Polarization scrambler based on fiber wave plates
20170261690 · 2017-09-14
Assignee
Inventors
Cpc classification
International classification
Abstract
A polarization scrambler based on fiber wave plates is disclosed. A λ/4 unit (2) is connected between a first polarization control unit (1) and a second polarization control unit (3) through single-mode fibers; a first motor (11) of the first polarization control unit (1) and a second motor (31) of the second polarization control unit (3) simultaneously forwardly and reversely swing in the range of +/−90°, such that polarization states in the system constantly change, for achieving the purpose of polarization disturbance. The polarization scrambler based on fiber wave plates provided by the present invention has low loss, good effect, low cost and simple structure, and is convenient for manufacturing. Its speed is up to milliseconds to meet demands of most optical fiber sensing systems and optical fiber communicating systems.
Claims
1. A polarization scrambler based on fiber wave plates, comprising a first polarization control unit (1), a λ/4 unit (2), and a second polarization control unit (3), wherein: the λ/4 unit (2) is connected between the first polarization control unit (1) and the second polarization control unit (3) through single-mode fibers; the λ/4 unit (2) is a λ/4 fiber wave plate (2); an output end (B1) of a first λ/2 fiber wave plate (12) of the first polarization control unit (1) is connected with an input end (A2) of the λ/4 fiber wave plate (2); an output end (B2) of the λ/4 fiber wave plate (2) is connected with an input end (A3) of a second λ/2 fiber wave plate (32) of the second polarization control unit (3); a first motor (11) of the first polarization control unit (1) and a second motor (31) of the second polarization control unit (3) forwardly and reversely swing to change a polarization direction of light in a system, so as to achieve a purpose of polarization disturbance.
2. The polarization scrambler based on the fiber wave plates, as recited in claim 1, wherein: the first polarization control unit (1) comprises the first motor (11) and the first λ/2 fiber wave plate (12); the first λ/2 fiber wave plate (12) is fixed within a hollow shaft (111) of the first motor (11); the second polarization control unit (3) comprises the second motor (31) and the second λ/2 fiber wave plate (32); the second λ/2 fiber wave plate (32) is fixed within a hollow shaft (311) of the second motor (31); the first polarization control unit (1) and the second polarization control unit (3) are same in structure.
3. The polarization scrambler based on the fiber wave plates, as recited in claim 1, wherein: the input end (A2) of the λ/4 fiber wave plate (2) is connected with the output end (B1) of the first λ/2 fiber wave plate (12) through single-mode fibers; the output end (B2) of the λ/4 fiber wave plate (2) is connected with the input end (A3) of the second λ/2 fiber wave plate (32) through single-mode fibers; the first λ/2 fiber wave plate (12) and the second λ/2 fiber wave plate (32) are same in structure; all the three fiber wave plates are made from a section of polarization-maintaining fiber.
4. The polarization scrambler based on the fiber wave plates, as recited in claim 2, wherein: the input end (A2) of the λ/4 fiber wave plate (2) is connected with the output end (B1) of the first λ/2 fiber wave plate (12) through single-mode fibers; the output end (B2) of the λ/4 fiber wave plate (2) is connected with the input end (A3) of the second λ/2 fiber wave plate (32) through single-mode fibers; the first λ/2 fiber wave plate (12) and the second λ/2 fiber wave plate (32) are same in structure; all the three fiber wave plates are made from a section of polarization-maintaining fiber.
5. The polarization scrambler based on the fiber wave plates, as recited in claim 1, wherein: the two motors (11, 31) simultaneously rotate within a range of +/−90°, an output polarization of a system is able to sweep polarization states in all directions so as to achieve a purpose of polarization disturbance; to achieve a best polarization disturbance effect, rotational frequencies f1 and f2 of the two motors (11, 31) with two hollow shafts (111, 311) meet a formula of f1−f2=1/T, here, f1 is a rotational frequency of the first motor (11) with the hollow shaft (111), f2 is a rotational frequency of the second motor (31) with the hollow shaft (311), T is an average time of the system.
6. The polarization scrambler based on the fiber wave plates, as recited in claim 2, wherein: the two motors (11, 31) simultaneously rotate within a range of +/−90°, an output polarization of a system is able to sweep polarization states in all directions so as to achieve a purpose of polarization disturbance; to achieve a best polarization disturbance effect, rotational frequencies f1 and f2 of the two motors (11, 31) with the hollow shafts (111, 311) meet a formula of f1−f2=1/T, here, f1 is a rotational frequency of the first motor (11) with the hollow shaft (111), f2 is a rotational frequency of the second motor (31) with the hollow shaft (311), T is an average time of the system.
7. The polarization scrambler based on the fiber wave plates, as recited in claim 3, wherein: the two motors (11, 31) simultaneously rotate within a range of +/−90°, an output polarization of a system is able to sweep polarization states in all directions so as to achieve a purpose of polarization disturbance; to achieve a best polarization disturbance effect, rotational frequencies f1 and f2 of the two motors (11, 31) with two hollow shafts (111, 311) meet a formula of f1−f2=1/T, here, f1 is a rotational frequency of the first motor (11) with the hollow shaft (111), f2 is a rotational frequency of the second motor (31) with the hollow shaft (311), T is an average time of the system.
8. The polarization scrambler based on the fiber wave plates, as recited in claim 4, wherein: the two motors (11, 31) simultaneously rotate within a range of +/−90°, an output polarization of a system is able to sweep polarization states in all directions so as to achieve a purpose of polarization disturbance; to achieve a best polarization disturbance effect, rotational frequencies f1 and f2 of the two motors (11, 31) with the hollow shafts (111, 311) meet a formula of f1−f2=1/T, here, f1 is a rotational frequency of the first motor (11) with the hollow shaft (111), f2 is a rotational frequency of the second motor (31) with the hollow shaft (311), T is an average time of the system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the present invention and the technical solutions, the drawings, which are to be used in the description of the embodiments or the prior arts, are briefly described as below. It will be apparent that the drawings in the following description are merely exemplary of the present invention and that other drawings may be obtained by those skilled in the art without departing from the inventive work.
[0020]
[0021]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0026] Referring to
[0027] The λ/4 unit 2 is connected between the first polarization control unit 1 and the second polarization control unit 3 through single-mode fibers.
[0028] In the present invention, the first polarization control unit 1 and the second polarization control unit 3 are same in structure.
[0029] In the present invention, the first λ/2 fiber wave plate 12 and the second λ/2 fiber wave plate 32 are same in structure.
[0030] The connection between the components is as follows. The first λ/2 fiber wave plate 12 of the first polarization control unit 1 is fixed inside the hollow shaft 111 of the first motor 11; an input end of the polarization scrambler is connected with an input end A1 of the first λ/2 fiber wave plate 12 through single-mode fibers; an output end B1 of the first λ/2 fiber wave plate 12 is connected with an input end A2 of the λ/4 fiber wave plate 2 through single-mode fibers; an output end B2 of the λ/4 fiber wave plate 2 is connected with an input end A3 of the second λ/2 fiber wave plate 32 of the second polarization control unit 3; an output end B3 of the second λ/2 fiber wave plate 32 is connected with the system.
[0031] As shown in
[0032] As shown in
[0033] Referring to
[0034] In the present invention,
[0035]
[0036] The basic principles, main features and advantages of the present invention have been shown and described above. It should be understood by those skilled in the art that the present invention is not limited by the above-described embodiments, and that the principles described in the foregoing examples and description are illustrative of the principles of the present invention, and that the present invention will be changed and improved without departing from the spirit and scope of the present invention, and that the changes and improvements will fall within the scope of the present invention as claimed. It is intended that the scope of the present invention be defined by the appended claims and their equivalents.