The present invention generally relates to devices for optically splicing waveguides such as optical fibers, and more particularly to a vented, hinged splice element having improved hinge registration and clamping of the optical fiber.
Splices for optical fibers are known in the art. The most critical characteristic of an optical fiber splice is its insertion loss, i.e., the signal loss due to misalignment of the fibers, which may occur in three different manners. First of all, the fiber end faces should abut each other as closely as possible (end offset). The provision of a refractive index matching medium (gel) at the interface may mitigate the effects of any air space left between the end faces. Secondly, the fiber axes proximate the interface should be generally parallel, so that light exiting one fiber will strike the surface of the second fibar as closely as possible to a right angle, or 0° angle of incidence (axial or angular offset). Finally, the axes of the fibers should be transversely aligned to maximize the overlapping surface area between the end faces (lateral or transverse offset). This alignment is critical since the diameter of the central glass core of single mode fibers is only about 8 µm, so a deviation in axial alignment of as little as 1 µm may result in a significant loss.
Several prior art optical fiber splicing devices attempt to optimize fiber alignment by utilizing a chip or tray having one or more grooves therein which receive the optical fibers. See, e.g., US-A-3,864,018; US-A-4,028,162; US-A-4,046,454; US-A-4,102,561; US-A-4,220,397; US-A-4,730,892; and US-A-4,865,413. The grooves in the substrate provide a simple method for holding the fibers, which are forcibly held in the grooves by a compression plate or adjacent groove tray, or by the use of adhesives. The grooves may be concave or V-shaped. Concave grooves result in two primary points of contact with the fiber, while a V-groove with an opposing flat surface provides three points of contact. V-grooves in two opposing trays result in four points of contact, as shown in figure 4 of US-A-4,046,454.
Some prior art splices combine the V-groove concept with a foldable or hinged splice element. See, e.g. US-A-4,029,390; US-A-4,254,865; US-A-4,818,055; and US-A-4,865,412; JP-A-53-26142 and JP-A-58-158621.
This basic design offers several advantages, including ease of manufacture (via stamping), low insertion force (preventing buckling or deformation of the fibers), fiber retention without the use of adhesives or epoxies, and reusability.
In spite of the foregoing achievements, however, the mass splicing of fibers in a reliable, quick and economic fashion remains a problem. For example, prior art hinged splice elements do not always bend along the same line on the splice element, and there is a high rejection rate during production. Without precise folding of the element, parallel to the fiber receiving grooves, fiber alignment and retention is affected since it results in inaccurate registration of the two halves of the splice element, and is especially critical when the two halves have complimentary V-grooves. It has also been found that ductile hinge elements, such as that disclosed in US-A-4,824,197 (not prior art), require an annealing step after embossing in order to provide a hinge which will consistently survive a 180° fold.
The sudden clamping transition near the fiber interface also causes deformation of the fiber resulting in more signal loss than if there were a more gradual clamping toward the interface.
Prior art optical splices also do not adequately address the optimum geometry for V-groove designs. For example, in the previously referred to figure 4 of US-A-4,046,454, the V-grooves have obtuse angles, meaning that the four points of contact will not be completely symmetrical about the fiber. This may result in unnecessary transverse offset of the fibers, leading to greater splice loss. This is also true for hinged splice elements wherein a flat surface compresses the fiber into a 60° V-groove. Since the flat surface is hinged to the grooved surface, and since the fiber is only partially embedded in the groove, the flat surface is not parallel to the groove-bearing surface when the splice element is in its closed, clamping state. See, e.g., US-A-5,013,123 (this patent does not constitute prior art). Since these two surfaces are not parallel, the three lines or surfaces contacting the fiber will not be symmetrically positioned about the fiber, again adversely affecting transverse offset of the fiber end faces.
One final disadvantage relating to prior art optical splices concerns the use of a medium for matching the index of refraction of the two fibers. As mentioned above, reflective losses may be minimized by placing an index matching fluid or gel at the fiber interface. Oftentimes, however, this gel has bubbles, contaminants or other discontinuities which tend to migrate during the splice operation, and thereafter with temperature cycling. Such migration of the gel and microbubbles can detrimentally affect the splice quality.
An object of the invention is to devise an optical splice element which would obviate any problems associated with gel migration, as well as overcome the aforementioned limitations regarding a predictable hinge fold line, optimum V-groove geometry, and gradual clamping of the splice element.
This object is solved with the features of the claims.
The foregoing objective is in particular achieved in an optical splice element comprising a thin sheet of deformable material having on one surface thereof a notched web forming a focus hinge connecting two leg portions of the sheet, and providing an accurate and predictable fold line. At least one of the leg portions has a V-groove embossed therein, and the other of the leg portions has either another V-groove or a contact surface positioned so as to lie adjacent the V-groove on the first leg portion when the legs are folded toward one another along the fold line defined by the longitudinal notch. Means are provided to gradually clamp the central portions of the legs to minimize insertion loss from a sudden clamping transition.
Optimum V-groove geometry is achieved by offsetting the angle of the V-grooves with respect to the plane of the leg, or by offsetting the angle of the contact surface. The value of the interior angle of the V-groove(s) depends upon the number of points or lines which will contact the fiber placed in the groove. This value may be decreased slightly whereby, when the fiber is clamped between the legs and the ductile surface of the V-groove deforms, the deformation results in an effective angle corresponding to the desired optimum angle. A vent hole is provided at the center of the splice element to prevent migration of microbubbles in the index matching gel across the fiber interface. Alternatively, sealing rails may be formed on one leg if the surfaces of the two legs are in intimate contact when the element is in a closed, clamping state.
The novel features and scope of the invention are set forth in the appended claims. The invention itself, however, will best be understood by reference to the accompanying drawings, wherein:
- Figure 1 is a top plan view of the splice element of the present invention in its unfolded state;
- Figure 2 is a side elevational view of the splice element in its unfolded state, showing the focus hinge defined by a longitudinal notch;
- Figure 3 is a side elevational view of the splice element in its folded state, with a fiber disposed in the V-grooves;
- Figures 4A and 4B are detail diagrams depicting the angular geometry of the V-grooves and contact surface;
- Figure 5 is a detail diagram illustrating the provision of a smaller V-groove angle to compensate for the deformation of the ductile surface of the V-groove, and also showing rails which provide sealing of the index matching gel;
- Figure 6 is an exploded perspective view of the complete splice of the present invention, including the splice body and splice element;
- Figure 7 is a bottom plan view of the cap of the splice body of the present invention; and
- Figure 8 is a cross-section taken along the center of the closed splice depicting clamping of the splice element.
With reference now to the figures, and in particular with reference to Figure 1, there is depicted the optical fiber splice element10 of the present invention. Splice element10 is somewhat similar to the splice elements described in US-A-4,824,197 and US-A-5,013,123, the disclosures of which are hereby incorporated by reference. Splice element10 is formed from a sheet12 of deformable material, preferably a ductile metal such as aluminum, although polymeric materials may also be used, such as polyethersulfone. Material selection is described further below. Although the term "connector" may be applied to splice element10, that term is usually reserved for devices which are intended to provide easy connection and disconnection, as opposed to a splice which is usually considered permanent. Nevertheless, the term "splice" should not be construed in a limiting sense since splice element10 can indeed allow removal of the spliced fiber.
With further reference to Figure 2, certain features of splice element10 are embossed, coined, stamped or molded into sheet12. First of all, a groove14 is formed on the outside surface16 of sheet12, extending generally the length of sheet12. Groove14 is centrally located, forming an area of reduced thickness which defines a hinge that separates sheet12 into two identical plate-like members or legs18 and20. In one embodiment of the present invention, both of these legs have V-shaped grooves22 and24 embossed on the inside surface26 of sheet12. It should be noted that it is not necessary for the grooves to have a sharp angle in order to be considered V-shaped; given the small dimensions involved, the apex of the "V" may be somewhat curved or even flattened out, but the overall shape is still generally that of a "V." V-grooves22 and24 are generally parallel with groove14, and equidistant therefrom, but do not extend the full length of sheet12. Concave recesses28 and30 lie adjacent grooves22 and24, respectively, whereby, when legs18 and20 are folded together (as shown in Figure 3), recesses28 and30 form a lead-in cone for an optical fiber32.
A key feature of the present invention involves improvements in the hinge which provide a fold line allowing precise transverse registration of V-grooves22 and24. The essential improvement in this regard is the provision of another groove or notch34 on surface26, opposite groove14. Notch34, which preferably takes the shape of a shallow "V," lies above the centerline of groove14. Empirical testing has shown that provision of such a focus hinge35 provides more accurate registration of legs18 and20 than if notch34 were not present, to within about ± 30 µm (3σ). Moreover, the registration is very predictable and repeatable, making the folding step non-critical. Focus hinge35 may be utilized to register any kind of groove, not only those that are V-shaped. Even if only one of the legs18 or20 had a groove therein, obviating the need for alignment of opposing grooves, it would still be desirable to use focus hinge35 to provide optimum registration of recesses28 and30 in order to form a proper lead-in cone.
The added predictability in the use of focus hinge35 may be further enhanced by cutting or embossing groove14 in such a manner as to form a convex surface36 on one side of the hinge web38. This forms a partial bend radius at the hinge, and allows hinge web38 to be thicker without hampering the bending qualities. The increased thickness in turn imparts structural integrity and, in testing, this hinge has survived full closing and reopening without failure. The splice elements shown in the previously mentioned US-A-4,824,197 and US-A-5,013,123 require only a 90° bend at each hinge, but the hinge in splice element10 must survive a bend of nearly 180°; the splice elements shown in those patents require a post-embossing annealing step to survive such a fold, but this is not necessary with focus hinge35.
Referring now to Figure 3, optical fiber splice element10 is depicted in its closed state, clamping a fiber32 between V-grooves22 and24 of legs18 and20. Splice element10 may be preloaded in the folded state (although not in the closed, clamping state) in an optical splice connector body such as that shown in
US-A-4,818,055 (the disclosure of which is hereby incorporated). Such a splice body includes a base and a cap. As the cap is moved from an open position to a closed position, two cam bars slide over legs18 and20, urging them toward one another. It is desirous to provide rounded edges along outside surface16 of legs18 and20 to facilitate the camming action.
Sheet material12 should be sufficiently deformable so as to partially conform to the surface of optical fiber32 at the points of contact. In addition to improved signal transmission, this also results in greater fiber retention and facilitates splicing of two fibers of differing diameters. Sheet12 may therefore be constructed from a variety of ductile metals, such as soft aluminum. The preferred metal is an aluminum alloy conventionally known as "3003," having a temper of 0 and a hardness on the Brinnell scale (BHN) of between 23 and 32. Another acceptable alloy is referred to as "1100," and has a temper of 0, H14 or H15. Acceptable tensile strengths vary from 35 to 115 megapascals.
Other metals and alloys, or laminates thereof, may be used in the construction of sheet12. Such metals include copper, tin, zinc, lead, indium, gold and alloys thereof. It may be desirable to provide a transparent splicing element to facilitate the splicing operation. In such a case, a clear polymeric material may be used for sheet12. Suitable polymers include polyethylene terephthalate, polyethylene terephthalate glycol, acetate, polycarbonate, polyethersulfone, polyetheretherketone, polyetherimide, polyvinylidene fluoride, polysulfone, and copolyesters such as VIVAK (a trademark of Sheffield Plastics, Inc., of Sheffield, Massachusetts).
As an alternative to providing a sheet constructed of a deformable material, sheet12 may instead be constructed of a more rigid material provided that the V-grooves and contact surfaces are lined or coated with a deformable material. The primary requisite is to provide a material which is softer than the glass comprising the optical fiber and cladding, and which is ductile under the clamping pressures applied to the optical fiber. It is also desirable that the material be elastic at low stress levels to afford sufficient elasticity to maintain a continual compressive force on the optical fibers once legs18 and20 have been brought together. -Furthermore, a coating may be applied to the ductile material to reduce skiving of the material as the fiber is inserted. For example, an obdurate coating having a thickness in the range of one to two µm may be applied to surface26 of splice element10.
The dimensions of sheet12 may vary considerably depending upon the application; the following dimensions are considered exemplary and are not to be construed in a limiting sense. The size of sheet12 is about 18 mm long by 8 mm wide along the major edges. For both metal and polymeric materials, the preferred thickness is about 0.51 mm. The width of notch34 is about 0.56 mm while its maximum depth, measured from surface26, is about 0.1 mm. The width of groove14 is approximately 1.1 mm measured across surface16, and 0.46 mm measured across hinge web38; its maximum depth, measured from surface16, is about 0.33 mm. Convex surface36 has a radius of curvature of about 0.39 mm. Based on the foregoing values, V-grooves22 and24 are preferably placed about 0.9 mm from the fold line defined by notch34. V-grooves22 and24 should have a maximum width of about 129 µm.
Figures 4A and 4B illustrate the novel angular geometries of the V-grooves used in splice element10. As noted in the Description of the Prior Art, prior art splices having V-grooves do not clamp the fiber in a completely symmetrical fashion, resulting in unnecessary fiber deformation and greater splice loss. Splice element10, in contrast, optimizes the radial alignment of forces impacting the fiber by counterbalancing the locations of the splice-fiber interfaces. In splice element10, where legs18 and20 are still separated by a small angle in the closed, clamping state, this is accomplished by offsetting the V-groove angles with respect to the plane of surface26.
In Figure 4A, V-grooves22 and24 have interior right angles, but the angles α and β are not equal. Rather, they are chosen to complement the angular separation of legs18 and20. Specifically, in the embodiment where legs18 and20 are separated by an angle γ of about 6° in the closed, clamping state, the angles α are about 138°, i.e., the supplementary angles of inclination are about 42°. The angles β are accordingly about 132°, i.e., the supplementary angles of inclination are about 48°. It can be seen that these angles (for two opposing V-grooves) are determined by the equations α = 135° + γ/2, and β = 135° - γ/2. It would, of course, be equivalent to make both angles of inclination of one V-groove 45° and provide the angular offset in the second V-groove, i.e., making its angle α = 135° + γ, and its angle β = 135° - γ.
In the embodiment of Figure 4B (which is presently considered to be the preferred embodiment), there is only one V-groove40 with an interior angle of 60° (and angles of inclination with respect to surface26 also of 60°). A complementary contact surface42 is provided which has an angular offset δ with respect to surface26 (contact surface42 is thus a "groove" as that term is used in the claims). The angle δ is simply 180° - γ (γ is again preferably 6°). Another way of expressing these constructions is that, even though the two surfaces26 are not parallel, the points of contact between splice element10 and fiber32 form an essentially regular polygon, such as the square44 in Figure 4A and the equilateral triangle46 in Figure 4B. The basic principle of offsetting the angular geometries of the grooves may also be applied to splices having more than four contact points. Focus hinge35 also enhances the usability of such multiple surface clamps, as well as grooves having a semicircular cross-section. Optimizing these geometries also provides improved alignment of different sized fibers.
Upon reference to the description provided herein, those skilled in the art will appreciate that, since the optical fiber may become slightly embedded in a groove formed of a ductile material, it may be desirable to provide an initial groove angle slightly less than that ultimately desired for symmetric alignment of the fiber within the groove. For example, if splice element10 uses two opposing V-grooves as shown in Figure 4A, the interior groove angles should actually be slightly less than 90°. In this manner, when the fiber is clamped between legs18 and20, the ductile material along the surfaces of V-grooves22 and24 will deform at the points of contact with fiber32, yielding an effective angle of about 90°. In this regard, the term "effective angle" refers to that angle defined by the apex of the V-groove and the points of maximum deformation of the ductile material where it contacts the fiber. Similarly, if the splice utilizes only one V-groove, as shown in Figure 4B, the interior angle should be slightly less than 60°.
This is further depicted in Figure 5, which shows a splice element wherein the inner surfaces of the legs are essentially parallel when the element is in the closed clamping state. Figure 5 illustrates the deformation of the V-groove surfaces, and how the initial angle formed in the V-groove differs from the effective angle which is indicated by dashed lines47. While the value of the interior V-groove angle depends primarily on the amount of ductile material which is displaced, this in turn depends upon the malleability of the material comprising the surfaces of the V-groove and the driving force which urges fiber32 into the V-groove. Since a wide variety of materials may be used for splice element10, and since there are several different mechanisms for applying the clamping force to the element, it is impossible to provide a single value for the interior angle which will result in an optimum effective angle. In the preferred embodiment of Figure 4B, utilizing the clamping cap described below, an angle in the range of 46°-59° has been empirically found to approximately yield the optimum effective V-groove angle of 60°.
Referring back to Figure 1, splice element10 preferably has a gel48 disposed therein which has an appropriate index of refraction to improve transmission of light across the fiber-to-fiber interface. Such gels are conventionally available. As noted in the Description of the Prior Art, the use of such a gel may result in the detrimental migration of microbubbles or other contaminants along the fiber-to-fiber interface. Such migration may be arrested by the provision of a vent hole50 near the center of splice element10. Venting the area below focus hinge35, adjacent the fiber interface, eliminates the pressure differential which would otherwise cause gel migration across the interface, particularly during temperature cycling. Vent hole50 may be punched into sheet12 when splice element10 is cut out; subsequent embossing of the various grooves and notches typically results in an hourglass shape of vent hole50. In the preferred embodiment, vent hole50 has a diameter of about 0.76 mm. A longitudinal vent channel51 may optionally be embossed in surface26 between vent hole50 and grooves22 and24 to provide fluid communication between vent hole50 and the grooves.
As an alternative to providing a vent hole, means may be provided to block the flow of the index matching gel, such as providing a barrier on either side of the V-groove proximate the fiber interface, rather than preventing the flow by eliminating any pressure differentials. For example, in the embodiment of Figure 5, wherein the inner surfaces of the legs are in intimate contact when the element is in the closed, clamping state, features may be formed in one or both of the legs to providing sealing around the V-groove. One such means is a pair of ribs or rails52 formed on the surface of one of the legs. Thus, when the element is closed, rails52 impinge on the opposing surface, causing slight deformation thereof, and provide an environmental seal which prevents gel migration near the fiber interface.
Turning to Figures 6-8, those figures depict the novel splice body56 which is used to hold and actuate splice element10. Splice body56 is essentially identical to the splice body described in US-A-4,818,055, except for the provision of a gradual or centralized clamping cam as discussed further below. Splice body56 includes a cap member58 and a base member60. Base60 has an opening or central cavity62 therein for receiving splice element10, and two side cavities64 for receiving locking tabs66 of cap58. Locking tabs66 securely attach cap member58 to base member60. The end walls of base60 further have holes68 therein which allow the insertion of the optical fiber into the preassembled splice.
In addition to locking tabs66, cap58 also has two generally parallel camming bars70 which extend perpendicularly into cavity62 and surround splice element10. Locking tabs66 and camming bars70 are preferably integrally molded with cap member58. In the preassembled state, cap58 is not fully inserted into base60, allowing element 10 to remain in a slightly opened state, with the legs diverging, facilitating insertion of the optical fiber into the V-grooves thereof. Then, as cap58 is forced fully into base60, camming bars70 forcibly contact legs18 and20 of element10, forcing them towards one another and clamping the optical fiber.
The improvement in splice body56 lies in the gradual thickening of the camming surfaces72 of camming bars near their center, as with camming bar70a shown in Figure 7, which is a bottom plan view of cap58. The cross-section of Figure 8 is taken at the center of the actuated splice, and additionally illustrates how camming bars70 are thinner at their distal edges76 than at the point of attachment to upper plate74. In other words, camming bar70a defines an inwardly facing convex surface72 where it joins the upper plate74 of cap member58. Alternatively, the camming bars may be much shorter in length than splice element10, such as camming bar70b. In this manner, element10 is allowed to flex open at its ends, and there is a gradual clamping of the fiber towards the center. Both of these constructions have been found to decrease insertion loss associated with the microbends or deformations of the fiber which are found in other optical fiber splices. If camming bars such as70a are used, they are preferably about 18 mm long, and the minimum distance between the bars, at their center, is about 1.3 mm. It is understood that gradual clamping may also be achieved if only one of the camming bars is so curved or thickened, the other having a flat inwardly facing surface. In the preferred embodiment, however, camming bars such as70b are used and are about 6.4 mm long, again with a distance between the bars of about 1.3 mm. The improved camming bars70a and70b may be used with splice element10, or with the splice element shown in US-A- 4,818,055, or with other splice elements requiring the clamping of two opposing legs or plate-like members.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiment, as well as alternative embodiments of the invention, will become apparent to persons skilled in the art upon reference to the description of the invention. For example, splice element10 may be provided with tabs similar to that shown in US-A-4,824,197 for securing the element in a closed state. Splice element10 may also contain multiple grooves for splicing more than one fiber pair. It is therefore contemplated that the appended claims will cover such modifications that fall within the true scope of the invention.