TWI637604B - Optical fiber laser transmission system with laser light splitting device - Google Patents

Optical fiber laser transmission system with laser light splitting device Download PDF

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TWI637604B
TWI637604B TW105120859A TW105120859A TWI637604B TW I637604 B TWI637604 B TW I637604B TW 105120859 A TW105120859 A TW 105120859A TW 105120859 A TW105120859 A TW 105120859A TW I637604 B TWI637604 B TW I637604B
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light
housing
group
unit
reflection unit
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TW105120859A
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TW201801486A (en
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尤宏傑
賴昺丞
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聚威科技股份有限公司
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Abstract

本發明係一種具有雷射光分路裝置的光纖雷射傳輸系統,主要係由一雷射光分路裝置接收一雷射裝置發射的光線,並將光線透過一物鏡投射到一目標物上;該雷射光分路裝置包括一第一分光組、一組發射器、一組接收器以及一第二分光組,當該第一分光組將收到的光線反射至該組發射器,該組發射器透過光纖纜線將一組反射光傳送至該組接收器,該組接收器將收到的該組反射光透過該第二分光組集中為一輸出光線,並透過該物鏡將該輸出光線投射到該目標物;因此,本發明藉由上述雷射光分路裝置中所提供的光線傳輸路徑,能夠達到提升雷射傳輸距離的目的。The invention relates to a fiber laser transmission system with a laser light splitting device, which mainly receives a light emitted by a laser device by a laser light splitting device and projects the light through an objective lens onto a target; the mine The light-emitting splitting device includes a first beam splitting group, a group of emitters, a group of receivers, and a second beam splitting group. When the first beam splitting group reflects the received light to the group of emitters, the group of emitters transmits The fiber optic cable transmits a set of reflected light to the set of receivers, the set of receivers receive the received reflected light through the second beam splitting group as an output light, and the output light is projected through the objective lens The object; therefore, the present invention can achieve the purpose of increasing the laser transmission distance by the light transmission path provided in the above-described laser light branching device.

Description

具有雷射光分路裝置的光纖雷射傳輸系統Optical fiber laser transmission system with laser light splitting device

本發明係關於一種光纖雷射傳輸系統,尤指一種具有雷射光分路裝置的光纖雷射傳輸系統。 The present invention relates to a fiber laser transmission system, and more particularly to a fiber laser transmission system having a laser beam splitting device.

科技日新月異,在數位時代中利用光纖傳遞資訊已相當普遍,光纖通訊主要是將需傳送的資訊在傳送端輸入到傳送機中,將資訊疊加或調變到作為資訊訊號載體的載波上,然後將已調變的載波通過傳輸媒質傳送到遠處的接收端,因此具有傳輸容量大、保密性好等許多優點,使得光纖通訊已經成為當今最主要的有線通訊方式。 Technology is changing with each passing day. It is quite common to use optical fiber to transmit information in the digital age. Optical fiber communication mainly inputs information to be transmitted to the transmitter at the transmitting end, superimposes or modulates the information onto the carrier as the information signal carrier, and then The modulated carrier is transmitted to the remote receiving end through the transmission medium, so it has many advantages such as large transmission capacity and good confidentiality, so that optical fiber communication has become the most important wired communication method today.

現有技術中有一種光收發裝置,其同時發出光線以及接收光線,不同光線通過不同的光纖傳輸。又如我國發明專利權第I511477號「光收發裝置」(前案),其包括一光源模組、一鏡頭模組、一光分路器以及一光電轉換模組,該鏡頭模組包括一收容部,該收容部內具有三個透鏡以及該光分路器,當該光源模組發出一光束,並透過其中一透鏡進入該收容部,該光分路器引導該光束進入一光纖,並傳送至該光電轉換模組。 In the prior art, there is an optical transceiver that simultaneously emits light and receives light, and different light is transmitted through different optical fibers. Another example is the "light transceiver device" (previous case) of the invention patent No. I511477, which includes a light source module, a lens module, an optical splitter and a photoelectric conversion module, the lens module including a housing The accommodating portion has three lenses and the optical splitter. When the light source module emits a light beam and passes through one of the lenses into the accommodating portion, the optical splitter guides the light beam into an optical fiber and transmits the light beam to the optical fiber. The photoelectric conversion module.

由現有技術可知,不同光線必須通過不同的光纖傳輸、使用相當多的光分路器,構造較複雜,不僅體積增加、製造成本也升高,而前案為了節省空間,將使用的光學元件、多數透鏡整合在小體積中,但是為了節省空間,復雜的構造仍會失去光線傳輸路徑的設計彈性,更使得光線的傳輸距離受到限制,故現有技術仍有待進一步提出改良方案的必要性。 It can be known from the prior art that different light rays must be transmitted through different optical fibers and use a considerable number of optical splitters, and the structure is complicated, and the volume is increased and the manufacturing cost is also increased. In order to save space, the optical components to be used in the previous case, Most of the lenses are integrated in a small volume, but in order to save space, the complicated structure still loses the design flexibility of the light transmission path, and the transmission distance of the light is limited. Therefore, the prior art still needs to further propose the improvement scheme.

有鑑於上述現有技術之不足,本發明的主要目的係提供一種具有雷射光分路裝置的光纖雷射傳輸系統,係透過一雷射光分路裝置提供精簡、又具有設計彈性的光線傳輸路徑,以提升雷射光線的傳輸距離。 In view of the above-mentioned deficiencies of the prior art, the main object of the present invention is to provide a fiber laser transmission system having a laser light splitting device, which provides a streamlined and flexible design of a light transmission path through a laser light splitting device. Increase the transmission distance of laser light.

為達成上述目的,本發明所採取的主要技術手段係令前述具有雷射光分路裝置的光纖雷射傳輸系統包括:一物鏡;一雷射裝置,用以發射一光線;一雷射光分路裝置,其包括一第一分光組、一組發射器、一組接收器以及一第二分光組,該第一分光組與該組發射器連接,該組發射器透過一光纖纜線連接該組接收器,該組接收器與該第二分光組連接,該第一分光組係用以接收該雷射裝置發射的光線;其中,當該第一分光組將收到的光線反射至該組發射器,則該組發射器將一組反射光傳送至該組接收器,該組接收器將該組反射光透過該第二分光組集中為一輸出光線,並將該輸出光線透過該物鏡投射到一目標物上。 In order to achieve the above object, the main technical means adopted by the present invention is that the optical fiber laser transmission system having the laser light splitting device includes: an objective lens; a laser device for emitting a light; and a laser light splitting device. The method includes a first beam splitting group, a group of transmitters, a group of receivers, and a second beam splitting group. The first beam splitting group is connected to the group of transmitters, and the group of transmitters is connected to the group through a fiber optic cable. The set of receivers is coupled to the second beam splitting group, the first beam splitting group is configured to receive light emitted by the laser device; wherein, when the first beam splitting group reflects the received light to the set of emitters The set of transmitters transmits a set of reflected light to the set of receivers, the set of receivers converge the set of reflected light through the second beam splitting group into an output light, and the output light is projected through the objective lens to the On the target.

本發明藉由上述構造,由該雷射光分路裝置接收該雷射裝置發射的光線,並將光線透過該物鏡投射到該目標物上,尤其是該雷射光分路裝置係透過該第一分光組將收到的光線反射至該組發射器,該組發射器將該組反射光傳送至該組接收器,之後該組接收器再將該組反射光透過該第二分光組集中為該輸出光線,並將該輸出光線透過該物鏡投射至該目標物,藉由該雷射光分路裝置中所提供的光線傳輸路徑,能夠達到提升雷射傳輸距離的目的。 According to the above configuration, the laser light splitting device receives the light emitted by the laser device, and the light is transmitted through the objective lens to the target object, and in particular, the laser light splitting device transmits the first light splitting device. The group reflects the received light to the set of transmitters, the set of transmitters transmits the set of reflected light to the set of receivers, and then the set of receivers transmits the reflected light of the set through the second beam splitting group to the output The light is transmitted to the target through the objective lens, and the light transmission path provided in the laser light splitting device can achieve the purpose of increasing the laser transmission distance.

10‧‧‧雷射裝置 10‧‧‧ Laser device

21‧‧‧第一分光組 21‧‧‧First Beaming Group

211‧‧‧第一殼體 211‧‧‧ first housing

22‧‧‧發射器 22‧‧‧transmitter

23‧‧‧接收器 23‧‧‧ Receiver

24‧‧‧第二分光組 24‧‧‧Second Beaming Group

241‧‧‧第二殼體 241‧‧‧ second housing

25‧‧‧光纖纜線組 25‧‧‧Fiber Cable Set

26‧‧‧第一相位調整器 26‧‧‧First phase adjuster

27‧‧‧第二相位調整器 27‧‧‧Second phase adjuster

30‧‧‧物鏡 30‧‧‧ Objective lens

40‧‧‧目標物 40‧‧‧ Targets

圖1 係本發明一較佳實施例的系統架構圖。 1 is a system architecture diagram of a preferred embodiment of the present invention.

圖2 係本發明又一較佳實施例的系統架構圖。 2 is a system architecture diagram of still another preferred embodiment of the present invention.

圖3 係本發明另一較佳實施例的雷射光分路裝置方塊圖。 3 is a block diagram of a laser light splitting device in accordance with another preferred embodiment of the present invention.

關於本發明光纖雷射傳輸系統之一較佳實施例,請參考圖1所示,其包括一雷射裝置10、一雷射光分路裝置、一物鏡30以及一目標物40,其中該雷射裝置10係用以發射一光線,並由該雷射光分路裝置接收該雷射裝置10發射的光線,再將光線經反射分路後集中為一輸出光線,並透過該物鏡30投射到該目標物40上。 A preferred embodiment of the fiber laser transmission system of the present invention, as shown in FIG. 1, includes a laser device 10, a laser beam splitting device, an objective lens 30, and a target 40, wherein the laser The device 10 is configured to emit a light, and the light emitted by the laser device 10 is received by the laser light splitting device, and then the light is reflected and shunted to be concentrated into an output light, and is projected through the objective lens 30 to the target. On object 40.

該雷射光分路裝置包括一第一分光組21、一組發射器22、一組接收器23以及一第二分光組24,該第一分光組21與該組發射器22連接,該組發射器22透過一光纖纜線組25連接該組接收器23,該組接收器23與該第二分光組24連接,該第一分光組21係用以接收該雷射裝置10發射的光線,當該第一分光組21將收到的光線反射至該組發射器22,則該組發射器22將一組反射光透過該光纖纜線組25傳送至該組接收器23,該組接收器23將該組反射光透過該第二分光組24集中為一輸出光線,並由該第二分光組24將該輸出光線發射至該物鏡,再透過該物鏡30投射到該目標物40上,藉由該雷射光分路裝置所提供的光線傳輸路徑以提升雷射傳輸距離。 The laser beam splitting device comprises a first beam splitting group 21, a group of emitters 22, a group of receivers 23 and a second beam splitting group 24, the first beam splitting group 21 being connected to the group of emitters 22, the group of emitting beams The device 22 is connected to the set of receivers 23 through a fiber optic cable set 25, the set of receivers 23 is connected to the second beam splitter group 24, and the first beam splitter group 21 is configured to receive the light emitted by the laser device 10, when The first beam splitting group 21 reflects the received light to the set of emitters 22, and the set of emitters 22 transmits a set of reflected light through the fiber optic cable set 25 to the set of receivers 23, the set of receivers 23 The set of reflected light is concentrated into an output light through the second beam splitting group 24, and the output light is emitted from the second beam splitting group 24 to the objective lens, and then projected onto the target object 40 through the objective lens 30, by The light transmission path provided by the laser light splitting device increases the laser transmission distance.

於本較佳實施例中,該第一分光組21包括一第一殼體211、一第一主反射單元M0以及一第一次反射單元M1,該第一殼體211具有一光輸入端、二光輸出端,且該第一殼體211內形成一第一容置空間,該第一容置空間與該光輸入端、該等光輸出端連通;該組發射器22及該組接收器23的數量分別有二個。 In the preferred embodiment, the first beam splitting group 21 includes a first housing 211, a first main reflecting unit M0, and a first reflecting unit M1. The first housing 211 has a light input end. a first light receiving end, and a first receiving space is formed in the first housing 211, the first receiving space is in communication with the light input end and the light output ends; the set of emitters 22 and the set of receivers The number of 23 is two.

該第一主反射單元M0、該第一次反射單元M1係呈平行地設置於該第一殼體211的第一容置空間內,且該第一主反射單元M0、該第一次反射 單元M1分別傾斜一第一角度,以令該第一主反射單元M0對應該第一殼體211的光輸入端,並由該第一主反射單元M0接收該雷射裝置10發射的光線。 The first main reflection unit M0 and the first reflection unit M1 are disposed in parallel in the first accommodating space of the first housing 211, and the first main reflection unit M0, the first reflection The unit M1 is respectively inclined by a first angle so that the first main reflection unit M0 corresponds to the light input end of the first housing 211, and the light emitted by the laser device 10 is received by the first main reflection unit M0.

當該第一主反射單元M0將收到的光線分別反射至其中一光輸出端、該第一次反射單元M1,則該第一次反射單元M1係將收到的光線再反射至另一光輸出端,藉此令該第一分光組21透過該等光輸出端提供該組反射光給該組發射器22,並透過該光纖纜線組25將該組反射光傳送至該組接收器23,再由該組接收器23發送給該第二分光組24。 When the first main reflection unit M0 reflects the received light to one of the light output ends and the first reflection unit M1, the first reflection unit M1 reflects the received light to another light. The output end, thereby causing the first beam splitting group 21 to provide the set of reflected light to the set of emitters 22 through the light output ends, and transmitting the set of reflected light to the set of receivers 23 through the fiber optic cable set 25 And then sent to the second beam splitting group 24 by the set of receivers 23.

於本較佳實施例中,該第二分光組24包括一第二殼體241、一第二主反射單元N0以及一第二次反射單元N1,該第二殼體241具有二光輸入端、一光輸出端,且該第二殼體241內形成一第二容置空間,該第二容置空間與該等光輸入端、該光輸出端連通。 In the preferred embodiment, the second beam splitting unit 24 includes a second housing 241, a second main reflecting unit N0, and a second reflecting unit N1. The second housing 241 has two light input ends. A second output space is formed in the second housing 241, and the second receiving space is in communication with the optical input end and the light output end.

該第二主反射單元N0、該第二次反射單元N1係呈平行地設置於該第二殼體241的第二容置空間內,且該第二主反射單元N0、該第二次反射單元N1分別傾斜一第二角度,以令該第二主反射單元N0、該第二次反射單元N1分別對應該第二殼體241的該等光輸入端,並由該第二主反射單元N0對應該第二殼體241的光輸出端。 The second main reflection unit N0 and the second reflection unit N1 are disposed in parallel in the second accommodating space of the second housing 241, and the second main reflection unit N0 and the second reflection unit N1 is inclined to a second angle, respectively, so that the second main reflection unit N0 and the second reflection unit N1 respectively correspond to the optical input ends of the second housing 241, and the second main reflection unit N0 is The light output end of the second housing 241 should be used.

當該組接收器23將收到的該組反射光發送至該第二殼體241的該等光輸入端,該第二主反射單元N0、該第二次反射單元N1將該組反射光集中為該輸出光線,並由該第二殼體241的光輸出端將該輸出光線發射至該物鏡,再透過該物鏡30投射到該目標物40上。 When the set of receivers 23 sends the received reflected light to the optical input ends of the second housing 241, the second primary reflecting unit N0 and the second secondary reflecting unit N1 concentrate the reflected light of the group For this output light, the output light is emitted from the light output end of the second casing 241 to the objective lens, and then projected onto the target 40 through the objective lens 30.

於本較佳實施例中,該第一主反射單元M0、該第二主反射單元N0分別可由一半反光鏡(Half Reflector Mirror)所構成,其具有穿透半光、反射等作用;該第一次反射單元M1、該第二次反射單元N1可分別由一反光鏡 (Reflector Mirror)所構成;該組發射器22、該組接收器23可分別由一光準直器(Fiber Collimator)所構成。 In the preferred embodiment, the first main reflection unit M0 and the second main reflection unit N0 are respectively configured by a Half Reflector Mirror, which has a function of penetrating half light, reflecting, etc.; The secondary reflection unit M1 and the second reflection unit N1 are respectively configured by a mirror (Reflector Mirror); the set of transmitters 22, the set of receivers 23 can each be composed of a light collimator (Fiber Collimator).

關於本發明光纖雷射傳輸系統之又一較佳實施例,請參考圖2所示,本較佳實施例的主要技術內容與前一較佳實施例大致相同,惟本較佳實施例中,該第一殼體211可進一步具有多數的光輸出端、該第二殼體241可進一步具有多數的光輸入端、該組發射器22及該組接收器23的數量可分別有多數個;再者,該第一殼體211的第一容置空間內可進一步增設多數的第一次反射單元M1,Mm,Mn,該第二殼體241的第二容置空間內可進一步增設多數的第二次反射單元N1,Nm,Nn。 Referring to FIG. 2, the main technical content of the preferred embodiment is substantially the same as that of the previous preferred embodiment, but in the preferred embodiment, The first housing 211 can further have a plurality of light output ends, the second housing 241 can further have a plurality of light input ends, and the number of the set of transmitters 22 and the set of receivers 23 can be respectively a plurality; A plurality of first-time reflection units M1, Mm, and Mn may be further added to the first accommodating space of the first casing 211, and a plurality of the second 241 may be further added to the second accommodating space. Secondary reflection unit N1, Nm, Nn.

於本較佳實施例中該光纖纜線組25包括多數的光纖纜線,如圖2所示,當使用n+1條光纖纜線(n為正整數),則該第一主反射單元M0、該第二主反射單元N0可分別為n/(n+1)之反射率的反射鏡,意即,當使用3條光纖纜線時則該第一主反射單元M0為2/3的反射鏡,2/3的反射鏡代表其具有2/3的反射效果、1/3的穿透效果。其中,n是第一次反射單元的數量,是第一次反射單元所連接的光纖纜線的數量,也是第二次反射單元的數量,且第一次反射單元的數量對應第二次反射單元的數量,也對應所連接的光纖纜線的數量。 In the preferred embodiment, the fiber optic cable set 25 includes a plurality of fiber optic cables. As shown in FIG. 2, when n+1 fiber optic cables (n is a positive integer) are used, the first main reflection unit M0. The second main reflection unit N0 can be a mirror of n/(n+1) reflectivity, that is, when the three optical fiber cables are used, the first main reflection unit M0 is 2/3 of the reflection. The mirror, 2/3 mirror represents 2/3 reflection and 1/3 penetration. Where n is the number of first reflection units, is the number of optical fiber cables connected to the first reflection unit, and is also the number of second reflection units, and the number of first reflection units corresponds to the second reflection unit The number also corresponds to the number of fiber optic cables connected.

再如圖2、3所示,該等第一次反射單元M1、Mm、Mn以及該等第二次反射單元N1、Nm、Nn,其中的m為M0~Mn或N0~Nn之間依序設置的反射鏡的排列序號,且m為0<m≦n的正整數,每一個Mm、Nm的反射率皆為1/(n-m+1)計算式計算得到,Mn、Nn即是當n=m的時候為全反射的反射鏡。 2 and 3, the first reflection units M1, Mm, Mn and the second reflection units N1, Nm, Nn, wherein m is between M0~Mn or N0~Nn Set the array number of the mirror, and m is a positive integer of 0 < m ≦ n, the reflectivity of each Mm, Nm is calculated by 1 / (n - m + 1) calculation formula, Mn, Nn is when When n=m, it is a totally reflective mirror.

關於本發明光纖雷射傳輸系統之另一較佳實施例,請參考圖3所示,本較佳實施例的主要技術內容與上述各個較佳實施例大致相同,惟本較佳實施例中,該第一分光組21更包括一第一相位調整器26、一第二相位調整器27,該第一相位調整器26係設置在該第一次反射單元M1與前述其中一光輸出端 之間,該第二相位調整器27係設置在該第一主反射單元M0與前述另一光輸出端之間,該第一分光組21透過該第一相位調整器26、該第二相位調整器27能調整不同光線之光波交會的相位差距,使能量不會衰減。 Referring to FIG. 3, the main technical content of the preferred embodiment is substantially the same as the above preferred embodiments, but in the preferred embodiment, the preferred embodiment of the optical fiber laser transmission system of the present invention is shown in FIG. The first beam splitter 21 further includes a first phase adjuster 26 and a second phase adjuster 27, and the first phase adjuster 26 is disposed on the first reflection unit M1 and one of the light output ends. The second phase adjuster 27 is disposed between the first main reflection unit M0 and the other light output end. The first beam splitter 21 passes through the first phase adjuster 26 and the second phase adjuster. The device 27 can adjust the phase difference of the light waves of different light rays so that the energy does not decay.

於本較佳實施例中,該第一相位調整器26、該第二相位調整器27可分別由一光學路徑差微調模組(Optical Path Difference Fine Tuning Module)所構成。 In the preferred embodiment, the first phase adjuster 26 and the second phase adjuster 27 are respectively configured by an optical path difference fine tuning module (Optical Path Difference Fine Tuning Module).

Claims (2)

一種光纖雷射傳輸系統,其包括:一物鏡;一雷射裝置,用以發射一光線;一雷射光分路裝置,接收該雷射裝置發射的光線,將光線經反射分路後集中為一輸出光線,並透過該物鏡投射到該目標物上;其中該雷射光分路裝置包括:一第一分光組,接收該雷射裝置發射的光線,並將收到的光線反射分路為一組反射光;一組發射器,與該第一分光組連接,並將該組反射光發射出去;一組接收器,透過一光纖纜線組連接該組發射器,該組接收器透過該光纖纜線組接收該組反射光;一第二分光組,與該組接收器連接並接收該組反射光,該第二分光組將該組反射光集中為該輸出光線並發射至該物鏡;該第一分光組包括一第一殼體、一第一主反射單元以及一個以上的第一次反射單元,該第一殼體具有一光輸入端、二個以上的光輸出端,且該第一殼體內形成一第一容置空間,該第一容置空間與該光輸入端、該等光輸出端連通,該第一主反射單元、該第一次反射單元係設於該第一殼體的第一容置空間內,該第一主反射單元對應該第一殼體的光輸入端,並由該第一主反射單元接收該雷射裝置發射的光線;該第一主反射單元將收到的光線分別反射至其中一光輸出端、該第一次反射單元,則該第一次反射單元係將收到的光線再反射至另一光輸出端;該第二分光組包括一第二殼體、一第二主反射單元以及一個以上的第二次反射單元,該第二殼體具有二個以上的光輸入端、一光輸出端,且該第二殼體 內形成一第二容置空間,該第二容置空間與該等光輸入端、該光輸出端連通,該第二主反射單元、該第二次反射單元係設於該第二殼體的第二容置空間內,該第二主反射單元、該第二次反射單元分別對應該第二殼體的該等光輸入端,並由該第二主反射單元對應該第二殼體的光輸出端;該組接收器將收到的該組反射光發送至該第二殼體的該等光輸入端,該第二主反射單元、該第二次反射單元將該組反射光集中為該輸出光線;該光纖纜線組包括多數的光纖纜線,當使用n+1條光纖纜線(n為正整數),則該第一主反射單元、該第二主反射單元可分別為n/(n+1)之反射率的反射鏡;其中,n為第一次反射單元的數量對應第二次反射單元的數量,以及光纖纜線的數量;該第一殼體進一步具有多數的光輸出端、該第二殼體可進一步具有多數的光輸入端、該組發射器及該組接收器的數量分別有多數個;該第一殼體的第一容置空間內進一步增設多數的第一次反射單元,該第二殼體的第二容置空間內進一步增設多數的第二次反射單元;該等第一次反射單元以及該等第二次反射單元分別為依序設置的反射鏡,且m為0<m≦n的正整數,其中m為各該第一次反射單元或各該第二次反射單元的排列序號,每一個次反射單元的反射率皆為1/(n-m+1)的計算式計算所得,當n=m的時候為次反射單元是全反射的反射鏡;該第一分光組更包括多數第一相位調整器、一第二相位調整器,該等第一相位調整器、該第二相位調整器係分別設在該第一分光組與該組發射器之間。 An optical fiber laser transmission system comprising: an objective lens; a laser device for emitting a light; and a laser light splitting device for receiving light emitted by the laser device, and concentrating the light into a light after being reflected and shunted Outputting light and projecting onto the target through the objective lens; wherein the laser light splitting device comprises: a first beam splitting group, receiving light emitted by the laser device, and reflecting the received light into a group a set of emitters coupled to the first beam splitting group and transmitting the set of reflected light; a set of receivers connected to the set of transmitters through a fiber optic cable set, the set of receivers passing through the fiber optic cable The line group receives the set of reflected light; a second beam splitting group is coupled to the set of receivers and receives the set of reflected light, and the second beam splitting group concentrates the set of reflected light into the output light and transmits to the objective lens; A light splitting group includes a first housing, a first main reflecting unit and one or more first reflecting units, the first housing has a light input end, two or more light output ends, and the first shell Forming a body The first accommodating unit is connected to the light input end and the light output end, and the first primary reflecting unit and the first reflecting unit are disposed in the first accommodating space of the first housing. The first main reflection unit corresponds to the light input end of the first housing, and the first main reflection unit receives the light emitted by the laser device; the first main reflection unit reflects the received light to the respective In one of the light output ends, the first reflecting unit, the first reflecting unit reflects the received light to the other light output end; the second beam splitting group includes a second casing and a second a main reflection unit and one or more second reflection units, the second housing has two or more light input ends, a light output end, and the second housing Forming a second accommodating space, the second accommodating space is connected to the light input end and the light output end, and the second main reflecting unit and the second reflecting unit are disposed on the second housing In the second accommodating space, the second main reflection unit and the second reflection unit respectively correspond to the light input ends of the second housing, and the second main reflection unit corresponds to the light of the second housing The set of receivers sends the received reflected light to the optical input ends of the second housing, and the second primary reflecting unit and the second reflecting unit concentrate the reflected light of the group Outputting light; the fiber optic cable set includes a plurality of fiber optic cables. When n+1 fiber optic cables are used (n is a positive integer), the first main reflection unit and the second main reflection unit may be respectively n/ a reflector of (n+1) reflectivity; wherein n is the number of first-time reflection units corresponding to the number of second-time reflection units, and the number of optical fiber cables; the first housing further has a plurality of light outputs The second housing may further have a plurality of optical input terminals, the set of transmitters, and the There are a plurality of receivers respectively; a plurality of first reflection units are further added to the first housing space of the first housing, and a second of the second housing space is further added for the second time. a reflection unit; the first reflection unit and the second reflection units are respectively arranged mirrors, and m is a positive integer of 0<m≦n, where m is each of the first reflection units or The arrangement number of each of the second reflection units is calculated by a calculation formula of 1/(n-m+1) of the reflectance of each sub-reflection unit, and the total reflection unit is totally reflective when n=m. The first beam splitter further includes a plurality of first phase adjusters and a second phase adjuster, wherein the first phase adjusters and the second phase adjusters are respectively disposed in the first beam splitting group and the group Between the transmitters. 一種雷射光分路裝置,其包括:一第一分光組;一組發射器,係與該第一分光組連接;一組接收器,係透過一光纖纜線組與該發射器連接; 一第二分光組,係與該組接收器連接;其中,由該第一分光組接收一光線,並將收到的光線反射分路為一組反射光,再透過該第二分光組集中為該輸出光線,並由該第二分光組將該輸出光線發射至一物鏡;該第一分光組包括一第一殼體、一第一主反射單元以及一個以上的第一次反射單元,該第一殼體具有一光輸入端、二個以上的光輸出端,且該第一殼體內形成一第一容置空間,該第一容置空間與該光輸入端、該等光輸出端連通,該第一主反射單元、該第一次反射單元係設於該第一殼體的第一容置空間內,該第一主反射單元對應該第一殼體的光輸入端,並由該第一主反射單元接收該雷射裝置發射的光線;該第一主反射單元將收到的光線分別反射至其中一光輸出端、該第一次反射單元,則該第一次反射單元係將收到的光線再反射至另一光輸出端;該第二分光組包括一第二殼體、一第二主反射單元以及一個以上的第二次反射單元,該第二殼體具有二個以上的光輸入端、一光輸出端,且該第二殼體內形成一第二容置空間,該第二容置空間與該等光輸入端、該光輸出端連通,該第二主反射單元、該第二次反射單元係設於該第二殼體的第二容置空間內,該第二主反射單元、該第二次反射單元分別對應該第二殼體的該等光輸入端,並由該第二主反射單元對應該第二殼體的光輸出端;該組接收器將收到的該組反射光發送至該第二殼體的該等光輸入端,該第二主反射單元、該第二次反射單元將該組反射光集中為該輸出光線;該光纖纜線組包括多數的光纖纜線,當使用n+1條光纖纜線(n為正整數),則該第一主反射單元、該第二主反射單元可分別為n/(n+1)之反射率的反射鏡;其中,n為第一次反射單元的數量對應第二次反射單元的數量,以及光纖纜線的數量; 該第一殼體進一步具有多數的光輸出端、該第二殼體可進一步具有多數的光輸入端、該組發射器及該組接收器的數量分別有多數個;該第一殼體的第一容置空間內進一步增設多數的第一次反射單元,該第二殼體的第二容置空間內進一步增設多數的第二次反射單元;該等第一次反射單元以及該等第二次反射單元分別為依序設置的反射鏡,且m為0<m≦n的正整數,其中m為各該第一次反射單元或各該第二次反射單元的排列序號,每一個次反射單元的反射率皆為1/(n-m+1)的計算式計算所得,當n=m的時候為次反射單元是全反射的反射鏡;該第一分光組更包括多數第一相位調整器、一第二相位調整器,該等第一相位調整器、該第二相位調整器係分別設在該第一分光組與該組發射器之間。 A laser light splitting device comprising: a first beam splitting group; a set of emitters connected to the first beam splitting group; and a set of receivers connected to the emitter through a fiber optic cable set; a second beam splitting group is connected to the set of receivers; wherein, the first beam splitting group receives a light beam, and reflects the received light into a group of reflected light, and then transmits the second beam splitting group to The output light is emitted by the second beam splitting group to an objective lens; the first beam splitting group includes a first housing, a first main reflecting unit and one or more first reflecting units, the first light reflecting unit A housing has a light input end and two or more light output ends, and a first accommodating space is formed in the first housing, and the first accommodating space is connected to the light input end and the light output ends. The first main reflection unit and the first reflection unit are disposed in the first accommodating space of the first housing, and the first main reflection unit corresponds to the light input end of the first housing, and the first main reflection unit a main reflection unit receives the light emitted by the laser device; the first main reflection unit respectively reflects the received light to one of the light output ends, and the first reflection unit, and the first reflection unit receives The reflected light is reflected back to the other light output; the first The beam splitting group includes a second housing, a second main reflecting unit and one or more second reflecting units, the second housing has two or more light input ends, a light output end, and the second housing Forming a second accommodating space, the second accommodating space is in communication with the optical input end and the light output end, and the second main reflecting unit and the second reflecting unit are disposed in the second housing In the two accommodating spaces, the second main reflection unit and the second reflection unit respectively correspond to the optical input ends of the second housing, and the second main reflection unit corresponds to the light output of the second housing Receiving the received reflected light of the group to the optical input ends of the second casing, the second primary reflecting unit and the second reflecting unit concentrating the reflected light of the group into the output The fiber optic cable set includes a plurality of fiber optic cables. When n+1 fiber optic cables are used (n is a positive integer), the first main reflection unit and the second main reflection unit may be n/( a reflection mirror of n+1); wherein n is the number of first reflection units corresponding to the second The number of secondary reflection units, as well as the number of fiber optic cables; The first housing further has a plurality of light output ends, the second housing further has a plurality of light input ends, and the plurality of sets of the transmitters and the set of receivers are respectively; the first housing a plurality of first reflection units are further added to the accommodating space, and a plurality of second reflection units are further added to the second accommodating space of the second housing; the first reflection units and the second time The reflecting units are respectively arranged mirrors, and m is a positive integer of 0<m≦n, where m is an array number of each of the first reflecting units or each of the second reflecting units, and each secondary reflecting unit The reflectance is calculated by a calculation formula of 1/(n-m+1). When n=m, the secondary reflection unit is a total reflection mirror; the first beam splitter further includes a plurality of first phase adjusters. a second phase adjuster, the first phase adjuster and the second phase adjuster are respectively disposed between the first beam splitting group and the set of emitters.
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