Optical module package
10088631 ยท 2018-10-02
Assignee
Inventors
Cpc classification
G02B6/3616
PHYSICS
International classification
Abstract
An optical module package has a first case, a second case and a fiber unit. The first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part formed on the case bottom-part so as to project toward inside direction of the first case and an elastic support part made of elastic member and covering the bottom convex-part. The optical waveguide device is supported by the elastic support part and the optical fiber is arranged at the distant position from the elastic support part.
Claims
1. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, the elastic support part being unified with the bottom convex-part by filling material into an area underneath the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a position from the elastic support part.
2. The optical module package according to claim 1, wherein the bottom convex-part has a top-end-part projecting most inside the first case, a part of the elastic support part is arranged between the top-end-part and the optical waveguide device.
3. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a distant position from the elastic support part, wherein two side bottom convex-parts together with the bottom convex-part are arranged in three locations including both sides along with the length direction of the first case and about the center of the first case, and the elastic support part covers the bottom convex-part arranged in about the center, wherein the first case further comprises side elastic support parts, made of elastic member, which cover the two side bottom convex-parts arranged in the both sides of the first case.
4. The optical module package according to claim 2, wherein the bottom convex-part has a slanting-side-part which connects the top-end-part and the case bottom-part, wherein the slanting-side-part is formed so that an interior angle between the slanting-side-part and the case bottom-part is an acute angle.
5. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a distant position from the elastic support part, wherein the bottom convex-part has a top-end-part projecting most inside the first case, a part of the elastic support part is arranged between the top-end-part and the optical waveguide device, wherein the bottom convex-part has a slanting-side-part which connects the top-end-part and the case bottom-part, wherein the slanting-side-part is formed so that an interior angle between the slanting-side-part and the case bottom-part is an acute angle, wherein a hole part is formed at the top-end-part or the slanting-side-part of the bottom convex-part, wherein the elastic support part has an elastic slanting-side-part corresponding to the slanting-side-part, and the elastic support part is unified with the bottom convex-part by injection molding via the hole part.
6. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a distant position from the elastic support part, wherein the first case has an opening, via which a part of the case bottom-part is opened, formed in a position adjacent to the bottom convex-part, wherein the elastic support part is unified with the bottom convex-part by injection molding via the opening.
7. The optical module package according to claim 3, wherein a hole part is formed at the case bottom-part of the first case, wherein the elastic support part and the side elastic support parts are unified with the bottom convex-part and the two side bottom convex-parts by injection molding via the hole parts.
8. The optical module package according to claim 1, wherein the second case has a case peak-part formed along the length direction of the fiber unit, a peak convex-part formed on the case peak-part so as to project toward inside direction of the second case and an elastic cover part made of elastic member and covering the peak convex-part, wherein the optical waveguide device is in contact with the elastic cover part and the optical fiber is arranged at another distant position from the elastic cover part.
9. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a distant position from the elastic support part, wherein the second case has a case peak-part formed along the length direction of the fiber unit, a peak convex-part formed on the case peak-part so as to project toward inside direction of the second case and an elastic cover part made of elastic member and covering the peak convex-part, wherein the optical waveguide device is in contact with the elastic cover part and the optical fiber is arranged at another distant position from the elastic cover part, wherein the peak convex-part and two side peak convex-parts are arranged in three locations including both sides along with the length direction of the second case and about the center of the second case, and the elastic cover part covers the peak convex-part arranged in about the center, wherein the second case further comprises side elastic cover parts, made of elastic member, which cover the two side peak convex-parts arranged in the both sides.
10. The optical module package according to claim 9, wherein the side elastic cover parts have fiber concave parts formed with shape corresponding to the optical fiber.
11. An optical module package in which an optical waveguide device formed with an optical waveguide and an optical fiber are accommodated in a housing, the housing comprising: a first case which a fiber unit is accommodated, the fiber unit is constituted by connecting the optical fiber with the optical waveguide device; and a second case which covers the first case; wherein the first case has a case bottom-part formed along the length direction of the fiber unit, a bottom convex-part being formed on the case bottom-part so as to project toward inside direction of the first case, and an elastic support part made of an elastic member and covering the bottom convex-part, wherein the optical waveguide device is supported by the elastic support part and the optical fiber is arranged at a distant position from the elastic support part, wherein the second case has a case peak-part formed along the length direction of the fiber unit, a peak convex-part formed on the case peak-part so as to project toward inside direction of the second case and an elastic cover part made of elastic member and covering the peak convex-part, wherein the optical waveguide device is in contact with the elastic cover part and the optical fiber is arranged at another distant position from the elastic cover part, wherein the peak convex-part has a cover top-end-part projecting most inside the second case and a cover slanting-side-part connecting the cover top-end-part and the case peak-part, wherein the cover slanting-side-part is formed so that an interior angle between the cover slanting-side-part and the case peak-part is an acute angle.
12. The optical module package according to claim 11, wherein the elastic cover part has an elastic cover slanting-side-part corresponding to the cover slanting-side-part, and the elastic cover part is unified with the peak convex-part.
13. The optical module package according to claim 11, wherein a hole part is formed at the cover top-end-part or the cover slanting-side-part of the peak convex-part, wherein the elastic cover part is unified with the peak convex-part by injection molding via the hole part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(24) In the following, embodiments of the present invention will be described with reference to the drawings. Note that the same components will be referred to with the same numerals or letters, while omitting their overlapping descriptions.
(25) (Structures of Optical Module Package)
(26) To begin with, the structure of an optical module package 100 according to the embodiment of the present invention will be explained with reference to
(27) The optical module package 100 comprises the housing 11 and the fiber unit 40. The housing 11 comprises the bottom case 1 being the first case and the cover case 21 being the second case. The fiber unit 40 is accommodated inside the housing 11. On that occasion, though the later-described optical waveguide device 41 of the fiber unit 40 is supported by the later-described elastic support part 5 and elastic cover part 25, an optical fiber member 42 and a tape-shaped optical fiber member 43 are not supported by the elastic support part 5 and elastic cover part 25.
(28) In the optical module package 100, as elastic member which supports the optical waveguide device 41, only the elastic support part 5 and elastic cover part 25 are provided. Therefore, the volume of elastic member which supports the optical waveguide device 41 is reduced than the case which the elastic member is arranged in the whole in the length direction of the bottom case 1 and the cover case 21. Then, the volume of elastic member, expanding or shrinking caused by the temperature-humidity cycle, become small. Accordingly, not only the vibration and shock, which reaches the fiber unit 40 are decreased but also increase of the transformation, breakage and insertion loss of the fiber unit 40 is suppressed.
(29) The bottom case 1 is a U-figure like body which is formed of metal or plastic and formed in an almost U-figure shape. The bottom case 1 has, as illustrated in
(30) The case bottom-part 1a is formed along with the length direction of the fiber unit 40, and the bottom wall parts 1b, 1c are formed on the both sides of the width direction. Three locking concave parts 2, 3 are respectively formed on the bottom wall parts 1b, 1c. Further, lower wall parts 1d, 1d are arranged respectively on both sides of the bottom wall parts 1b, 1c along with the length direction. The lower wall parts 1d, 1d are formed lower than the intermediate parts of them. The side elastic support parts 6, 7 are arranged between the lower wall parts 1d, 1d of the bottom wall parts 1b and the lower wall parts 1d, 1d of the bottom wall parts 1c.
(31) The bottom case 1 has a width (short side width) in a direction along a short side inside the case bottom-part 1a (the direction along the short side is also referred to as a short side direction) set to L. Further, the bottom case 1 has a length enough to accommodate a later-described optical fiber member 42 and so on of the fiber unit 40 with a predetermined length.
(32) As illustrated in
(33) The respective bottom convex-part 4 is formed by partial projection and so on of the case bottom-part 1a from outside to inside (see in detail
(34) The top-end-part 4a projects most inside the bottom case 1, and it is formed approximately rectangular flat shape. The slanting-side-parts 4b, 4b are parts which connects the top-end-part 4a and the case bottom-part 1a, and they are formed with slanting condition which the interior angle 1, 2 between the slanting-side-parts 4b, 4b and the case bottom-part 1a are acute angles, as illustrated in
(35) The elastic support part 5, the side elastic support parts 6, 7 are formed using soft members with rubber elasticity. For example, the elastic support part 5, side elastic support parts 6, 7 can be formed using rubbers such as chloroprene rubber, butyl rubber, chlorosulfonation polyethylene rubber, ethylene propylene rubber, acrylonitrile rubber, polysulfide rubber, natural rubber used as industrial rubber packing materials, and other silicon rubber, fluorine-containing rubber, polyacrylic rubber, polyurethane rubber and the like.
(36) The elastic support part 5, side elastic support parts 6, 7 cover the respective whole surfaces of the bottom convex-parts 4S, 4A, 4B. The elastic support part 5, side elastic support parts 6, 7 are arranged at the three positions of both sides along with the length direction and the approximate center of the length direction of the case bottom-part 1a. The elastic support part 5, side elastic support parts 6, 7 contact the surfaces of the bottom convex-parts 4S, 4A, 4B without gap. The elastic support part 5, side elastic support parts 6, 7 have a unified structure which they are respectively unified with the bottom convex-parts 4S, 4A, 4B. The elastic support part 5, side elastic support parts 6, 7 are formed separately without mutual contacts.
(37) The elastic support part 5, side elastic support parts 6, 7 are manufactured by injection molding via the hole parts 4c, for example. In this case, not-illustrated predetermined molding boxes are arranged on the case bottom-part 1a so as to surround the respective bottom convex-parts 4S, 4A, 4B. Subsequently, melted material is injected from the hole parts 4c (and/or opening 1e). After that, when the bottom case 1 is cooled down to be stiffened, the elastic support part 5, side elastic support parts 6, 7, being in contact with the bottom convex-parts 4S, 4A, 4B and unified with the bottom convex-parts 4S, 4A, 4B, are manufactured.
(38) The elastic support part 5 has an elastic top-end-part 5a corresponding to the top-end-part 4a and elastic slanting-side-parts 5b, 5b of both sides corresponding to the slanting-side-parts 4b, 4b. The volume of the elastic support part 5, corresponding to the thickness of the bottom convex-parts 4S, is reduced because of covering the bottom convex-parts 4S. Further, the elastic top-end-part 5a is arranged between the top-end-part 4a and the optical waveguide device 41.
(39) The side elastic support part 6 has an optical fiber holding surface 6a having rectangular flat shape in a plan view on the cover case 21 side, as illustrated in
(40) The side elastic support part 7 has an optical fiber holding surface 7a having rectangular flat shape in a plan view on the cover case 21 side, a fiber concave part 7b is formed at the center of width direction. The fiber concave part 7b is formed with the shape corresponding to the later-described optical fiber member 43 along with the length direction of the bottom case 1. The part of the side elastic support part 7 is arranged outside of the bottom case 1.
(41) The cover case 21 is a U-figure like body which is formed of metal or plastic and formed in an almost U-figure shape, similar with the bottom case 1. The cover case 21 has the length common with the bottom case 1.
(42) The cover case 21 has, as illustrated in
(43) The three peak convex-parts 24 (24A, 24S, 24B) are formed on the case peak-part 21a. The three peak convex-parts 24 are placed on the approximately straight line along with the length direction of the cover case 21, and they are arranged at the three scattered positions of both sides along with the length direction and the approximate center of the length direction of the cover case 21. The peak convex-parts 24A, 24B are arranged at both sides and the peak convex-parts 24S is arranged at the approximate center (see in detail
(44) The respective peak convex-parts 24 has a cover top-end-part 24a and cover slanting-side-parts 24b, 24b. The cover top-end-parts 24a are formed approximately rectangular flat shape, similar with the top-end-part 4a. The cover slanting-side-parts 24b, 24b are parts which connects the cover top-end-part 24a and the case peak-part 21a similar with the slanting-side-parts 4b, 4b, and they are formed with slanting condition which the inner angle between the cover slanting-side-parts 24b, 24b and the case peak-part 21a are acute angles, as not illustrated. Because hole parts 24c having approximately circle shape are formed at about center of the cover top-end-part 24a, each peak convex-part 24 has the hole-opening structure. Further, the parts, except for the cover slanting-side-parts 24b, 24b of the parts between the case peak-part 21a and the cover top-end-part 24a, are opened as an opening 21e (see
(45) The elastic cover part 25, side elastic cover parts 26, 27 are formed using soft members with rubber elasticity, similar with the elastic support part 5, side elastic support parts 6, 7. Further, the elastic cover part 25, side elastic cover parts 26, 27 are manufactured with injection molding via the hole parts 24c, for example.
(46) The elastic cover part 25, side elastic cover parts 26, 27 cover the respective whole surfaces of the peak convex-parts 24S, 24A, 24B. The elastic cover part 25, side elastic cover parts 26, 27 are arranged at the three positions of both sides along with the length direction and the approximate center of the length direction of the case peak-part 21a. The elastic cover part 25, side elastic cover parts 26, 27 contact the surfaces of the peak convex-parts 24S, 24A, 24B. The elastic cover part 25, side elastic cover parts 26, 27 have the unified structure which they are respectively unified with the peak convex-parts 24S, 24A, 24B. The elastic cover part 25, side elastic cover parts 26, 27 are formed separately without mutual contacts.
(47) The elastic cover part 25 has an elastic cover top-end-part 25a corresponding to the cover top-end-part 24a and elastic cover slanting-side-parts 25b, 25b of both sides corresponding to the cover slanting-side-parts 24b, 24b. The elastic cover top-end-part 25a of the elastic cover part 25 is in contact with the optical waveguide device 41.
(48) The side elastic cover part 26 has an optical fiber holding surface 26a having rectangular flat shape on the bottom case 1 side, as illustrated in
(49) The side elastic cover part 27 has an optical fiber holding surface 27a having rectangular flat shape on the cover case 21 side, a fiber concave part 27b, similar with the fiber concave part 7b, is formed at the center of width direction. The part of the side elastic cover part 27 is arranged outside the cover case 21.
(50) The fiber unit 40 is constituted such that the optical fiber member 42 and the tape-shaped optical fiber member 43 are connected with the optical waveguide device 41, and they are united together.
(51) The optical waveguide device 41 has, as illustrated in
(52) The optical waveguide 41a is formed such that multiple waveguide cores are branched off from a single waveguide core. The optical waveguide 41a enables light incident from the single waveguide core to be equivalently branched off to the multiple waveguide cores.
(53) The fiber connector 41c is a connector to which the single-core optical fiber member 42 is connected, and is fixed to one end part of the optical waveguide substrate 41b using a not-illustrated adhesive. The fiber connector 41d is a connector to which the multi-core tape-shaped optical fiber member 43 is connected, and is fixed to the other end part of the optical waveguide substrate 41b using a not-illustrated adhesive.
(54) The optical fiber member 42 has a structure in which a single-core optical fiber is covered with a coating material. The tape-shaped optical fiber member 43 has a structure in which a plurality of (for example, eight) optical fibers arranged in parallel to each other are covered around with a coating material into a tape shape.
(55) Then, the fiber unit 40 is accommodated in the bottom case 1 with being supported by the elastic support part 5, side elastic support parts 6, 7. In this case, the optical fiber member 42, the tape-shaped optical fiber member 43 are respectively accommodated in the fiber concave part 6b, fiber concave part 7b. Further, as illustrated in
(56) As described above, the bottom case 1, which the fiber unit 40 is accommodated, is prepared, and the bottom case 1 is covered with the cover case 21 from upper side, thereby the optical module package 100 is constituted.
(57) In this case, for example at first, the optical waveguide substrate 41b is put on the elastic support part 5. Further, the optical fiber member 42 and the tape-shaped optical fiber member 43 are respectively accommodated in the fiber concave parts 6b, 7b.
(58) Next, the outside of the bottom case 1 is covered with the cover case 21 and the locking convex parts 22, 23 are respectively engaged with the concave parts 2, 3. Then, as illustrated in
(59) At this time, the elastic cover part 25 is in contact with the surface, not being in contact with the elastic support part 5, of the optical waveguide substrate 41b. Further, the optical fiber holding surface 6a is in contact with the optical fiber holding surface 26a to form the gap having cylindrical shape by the fiber concave parts 6b, 26b, and the optical fiber holding surface 7a is in contact with the optical fiber holding surface 27a to form the gap having cylindrical shape by the fiber concave parts 7b, 27b. Then, the optical waveguide substrate 41b is held by being sandwiched between the elastic support part 5 and the elastic cover part 25. Further, the optical fiber member 42 is held in the cylindrical gap by the fiber concave parts 6b, 26b, the tape-shaped optical fiber member 43 is held in the cylindrical gap by the fiber concave parts 7b, 27b.
(60) (Operation and Effect of Optical Module Package 100)
(61) As in the foregoing, in the optical module package 100, the fiber unit 40 is accommodated in the bottom case 1 under the condition that the fiber unit 40 is held by the elastic support part 5, side elastic support parts 6, 7 and the elastic cover part 25, side elastic cover parts 26, 27. Then, the elastic support part 5, side elastic support parts 6, 7 and the elastic cover part 25, side elastic cover parts 26, 27 absorb the vibration and shock which was brought to the optical module package 100. Therefore, the vibration and shock, which was brought to the fiber unit 40, are decreased by the elastic support part 5, side elastic support parts 6, 7 and the elastic cover part 25, side elastic cover parts 26, 27.
(62) Further, in the optical module package 100, the optical waveguide device 41 is supported by the elastic support part 5 and the elastic cover part 25, and the optical fiber member 42 and the tape-shaped optical fiber member 43 are arranged at the position distant from the elastic support part 5 and the elastic cover part 25. Therefore, elastic member, which supports the optical waveguide device 41, is only the elastic support part 5 and the elastic cover part 25. Then, the volume of elastic member which supports the optical waveguide device 41 is reduced than the case which the elastic member is arranged in the whole in the length direction of the bottom case 1 and the cover case 21.
(63) Therefore, volume of elastic support part 5, elastic cover part 25 expanding or shrinking caused by the temperature-humidity cycle, are smaller than the elastic member arranged in the whole in the length direction. Therefore, even if the elastic support part 5 expands or shrinks caused by the temperature-humidity cycle, the load by the pressure and so on, which is brought to the fiber unit 40, is small. Accordingly, the optical module package 100, because the load caused by the temperature-humidity cycle is decreased, the increase of the transformation, breakage and insertion loss of the fiber unit 40 is suppressed.
(64) Moreover, the elastic support part 5 exhibits a volume reduction effect by covering the bottom convex-part 4. Namely, because the elastic support part 5 has the elastic slanting-side-parts 5b, 5b corresponding to the slanting-side-parts 4b, 4b, the volume of the elastic support part 5 is reduced than the lump-shaped elastic member. Accordingly, the increase of the transformation, breakage and insertion loss of the fiber unit 40 is more suppressed.
(65) Further, when the elastic slanting-side-parts 5b, 5b are formed, an interval, between the side surface of the elastic support part 5 and the optical waveguide device 41, is wider than the case which the side surface is formed vertically. Then, even if the elastic support part 5 expands, the elastic support part 5 is hardly contact with the optical waveguide device 41, thereby the load is decreased.
(66) Though the elastic top-end-part 5a is arranged between the top-end-part 4a and the optical waveguide device 41, the elastic top-end-part 5a is a part of the elastic support part 5. Whereupon, only the top-end-part 5a brings direct load to the optical waveguide device 41, another part dose not brings direct load to the optical waveguide device 41. Therefore, the load which reaches the fiber unit 40 is decreased.
(67) Furthermore, the elastic support part 5, side elastic support parts 6, 7 are arranged at the scattered positions without mutual contact. Then, the volume of the elastic member constituting the elastic support part 5, side elastic support parts 6, 7 are reduced than the case which the elastic member is formed to cover the whole surface of the case bottom-part 1a. Therefore, in the optical module package 100, because the load caused by the temperature-humidity cycle is more decreased, the increase of the transformation, breakage and insertion loss of the fiber unit 40 is more surely suppressed.
(68) Further, the elastic support part 5, side elastic support parts 6, 7 and the elastic cover part 25, side elastic cover parts 26, 27 are arranged at the three scattered positions. The optical fiber member 42, tape-shaped optical fiber member 43 are held by the side elastic support parts 6, 7, the side elastic cover parts 26, 27, the optical waveguide device 41 is held by the elastic support part 5, the elastic cover part 25. The center of gravity of the fiber unit 40 is located in the optical waveguide device 41, the elastic support part 5 and the elastic cover part 25 hold the optical waveguide device 41. The optical fiber member 42, tape-shaped optical fiber member 43, which are more fragile than the optical waveguide device 41, are held respectively by the side elastic support part 6 and the side elastic cover part 26, the side elastic support part 7 and the side elastic cover part 27 so as to be sandwiched. The optical fiber member 42, tape-shaped optical fiber member 43 are held so as not be broken.
(69) Further, because the optical waveguide device 41, the optical fiber member 42 and the tape-shaped optical fiber member 43 are held from both sides so as to be sandwiched, the optical fiber member 42 and the tape-shaped optical fiber member 43 are held stably.
(70) On the other hand, because the bottom convex-parts 4 have the hole-opening structure, melted material is able to be injected from the hole parts 4c (and/or the opening 1e). Thereby, the elastic support part 5, side elastic support parts 6, 7 are easily manufactured. Moreover, the elastic support part 5, side elastic support parts 6, 7 are closely in contact with the bottom convex-parts 4S, 4A, 4B to be unified and become a structure which the elastic support part 5, side elastic support parts 6, 7 hardly peel off.
(71) Further, because the bottom convex-part 4 has the slanting-side-parts 4b, melted material is easy to spread to the periphery through the slanting-side-parts 4b, after injection from the hole parts 4c. Therefore, the elastic support part 5, side elastic support parts 6, 7, being in contact with the bottom convex-parts 4, are surely manufactured. Accordingly, defective molding about the elastic support part 5, side elastic support parts 6, 7 hardly occurs.
(72) In this case, size of parts, which the bottom convex-parts 4 are in contact with the elastic support part 5, side elastic support parts 6, 7, is enlarged than the case which the side surfaces are not the slanting-side-parts (for example, the side surfaces cross at right angle with the case bottom-part 1a). Accordingly, contact condition of the bottom convex-parts 4 and the elastic support part 5, side elastic support parts 6, 7 becomes more strongly.
(73) Further, because the openings 1e are formed, melted material is also injected from the openings 1e. Accordingly, the elastic support part 5, side elastic support parts 6, 7, being in contact with the bottom convex-parts 4, are surely manufactured.
(74) On the other hand, as illustrated in
(75) On the contrary to the above, as illustrated in
(76) Because the peak convex-parts 24 and the elastic cover part 25, side elastic cover parts 26, 27 are formed on the cover case 21 in addition to the bottom case 1, the fiber unit 40 is able to be held so as to be sandwiched between them. Therefore, the holding power of the optical module package 100 is raised, the fiber unit 40 is held more firmly.
(77) The bottom case is the U-figure like body, and the fiber unit 40 is able to be directly inserted and extracted to/from an elongated space sandwiched between the bottom wall parts 1b and 1c. Therefore, the bottom case 1 allows the fiber unit 40 to be accommodated therein while the optical fiber member 42 and the tape-shaped optical fiber member 43 are kept extending along the axial core direction without being bent. Consequently, it is unnecessary to insert the optical fiber member 42 and so on into a tubular member when accommodating the fiber unit 40 in the bottom case 1 in the optical module package 100, thus making it possible to reduce the effort and time required to manufacture the optical module package 100.
(78) The parts of the side elastic support parts 6,7, side elastic cover parts 26, 27 are arranged outside the bottom case 1, the cover case 21. Therefore, even if the optical fiber member 42 and the tape-shaped optical fiber member 43 bent, the condition, which they are in contact with the bottom case 1 and the cover case 21, is able to be avoided.
(79) (Modified Example)
(80) The optical module package according to a modified example will now be explained with reference to
(81) Further, as illustrated in
(82) Further, as illustrated in
(83) On the other hand, as illustrated in
(84) At this point, it is possible that the bottom case 1 has a case bottom-part if instead of the case bottom-part 1a. The case bottom-part if is different from the case bottom-parts 1a in that hole parts 1g, 1g are formed in the case bottom-part 1f. Because the hole parts 1g, 1g are formed, melted material is injected from the hole parts 1g, 1g, thereby the elastic support part 5, side elastic support parts 6, 7, which are in contact with the bottom convex-parts 57, are manufactured. The bottom case 1 of this case has a case hole-opening structure, because the hole parts 1g, 1g are formed on the case bottom-part 1f.
(85) Further, as illustrated in
(86) On the above embodiments, the bottom convex-parts 4, which the hole parts 4c are formed in the top-end-parts 4a, are explained exemplarily as the bottom convex-parts having the hole-opening structure. As not illustrated, it is possible that the hole parts 4c are able to be formed in the slanting-side-parts 4b, 4b instead of the top-end-parts 4a.
(87) This invention is not limited to the foregoing embodiments but various changes and modifications of its components may be made without departing from the scope of the present invention. Besides, it is clear that various embodiments and modified examples of the present invention can be carried out on the basis of the foregoing explanation. Therefore, the present invention can be carried out in modes other than the above-mentioned best modes within the scope equivalent to the following claims.