為透明材質,在一實施例中,光學透鏡1的折射率係介於1.3至1.7之間。Referring to FIG. 1 , in an embodiment, the optical lens 1 of the present invention comprises a lens body 11 and a plurality of trench structures 12 . In the present embodiment, the optical lens 1 can be used to adjust the light emitted by a light source (not shown) of the luminaire (not shown), and the optical lens 1 is a transparent material. In one embodiment, the refractive index of the optical lens 1 The system is between 1.3 and 1.7.
請參閱第1圖至第3圖所示,透鏡本體11包含一入光面111、一出光面112以及一外側面113,其中入光面111和出光面112係分別形成於透鏡本體11的相異二側上,外側面113係位於透鏡本體11的外圍。在圖例中,外側面113的相對二緣邊113a、113b係分別間接連接入光面111和出光面112,但本新型之實施例不在此限,亦可為直接連接(圖未顯示)。Referring to FIG. 1 to FIG. 3 , the lens body 11 includes a light incident surface 111 , a light exit surface 112 , and an outer side surface 113 . The light incident surface 111 and the light exit surface 112 are respectively formed on the lens body 11 . On the opposite sides, the outer side 113 is located at the periphery of the lens body 11. In the illustrated example, the opposite side edges 113a, 113b of the outer side surface 113 are indirectly connected to the light surface 111 and the light exit surface 112, respectively, but the embodiment of the present invention is not limited thereto, and may be a direct connection (not shown).
請參閱第1圖至第5圖所示,在一實施例中,透鏡本體11呈碗狀。入光面111係位於透鏡本體11的中央部位,且為朝出光面112內凹之曲面。出光面112為朝入光面111內凹之圓弧面。Referring to FIGS. 1 to 5, in an embodiment, the lens body 11 has a bowl shape. The light incident surface 111 is located at a central portion of the lens body 11 and is a curved surface that is concave toward the light exit surface 112. The light-emitting surface 112 is a circular arc surface that is concave toward the light-incident surface 111.
如第1圖、第2圖與第5圖所示,在本實施方式中,複數個溝槽結構12係形成於透鏡本體11的外側面113上,且形成複數個具有稜角之凸條121。在圖例中,複數個溝槽結構12係呈以入光面111之中心為軸心之輻射狀。在一實施例中,複數個溝槽結構12也可呈以入光面111之中心為軸心之發散狀。As shown in FIG. 1, FIG. 2, and FIG. 5, in the present embodiment, a plurality of groove structures 12 are formed on the outer side surface 113 of the lens body 11, and a plurality of ribs 121 having an angular shape are formed. In the illustrated example, the plurality of trench structures 12 are radially radiated with the center of the light incident surface 111 as an axis. In an embodiment, the plurality of trench structures 12 may also have a divergent shape centered on the center of the light incident surface 111.
請參閱第6圖所示,在一實施例中,每一個溝槽結構12都具有一第一表面122和一第二表面123,且第一表面122和第二表面123之間具有一夾角124。在一實施例中,此夾角124的角度可介於89至93度之間。在一實施例中,此夾角124的角度也可介於60至120度之間。Referring to FIG. 6, in an embodiment, each of the trench structures 12 has a first surface 122 and a second surface 123, and the first surface 122 and the second surface 123 have an angle 124 therebetween. . In an embodiment, the angle of the included angle 124 can be between 89 and 93 degrees. In an embodiment, the angle of the included angle 124 can also be between 60 and 120 degrees.
請參閱第3圖與第6圖至第9圖所示,其中第7圖至第9圖係繪 製光學透鏡1在使用時的光跡示意圖。由圖式可知,從入光面111進入透鏡本體11的光線2可以藉由複數個溝槽結構12來產生全反射,再從出光面112射出透鏡本體11。由於每一個溝槽結構12都具有第一表面122和第二表面123,且第一表面122和第二表面123之間具有一夾角124,因此所有的溝槽結構12總共會具有多數個表面可供產生全反射。藉此,形成於透鏡本體11的外側面上的複數個溝槽結構12,可以大幅增加進入透鏡本體11的光線產生全反射的機會,而具有使光線更有效利用的光學效果。此外,透鏡本體11外側面的傾斜角度可以有更大的範圍,從而增加光學透鏡1的整體外型設計的自由度。Please refer to Figure 3 and Figure 6 to Figure 9, where Figures 7 to 9 are drawn A schematic diagram of the trace of the optical lens 1 when in use. As can be seen from the drawing, the light ray 2 entering the lens body 11 from the light incident surface 111 can be totally reflected by the plurality of groove structures 12, and the lens body 11 can be emitted from the light exit surface 112. Since each of the trench structures 12 has a first surface 122 and a second surface 123, and the first surface 122 and the second surface 123 have an included angle 124, all of the trench structures 12 have a plurality of surfaces in total. For total reflection. Thereby, the plurality of groove structures 12 formed on the outer side surface of the lens body 11 can greatly increase the chance of total reflection of light entering the lens body 11, and have an optical effect of making light more efficient. Further, the inclination angle of the outer side surface of the lens body 11 can have a larger range, thereby increasing the degree of freedom in the overall outer design of the optical lens 1.
另一方面,本新型之光學透鏡1係藉由形成於透鏡本體11的外側面113上的複數個溝槽結構12來產生全反射,因此不需要另外設有反射層,也不需要以金屬材質來製造,而可以直接以射出成型製造,所以製程較一般反射杯來的簡便。所以,本新型之光學透鏡1相較於反射杯可大幅減少成本。On the other hand, the optical lens 1 of the present invention generates total reflection by a plurality of groove structures 12 formed on the outer side surface 113 of the lens body 11, so that it is not necessary to provide a separate reflection layer or a metal material. It can be manufactured directly, but it can be directly manufactured by injection molding, so the process is simpler than that of a general reflective cup. Therefore, the optical lens 1 of the present invention can greatly reduce the cost compared with the reflective cup.
1‧‧‧光學透鏡1‧‧‧ optical lens
11‧‧‧透鏡本體11‧‧‧ lens body
111‧‧‧入光面111‧‧‧Into the glossy surface
12‧‧‧溝槽結構12‧‧‧ Groove structure
121‧‧‧凸條121‧‧ ‧ ribs
Claims (10)
Priority Applications (1)
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TW102216395U TWM470281U (en) | 2013-06-07 | 2013-08-30 | Optical lens |
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TW102211002 | 2013-06-07 | ||
TW102216395U TWM470281U (en) | 2013-06-07 | 2013-08-30 | Optical lens |
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TWM470281U true TWM470281U (en) | 2014-01-11 |
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TW102216395U TWM470281U (en) | 2013-06-07 | 2013-08-30 | Optical lens |
TW102131436A TW201447386A (en) | 2013-06-07 | 2013-08-30 | Optical lens |
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TW102131436A TW201447386A (en) | 2013-06-07 | 2013-08-30 | Optical lens |
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CN (2) | CN104235759A (en) |
TW (2) | TWM470281U (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
TWI678561B (en) * | 2019-03-13 | 2019-12-01 | 雷笛克光學股份有限公司 | Light mixing lens |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
TWM470281U (en) * | 2013-06-07 | 2014-01-11 | Ledlink Optics Inc | Optical lens |
CN104848096A (en) * | 2015-05-28 | 2015-08-19 | 成都斯科泰科技有限公司 | High-power LED (light emitting diode) lens integrated LED lamp |
CN106678736A (en) * | 2015-12-30 | 2017-05-17 | 佛山市中山大学研究院 | Tooth-shaped lens structure |
CN106764937A (en) * | 2015-12-30 | 2017-05-31 | 佛山市中山大学研究院 | A kind of convergence optical lens with dentalation |
CN106594674A (en) * | 2016-10-26 | 2017-04-26 | 佛山市中山大学研究院 | Collimating lens based on point light source |
Family Cites Families (8)
Publication number | Priority date | Publication date | Assignee | Title |
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JP4968784B2 (en) * | 2007-04-09 | 2012-07-04 | シチズン電子株式会社 | Optical member manufacturing method and lighting device manufacturing method |
JP5033545B2 (en) * | 2007-09-05 | 2012-09-26 | 株式会社日立製作所 | Video display device |
CN201787486U (en) * | 2010-04-01 | 2011-04-06 | 飞利浦(中国)投资有限公司 | Optical lens and illumination equipment utilizing same |
CN102748707B (en) * | 2011-04-21 | 2014-05-14 | 海洋王照明科技股份有限公司 | Floodlight total-reflection lens and LED (Light Emitting Diode) lamp using lens |
KR101241574B1 (en) * | 2011-07-18 | 2013-03-11 | 주식회사 필립인텍스 | Lighting apparatus |
CN102563526B (en) * | 2011-12-28 | 2014-08-20 | 东莞雷笛克光学有限公司 | Light-equalizing lens |
CN202521495U (en) * | 2012-03-26 | 2012-11-07 | 任超 | Backlight lens |
TWM470281U (en) * | 2013-06-07 | 2014-01-11 | Ledlink Optics Inc | Optical lens |
-
2013
- 2013-08-30 TW TW102216395U patent/TWM470281U/en not_active IP Right Cessation
- 2013-08-30 TW TW102131436A patent/TW201447386A/en unknown
- 2013-10-23 CN CN201310499544.2A patent/CN104235759A/en active Pending
- 2013-10-23 CN CN201320653088.8U patent/CN203549678U/en not_active Expired - Lifetime
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
TWI678561B (en) * | 2019-03-13 | 2019-12-01 | 雷笛克光學股份有限公司 | Light mixing lens |
Also Published As
Publication number | Publication date |
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CN203549678U (en) | 2014-04-16 |
TW201447386A (en) | 2014-12-16 |
CN104235759A (en) | 2014-12-24 |
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