Method for non-contact cleaning of optical fiber connectors and endfaces

The Coanda effect-based non-contact cleaning method effectively addresses the challenges of contamination and size adaptability in optical fiber endface cleaning, ensuring efficient and contamination-free cleaning across various connector sizes.

JP7828366B2Active Publication Date: 2026-03-11ZYNON TECHNOLOGIES LLC
View PDF 17 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-05
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Existing optical fiber endface cleaning technologies require physical contact or insertion into connectors, which can introduce contamination and are not adaptable to different connector sizes, and they struggle to effectively clean microscopic contaminants without causing signal degradation.

Method used

A non-contact cleaning method utilizing the Coanda effect to direct a focused jet of pressurized gas and atomized solvent onto the optical fiber endface, ensuring cleaning and drying without physical contact, and using a nozzle positioned at a specific distance to accommodate various connector sizes.

Benefits of technology

Achieves effective cleaning and drying of optical fiber endfaces without contamination, reducing signal degradation, and allowing a single nozzle to clean multiple connector sizes, while eliminating the need for physical contact and custom sizing.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007828366000003
    Figure 0007828366000003
  • Figure 0007828366000004
    Figure 0007828366000004
  • Figure 0007828366000005
    Figure 0007828366000005
Patent Text Reader

Abstract

A cleaning device (100) for cleaning an optical fiber endface includes a dispensing nozzle (104) configured to dispense a jet column (118) generated by the Coanda effect by intermittent injection of a cleaning solvent into the jet column (118). The method includes impinging the jet column (118) onto an optical fiber endface (120) while maintaining a standoff distance from the endface being cleaned.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This application claims priority to Provisional Patent Application No. 63 / 170,821, filed April 5, 2021, in the names of Emily J. Peck et al., entitled "DEVICE AND METHOD FOR NON-CONTACT CLEANING OF FIBER OPTIC CONNECTORS AND END FACES."

[0002] The present invention relates generally to a method of utilizing a non-contact cleaning device for cleaning the ferrule end surface of an optical fiber, whether the ferrule end surface is exposed or installed in a ferrule connector, such as a plug or bulkhead, for interconnection with another optical fiber or with an optoelectronic device, and can be efficiently cleaned.

[0003] In optical fiber networks, optical fiber strands, typically having a diameter of approximately 8 micrometers, are connected by encasing the strands in a protective jacket (not shown) to form a cable and then butting two cable ends together. To do this, the ends of individual optical fiber strands 10a, 10b, and 10c (FIGS. 1A, 1B, and 1C) are typically stripped from their jackets and bonded and encased within the center of a rod-shaped ceramic ferrule 12a, 12b, and 12c. The ferrule provides an increased surface area for final polishing of the exposed end faces of the optical fiber strands. The ferrule end faces 14a, 14b, and 14c are polished either flat (FIG. 1A), slightly convex (FIG. 1B), or angled at approximately 8 degrees (FIG. 1C) to reduce reflected light when spliced ​​to another optical fiber. These ferrules are then fitted into various types of connector housings (e.g., connector 16 (FIG. 2)), which precisely interconnect with similar devices (e.g., connector 16' (FIG. 3)) via couplers or bulkheads 18 to ensure accurate alignment of the butted optical fiber strands. For cleaning, the assembly of FIG. 3 is disassembled to expose the ferrule endfaces for cleaning, while the ferrule endface remains connected to its associated half of the coupler or bulkhead 18.

[0004] 4 shows the end of a fiber optic cable 19 including an optical fiber strand 20 having an outer protective jacket or sheath 22, an end portion of which has been stripped, and the stripped portion of strand 20 encased in a ferrule 24 having an end face 24a. Attached to ferrule 24 at end face 24a is a lens 26, which may be of a spherical or approximately spherical configuration to make ferrule 24 an expanded beam ("EB") ferrule. Lens 26 is typically a collimating lens, although it may also be an imaging lens. In either case, lens 26 is disposed in optical transmission relationship with the end of its associated optical fiber strand 20.

[0005] 5 shows a pair of fiber optic cables 19, 19′, each having a respective EB ferrule 24, 24′, with the respective lenses 26, 26′ of the EB ferrules 24, 24′ optically connected to one another by connectors 28, 28′. The connectors 28, 28′ can be connected to one another by any suitable means, such as mechanical fasteners or couplers. The connectors 28 and 28′ are each configured to be disengaged from one another to allow inspection and cleaning of the disconnected ferrule end faces 24, 24a′ and their associated lenses 26, 26′.

[0006] FIG. 6 shows one of the connectors of FIG. 5 (connector 28) disconnected from its associated connector 28', and thus ready for cleaning.

[0007] While the cleanliness of cable connections (such as those described above) is an important factor in maintaining peak signal communication performance, such cable connections are highly susceptible to contamination at the abutting end faces of the optical fibers. Therefore, it is essential that the end surfaces be cleaned before the optical fiber ends are spliced ​​together and / or after they have become contaminated during normal use. [Background technology]

[0008] It is known that conventional artist's airbrushes, which utilize a reciprocating tapered needle valve, are subject to the Coanda effect, discussed below. The Coanda effect is known to play a role in shaping the spray pattern of an airbrush.

[0009] Patent Document 1 ("Lytle"), issued June 19, 2007 to S. Lytle et al., discloses a cleaning device for cleaning the end face of an optical fiber contained within an interface device. The device utilizes a pressurized fluid (e.g., air or nitrogen) to deliver a solvent (e.g., a mixture of hydrocarbons and terpenes) by deploying the nozzle tip of the pressurized fluid delivery tube into a solvent delivery tube of a larger diameter than the pressurized fluid delivery tube. The Lytle device is inserted into a connector 200. See, for example, Figure 2 of Lytle and column 9, lines 41-50 and column 9, lines 58 to column 10, line 3. In column 11, lines 6-22, Lytle states that the distance from the discharge port (i.e., nozzle tip 114) to the optical fiber end face 202 (FIG. 2) is preferably approximately 0.02 to 0.20 inches (e.g., 0.05 inches), although Lytle states that "other distances are also suitable for use with the present invention." Starting at line 15 of column 11, Lytle states that if the nozzle tip is too close to the optical fiber end face, increased back pressure reduces cleaning effectiveness, while if the nozzle tip is too far from the optical fiber end face, the energy of the gas / solvent jet is dissipated, thereby reducing cleaning effectiveness.

[0010] U.S. Patent No. 6,269,999 ("Gerhard"), issued November 23, 2004 to G. J. Gerhard, discloses in FIG. 2 a device including a pressurized gas / cleaning solvent discharge port or nozzle 114 spaced from an optical fiber end face 202 in a manner similar to that described in Lytle. The arrangement is contained in a cleaning assembly 100 (FIG. 1 of Gerhard and column 5, lines 23 et seq.) designed to be inserted into female inputs 204 and 206 of a bulkhead adapter holding optical fiber connectors 214 and 216. FIG. 4 of Gerhard shows an alternative embodiment in which the cleaning solvent / pressurized gas delivery system is disposed at an angle relative to the optical fiber end face 402 and includes an exhaust tube 304 and a microscope 500. See the discussion at column 10, lines 26 et seq.

[0011] The Lytle and Gerhard patents disclose cleaning of optical fiber end faces without physical contact with the optical fiber end face, but require the insertion of a nozzle arrangement into a connector or other structure associated with the optical fiber connector. Other patents disclose contact cleaning, in which a swab or cloth is brought into physical contact with the end face. For example, U.S. Patent No. 6,299,499, issued to J.S. Tourigny on July 22, 2008, and U.S. Patent No. 6,299,499, issued to J.S. Tourigny on October 24, 2017 (both assigned to the assignee of the present application), disclose a manually operated swab-like cleaning device for cleaning optical fiber end faces disposed in connector couplers or bulkhead receptacles. U.S. Patent No. 6,299,499, issued to K. Fujiwara on January 3, 2012, discloses a type of contact cleaning tool sometimes referred to as a "clicker." Cleaning tool 1 (FIG. 1) utilizes a "cleaning body" (i.e., a strip of cleaning cloth) that is dispensed from supply reel 30 onto head member 23 and then onto take-up reel 31. Head member 23 is inserted into connector insertion port 71 of optical adapter 70 (see column 13, lines 1-6 and FIGS. 7-9), and the cleaning head is rotated to clean the optical fiber endface by direct contact with the cleaning body (cloth strip), which is advanced as needed to provide fresh cleaning cloth. Advancing the cleaning cloth in such devices is accomplished mechanically, resulting in a clicking sound; hence, this type of device is referred to as a "clicker."

[0012] Numerous patent publications address devices and methods for cleaning optical fiber endfaces. The following are some examples. U.S. Patent No. 6,200,013, issued to G.J. Gerhard on December 12, 2006 ("Gerhard II"), discloses an optical fiber endface cleaning apparatus designed to penetrate the housing of an interface device, providing compressed air and solvent for cleaning, and including a vacuum line for removing residual solvent. Gerhard II discusses the problem of residual solvent trapped in a chamfer or other crevices in the housing flowing back onto the freshly cleaned endface and contaminating it. The vacuum applied at the end of a cleaning cycle may not be able to draw the residual solvent out of such crevices; therefore, Gerhard II provides an additional structure (a retractable baffle) to attempt to prevent the solvent from entering such crevices in the first place. See, for example, Gerhard II, column 12, line 48 to column 13, line 2.

[0013] U.S. Patent No. 6,266,629, issued April 8, 2021, to K.M. Hill et al., discloses a compressed gas can system for cleaning optical fiber end faces that includes an interface tube 250 (FIG. 2) that must be inserted into the optical fiber housing. U.S. Patent No. 6,266,629, issued July 28, 2009, to S. Lytle et al., shows a similar arrangement.

[0014] The following patent publications generally disclose spray devices: Patent Document 9, issued to J. Haruch et al. on August 17, 2004, discloses a gun-like spray device including a reciprocating movable valve needle for controlling the spray, as described, for example, at column 3, lines 52-67; Patent Document 10, published on July 19, 2007 ("Jackson"), discusses utilizing the Coanda effect in a combined spray device for transporting a lubricant onto the exterior surface of the device for turbulent mixing with a propellant fluid (e.g., compressed air) at a nozzle outlet; see, for example, paragraphs

[0008] and

[0030] and FIG. 2 of Jackson. [Prior art documents] [Patent documents]

[0015] [Patent Document 1] U.S. Patent No. 7,232,262 [Patent Document 2] U.S. Patent No. 6,821,025 [Patent Document 3] U.S. Patent No. 7,401,374 [Patent Document 4] U.S. Patent No. 9,798,093 [Patent Document 5] U.S. Patent No. 8,087,118 [Patent Document 6] U.S. Patent No. 7,147,490 [Patent Document 7] U.S. Patent Application Publication No. 2021 / 0101167 [Patent Document 8] U.S. Patent No. 7,566,176 [Patent Document 9] U.S. Patent No. 6,776,360 [Patent Document 10] Patent Application Publication No. 2007 / 0164130 Summary of the Invention [Means for solving the problem]

[0016] The present invention utilizes a phenomenon known as the Coanda effect to generate a precise flow of pressurized air (or other suitable gas) and atomized solvent that follows the alignment surface and surrounding area of ​​the optical fiber end face, cleaning and drying the alignment surface and surrounding area. The Coanda effect is a known phenomenon that occurs when a free jet of fluid emerges near a surface. The jet tends to "stick" to the surface and flow along it, as explained more fully below. In contrast to prior art cleaning devices and methods, the present invention enables non-contact cleaning of optical fiber end faces, regardless of whether the optical fiber end face is contained within an adapter recess or exposed (i.e., not enclosed within an adapter). Non-contact cleaning is achieved by positioning the nozzle outlet of the cleaning device at a specific distance from the end face being cleaned and without introducing any part of the cleaning device into the adapter recess, as explained below. This is achieved by utilizing the Coanda effect to allow both a jet of air with entrained atomized solvent and then only a jet of drying air to be directed onto the connector end face surface to be cleaned. The cleaning device and method of the present invention is particularly useful for non-contact cleaning of fiber optic ferrule end faces used to mate optical fibers where connect / disconnect capabilities are required.

[0017] The cleaning device of the present invention includes a housing having a dispensing nozzle adapted to deliver a narrow jet or column of pressurized gas and atomize a solvent within the narrow column of pressurized gas (e.g., air, carbon dioxide, nitrogen, or other suitable gas). The housing is positioned to selectively direct both the narrow column of pressurized gas and the atomized solvent onto an optical fiber end face or an expanded beam lens to remove contaminants on the end face, regardless of whether the end face is contained within an adapter. A method for cleaning an optical fiber end face includes establishing and directing a narrow column of pressurized gas dispensed from the nozzle toward and into contact with the end face using a low-pressure area developed through the use of the Coanda effect. The method also includes injecting a solvent into the pressurized gas through the low-pressure area established within the gas column by the Coanda effect. The low-pressure area atomizes the solvent into droplets, which mix with the pressurized gas in the narrow column and provide non-contact cleaning of the fiber end face. The method of the present invention further includes using the Coanda effect to deliver a column of pressurized gas (eg, air) to dry the end surface after the solvent flow is discontinued.

[0018] In accordance with the present invention, an apparatus is used that includes a needle valve nozzle configured to induce a Coanda effect in a jet or column of pressurized gas to selectively mix atomized liquid solvent with the column of pressurized gas.

[0019] While any suitable solvent composition can be used in the practice of the present invention, the inventors have developed several specific solvent blends that are particularly useful in the practice of the present invention. Unless specifically indicated otherwise, the amounts of components of the solvent blends disclosed herein are given in weight percent ("wt %) of the component, meaning the weight of the component as a percentage of the total weight of the composition.

[0020] Specifically, according to one aspect of the present invention, a method for cleaning an end face of an optical fiber with a cleaning device is provided, the cleaning device including a nozzle having a nozzle outlet, wherein a needle plug is disposed within the nozzle outlet, the needle plug having a cross-section that decreases in a direction of outward flow through the nozzle outlet. The needle plug terminates in a pointed tip facing outward from the nozzle. The method includes the following steps: flowing compressed gas through the nozzle, over the needle plug, and through the nozzle outlet, the needle plug and the nozzle outlet configured to form an emitted gas jet exiting the nozzle outlet, the emitted gas jet forming a zone of reduced pressure relative to ambient atmospheric pressure, the zone of reduced pressure surrounding the emitted gas jet; aligning the nozzle outlet with the end face and positioning the pointed tip of the needle plug approximately 0.25 inches to approximately 0.75 inches (0.64 cm to 1.91 cm) from the end face; and introducing a liquid solvent into the compressed gas upstream of the nozzle outlet, whereby the solvent is atomized in the emitted gas jet. impinging the emitted gas jet containing atomized solvent onto the end face for a cleaning time period, then discontinuing the introduction of the solvent into the compressed gas and impinging the resulting dry gas jet onto the end face for a drying time period to remove the solvent by evaporation accelerated by the zone of reduced pressure without imposing a vacuum on or adjacent to the end face.

[0021] Other aspects of the invention include one or more of the following, alone or in any suitable combination: the cleaning time period can be from about 0.5 seconds to about 2 seconds, and the drying time period can be from about 1 second to about 4 seconds; the liquid solvent can have a vapor pressure of from about 20 kPa to about 25 kPa at 25° C. and 1 atmosphere, a Kauri-butanol value of from about 18 to about 44, and is non-flammable according to the ASTM D-56 Closed Cup Flash Point test. The liquid solvent introduced into the gas jet can include (a) 83 wt% hydrofluoroether, including 55 wt% to 90 wt% methyl nonafluoroisobutyl ether and 10-45 wt% methyl nonafluorobutyl ether, (b) 10 wt% hydrofluoroether, including 90 wt% Z-isomer and 10 wt% E-isomer, and (c) 7 wt% heptane, and the solvent can contain less than 10 ppm nonvolatile residue and less than 100 ppm water.

[0022] In another aspect of the invention, the liquid solvent introduced into the gas jet can include 60 wt% 1,1,1,3,3,3-hexafluoro-2-methoxypropane, 34.9 wt% 1-chloro-2,3,3-trifluoroprop-1-ene, 5.0 wt% acetone, and 0.10 wt% nitromethane, the solvent containing less than 10 ppm non-volatile residue and less than 100 ppm water.

[0023] Yet another aspect of the invention provides that the nozzle outlet can include a gas outlet and a separate solvent outlet, and a needle plug can be disposed in the solvent outlet, and the method further includes the steps of moving the needle plug between an open position and a closed position, the open position opening the solvent outlet and dispensing solvent into the emitted gas jet, and the closed position stopping dispensing solvent into the emitted gas jet, moving the needle plug to the open position to start a cleaning time period, and moving the needle plug to the closed position to end the cleaning time period and start a drying time period.

[0024] Other aspects of the invention include one or more of the following, alone or in any suitable combination: The compressed gas may be selected from the group consisting of air, nitrogen, and carbon dioxide; The velocity of the emitting gas jet flowing over the needle plug is sufficient to impart a Coanda effect to generate a zone of reduced pressure. [Brief explanation of the drawings]

[0025] [Figure 1A] 1 is a cross-sectional view of a ferrule end with an optical fiber end therein, with a flat end surface, according to the prior art. [Figure 1B] 1 is a cross-sectional view of a ferrule end with an optical fiber end therein, the ferrule end having a convex end surface, according to the prior art; [Figure 1C] 1 is a cross-sectional view of a ferrule end with an optical fiber end therein, with an angled end surface, according to the prior art. [Figure 2] 1 is an elevational view of a connector fitting having a ferrule end therein according to the prior art; [Figure 3] 1 is a partial cross-sectional view of two ferrule ends with optical fibers therein in a coupling for interconnecting optical fibers according to the prior art; [Figure 4]1 is a schematic cross-sectional view of a ferrule end with an optical fiber end therein, with an expanded beam end surface, according to the prior art; [Figure 5] 1 is a schematic cross-sectional view of two ferrule ends with expanded beam optical fibers therein in a coupling for interconnecting optical fibers according to the prior art. [Figure 6] FIG. 6 is a schematic cross-sectional view of one of the ferrule connectors of FIG. 5. [Figure 7A] 1 is a schematic diagram of atmospheric pressure acting on a jet of air or other gas. [Figure 7B] FIG. 7B is a schematic diagram of the air jet of FIG. 7A traversing the surface of a curved or bent structure. [Figure 8] 1 is a schematic cross-sectional view of a nozzle according to an embodiment of the present invention. [Figure 9] 1 is a schematic cross-sectional view of a nozzle according to an embodiment of the present invention positioned to clean an exposed optical fiber end face (i.e., an optical fiber end face that is not enclosed within a connector). [Figure 10] 10 is a schematic cross-sectional view corresponding to FIG. 9, but with the nozzle positioned to clean an optical fiber end face enclosed within a connector. [Figure 10A] FIG. 11 is an elevation view taken along line AA of FIG. 10. [Figure 11-1] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-2A] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-2B] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-3A]1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-3B] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-4A] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-4B] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-5A] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. [Figure 11-5B] 1 is an ink drawing replicating a photograph of an optical fiber end face magnified 80 times, showing contamination of the end face before and after cleaning with the method and device of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0026] In fiber optic networks, single-mode glass optical fiber strands with a diameter of approximately 8 micrometers are connected by encasing the strands in a protective jacket to form a cable and then butting two cable ends together. To do this, both termination ends of individual optical fiber strands are typically stripped of their jackets and then joined and encased in the center of a rod-shaped ferrule. This ferrule provides an expanded surface area for finish polishing of the exposed end faces of the optical fiber strands. Ferrules are typically made from ceramic, but can also be made from metal or plastic. Ferrules generally conform to standard sizes, with the most common end faces having diameters of 1.25 millimeters ("mm"), 1.6 mm, 2.0 mm, or 2.5 mm. Due to signal problems associated with back reflections, flat polished end faces are rarely used today. To ensure good physical contact between the two connectors when mated, the most common end face geometry for single-mode connectors is polished to a convex curve. In modern fiber networks, ferrule end faces are polished either with a convex physical contact finish ("PC Finish") or, less commonly, as an 8-degree angled profile ("APC Finish"). In the latter case, the end face is polished to a slightly curved, convex or spherically shaped profile with minimum and maximum curvatures defined by Telecordia GR-326 (the most commonly used set of vendor-neutral technical specifications and standards) as radii between 7 mm and 22 mm. Both profiles ensure the desired physical glass-to-glass contact of the fiber strands when the two connector end faces are mated. This physical contact reduces source separation losses due to Fresnel reflections and back reflections at the connection.The ferrules fit into various types of connector adapter housings that incorporate inner sleeves for precision interconnection with similar devices (e.g., connectors) via couplers or bulkheads, ensuring precise alignment of the butted optical fiber strands.

[0027] The cleanliness of cable connections is a critical factor in maintaining peak signal communication performance. Mated connectors are highly susceptible to microscopic amounts of contamination on each of the abutting optical fiber endfaces. Specifically, the optical transmission capabilities of a junction between two optical fibers can be significantly impaired by the deposition of microscopically small amounts of contamination on the polished end surfaces of the fibers. Sources of such microscopic contamination include smoke soot, dust, dirt, moisture, and other ambient contaminants (including oils, salts, and particles transferred by skin contact with technicians during connector manufacturing and assembly, cable installation, or field service operations). Small amounts of contamination in the form of microscopic particles or a microscopic haze of oil can significantly increase the attenuation of light across a butted connection. The need for clean optical fiber endfaces is becoming increasingly important as network traffic increases with the use of wavelength division multiplexing (WDM) technology. Also, as demands for signal traffic bandwidth in optical fiber communication systems increase, cleanliness at optical fiber endfaces becomes increasingly important due to the increasing power of lasers driving optical fiber signals. When a high-power laser strikes a microscopic piece of contamination on an optical fiber endface, the contamination can burn, leaving soot or char on the optical fiber endface, which can significantly degrade signal transmission through the connection.

[0028] Therefore, it is essential that the connector end surfaces be cleaned before the optical fiber ends are mated together and / or after they have become contaminated during normal use.

[0029] In single-mode fiber, the glass core diameter is only 8 microns in diameter, making it impossible to meaningfully inspect the ferrule endface without magnification. Specialized microscopes are designed to visually inspect the endface and confirm the removal of microscopic contamination before mating. Most inspection scopes magnify the endface between 200x and 400x, with the inspection image displayed on a small video screen. To minimize operator error in determining the cleanliness of optical fiber endfaces, it is common for inspection scopes to use software to confirm cleanliness using a pass / fail outcome when inspected according to industry standards (e.g., IEC 61300-3-35). Modern scopes can also maintain a digital archive of images of cleaned connectors, making it possible to record successful cleaning outcomes for many individual connectors.

[0030] Pressurized gas / solvent cleaning devices used to clean fiber end faces mounted within recesses in adapter housings (such as those described above in the description of the prior art) require the insertion of a nozzle into the adapter and therefore must be uniquely sized to clean either 1.25 mm, 1.6 mm, 2.0 mm, or 2.50 mm connectors. It is not possible to use a prior art cleaner designed for a 2.5 mm connector to clean a 1.25 mm connector, or vice versa. As a result, field technicians who routinely clean connectors with prior art cleaners must be equipped with various sizes of cleaners designed to clean specific sizes and types of connectors. Furthermore, the required insertion of a nozzle into the adapter requires physical contact, which increases the risk that the cleaning device will introduce or redistribute oil or dust contamination onto the optical fiber end face.

[0031] Currently, there are multimode fiber connectors with core diameters of either 50 microns or 60.5 microns, Multi Fiber Push On (MPO) connectors that are ideally suited for simultaneously mating 8, 12, or 24 fibers in a ribbon connector, and a variety of other fiber connector configurations that present similar cleaning challenges. Although single mode optical fiber connectors are discussed herein, the Coanda effect cleaning methods described herein are well suited to cleaning fiber connectors of all types and configurations and provide the same benefits as those described herein for single mode connectors.

[0032] Before discussing specific embodiments of the present invention, an explanation of the Coanda effect is useful. The Coanda effect is named after Henri Coanda, a Romanian engineer and mathematician. Coanda noted that a jet of fluid emerging from an orifice tends to follow adjacent surfaces, whether flat or curved, entraining fluid from the surroundings, causing a region of lower pressure to develop along the jet of fluid. The Coanda effect can be understood with reference to the well-known Bernoulli's principle, which states that a jet of fast-moving air has lower pressure than adjacent stationary or slower-moving air. Aircraft wings are curved at their upper surfaces, causing air to travel faster along the upper surface of the wing than along the bottom surface, thereby reducing the pressure acting on the upper surface. The resulting higher pressure above the bottom surface of the wing generates the "lift" that enables an aircraft to fly. The Coanda effect is explained with reference to Figures 7A and 7B. The jet G of air or other gas exiting the orifice O is moving at a velocity greater than that of the surrounding atmosphere (which may be stationary). Therefore, according to Bernoulli's principle, the jet G is forced to move through the pressure P of the surrounding atmosphere. a Lower pressure Pg In FIG. 7A, the pressure of the surrounding atmosphere (e.g., atmospheric pressure) is indicated by arrow P a , which is seen to act on the entire outer periphery of the jet G. In contrast, when the jet G is discharged adjacent to the surface S of the structure T, as shown in FIG. 7B, the structure T is subjected to atmospheric pressure P a from acting on one side of the jet G, and the unimpeded ambient pressure P a 7B, the jet G is brought into contact with the surface S. Even if the surface S is curved or bent, the ambient pressure P a causes the jet G to follow the contour of the surface S. The Coanda principle has applications in a variety of fields, such as airfoils (aerodynamics), gas burner flare tips, and film spraying. The present invention utilizes the Coanda effect to cause a cleaning and drying jet of fluid to be directed at, adhere to, and follow the contours of the ferrule end face and any surrounding surrounding structure, without contact between the cleaning device and the structure to be cleaned. To obtain the Coanda effect, care must be taken to accurately aim the jet and to position the nozzle from which the jet emerges the correct distance from the surface to be cleaned.

[0033] In Figures 8, 9, and 10, the typical controls used to control gas and solvent flow and to operate needle valves have been omitted to simplify the drawings. Such controls are well known in the art and do not, as such, form part of the present invention.

[0034] A cleaning device 100 (FIG. 8) according to an embodiment of the invention includes a housing 102 having a dispensing nozzle 104 at one end thereof. The dispensing nozzle 104 has two orifices: one orifice 106a at the discharge end of a gas path 106 and the other orifice 108a at the discharge end of a solvent path 108. The solvent orifice 108a is centered within the nozzle 104 and is closeable by a centrally positioned, movable, symmetrically shaped needle plug 110 having smooth sidewalls that slope to terminate in a sharp point at the tip of the needle plug. The needle plug 110 is normally positioned so that the solvent orifice 108a is in a closed position (not shown). A second, outer gas orifice 106a is adjacent to and concentric with the solvent orifice 108a. Orifices 106a and 108a are each circular in cross section, as best seen in FIG. 10A.

[0035] A needle plug 110 is disposed at the exit of the solvent pathway 108 and is movable (to the left as viewed in Figures 8, 9, and 10) to close the solvent pathway 108 and movable (to the right as viewed in Figures 8, 9, and 10) to open the solvent pathway 108. This movement of the needle plug 110 is indicated by the double-headed arrow V in Figure 8, and it can be seen that the amount of solvent flow is regulated by the position of the needle plug 110 and any selected degree of opening between fully open and fully closed.

[0036] A stream of dry, filtered compressed air from a compressed air source 112 is channeled through line 114 and passed through air outer orifice 106a parallel to the sloped sidewall of needle plug 110. The moving compressed air adheres to the sloped shape of the sharp point of needle plug 110 that protrudes beyond solvent orifice 108a, which provides a Coanda effect and results in an area of ​​low pressure at the sharp point of needle plug 110, indicated in Figures 8, 9, and 10 by jet column 118 with an unnumbered dashed boundary. The low-pressure zone surrounds jet column 118 and is somewhat trumpet-shaped. The low pressure causes the air stream velocity to concentrate, manipulating the air stream shape into a narrow jet column 118 that remains highly concentrated at a distance d between 0.25 and 0.75 inches (i.e., between 0.635 centimeters ("cm") and 1.905 cm) from the sharp tip of the needle plug 110. This allows the concentrated jet column 118 to be focused onto the exposed fiber end face for cleaning without the need for physical contact (e.g., scrubbing the end face with a cleaning cloth). Figure 9 shows the jet column 118 surrounded by a low-pressure zone impinging on the optical fiber end face 120 of the optical fiber male connector (i.e., plug) 113.

[0037] The spacing of the dispensing nozzle 104 from the fiber endface during cleaning allows the focused cleaning jet column 118 to clean and dry an optical fiber endface (female connector) that is recessed into an adapter housing 122 ( FIG. 10 ). The same cleaning nozzle can also clean an endface that is not mounted in an adapter (i.e., an optical fiber male connector 113 having a fiber endface 120 ( FIG. 9 )). Specifically, FIG. 9 shows an optical fiber male connector 113 having an optical fiber endface 120 being cleaned by the jet column 118 without physical contact between the cleaning device 100 and the connector 113. As shown in FIG. 10 , the focused jet column 118 can be directed through the open end of the adapter housing 122 and onto an optical fiber endface 124 that is mounted in a recessed area of ​​the adapter housing. An alignment sleeve 115 in the adapter housing 122 receives the male connector 113. Regardless of where the end face is positioned, no physical contact with the end face 124 is required, nor is there any need to insert the cleaning device 100 or any parts thereof into the adapter housing 122. A fixture that contacts the adapter housing and supports the cleaning device can be used to maintain precise positioning of the cleaning device relative to the adapter housing during a cleaning cycle.

[0038] The Coanda effect can be induced in both gases (e.g., air) and liquids. Thus, a high-purity, fast-drying solvent cleaner can be instantaneously injected into an existing air stream column. This is done by opening a removable needle plug 110, introducing solvent from a solvent 116 source through line 119 and directing it out the inner solvent orifice 108a. The low-pressure area that forms jet column 118 (FIGS. 8, 9, and 10) is created by the Coanda effect, causing the solvent to instantly atomize into a high-velocity mist of droplets within jet column 118. The air stream and atomized solvent droplets combine to create high-velocity jet column 118 containing the atomized mist, which generates a mechanical fluid cleaning action that can be directed onto an optical fiber endface for non-contact cleaning. When the solvent flow is shut off by moving the needle plug 110 to its closed position (to the left as viewed in FIGS. 8, 9, and 10), the jet column 118 dries and serves to cause residual solvent to evaporate. Evaporation of the solvent is facilitated by the reduced pressure in the jet column 118 caused by the Coanda effect, alleviating the need to apply a vacuum to remove residual solvent, as required by many prior art devices.

[0039] 8-10 is one embodiment of a nozzle of the present invention that, when properly spaced from the optical fiber endface, will produce the desired Coanda effect stream by properly combining pressurized gas and solvent streams. Variations in the illustrated dispensing nozzle design can be made that will also provide a similar Coanda effect.

[0040] Tests using a Coanda-induced low-pressure air stream column demonstrated excellent cleaning of microscopic dust, oil, or combined dust and oil residue across the entire area of ​​an optical fiber endface using a cleaning process of 5 to 10 seconds duration as follows: [Example]

[0041] a.) The dispensing nozzle is positioned between 0.25 and 0.75 inches (0.6335 cm and 1.905 cm) from the optical fiber endface, with the center of the air / solvent cleaning jet targeted at the apex (or center) of the polished optical fiber endface. The ferrule diameter of the endface can be as small as 1.25 millimeters ("mm"), and the endface can be recessed into the adapter housing so the nozzle is mounted to maintain proper targeting of the cleaning jet with no or minimal movement of the nozzle and cleaning jet during the cleaning cycle. b.) The cleaning process is initiated by a one second ramp-up of the compressed air flow dispensed from the nozzle, establishing a Coanda effect low pressure air flow from the tip of a symmetrically shaped movable needle, ensuring a constant focused air flow jet of high pressure air. c.) Moving the needle to the open position results in a 1-2 second timed injection of solvent from the tip of the symmetrically shaped needle and into the low pressure area established by the Coanda effect airflow. The low pressure causes the solvent to instantly atomize into a high velocity mist of tiny droplets within the focused airflow column. The total amount of solvent dispensed in the 1-2 second timed injection is approximately 24 microliters to 55 microliters. d.) After 1-2 seconds, the injection of solvent into the air flow is stopped by moving the needle to a closed position, while the focused air flow column is continued for a final 3-5 seconds, exposing the end face and surrounding area to a high velocity Coanda effect air flow, rapidly volatilizing the dispensed atomized solvent and drying the end face and surrounding area. [Example]

[0042] To reduce the cleaning cycle time, testing has demonstrated that the following timing cycle provides effective cleaning while reducing the overall cleaning cycle time by 1 second. The cleaning process is as follows: a.) Positioning a dispensing nozzle (such as nozzle 104 in Figures 8, 9, and 10) so that the jet flow emerging from the nozzle orifice is directed onto the connector end face when the cleaning cycle begins. b.) Initiating the flow of compressed air and simultaneously moving the needle plug to the open position, dispensing solvent from the nozzle, establishing a Coanda effect airflow of high pressure air injected with the solvent from the tip of a symmetrically shaped movable needle. The solvent is instantly atomized into a high velocity mist of tiny droplets in the focused airflow by the low pressure area established by the Coanda effect airflow. c.) After 1 second, the needle plug is moved to the closed position, stopping the flow of solvent into the air stream. The total amount of solvent dispensed in the 1 second timed injection is approximately 10-20 microliters. d.) With the needle in the closed position, the focused high-pressure air flow continues for an additional 2.5 seconds, exposing the end face and surrounding area to a high-velocity Coanda effect air flow, rapidly volatilizing the atomized solvent and drying the end face and surrounding area. e.) The cleaning cycle is completed after 3.5 seconds.

[0043] While any compressed gas (e.g., nitrogen or carbon dioxide) would work in this application, the cleaning tests described in Examples 1 and 2 used filtered, dry, compressed air generated by a small, portable compressor delivering air at a pressure of 17 PSIG and an air flow volume of 8.5 liters per minute.

[0044] The compressed air supply specifications illustrated herein represent one approach to achieving an ideal Coanda effect cleaning process. The Coanda effect air flow characteristics are manipulated by the surface condition and geometry of the dispensing nozzle and needle, and also by varying the air pressure and air flow volume. It should be understood that other nozzle designs, air pressures, and air flow volumes can also be used and adjusted to obtain the Coanda effect.

[0045] The high purity solvents used in this cleaning method are selected to have fast drying rates for all components. A suitable formulation is as follows, with the amount of each component present listed as a percentage by weight ("wt %) of the total weight of the solvent: [Example]

[0046] 60wt% -- 1,1,1,3,3,3-Hexafluoro-2-methoxypropane (CAS 13171-18-1) 34.9wt% -- 1-chloro-2,3,3-trifluoroprop-1-ene (CAS 1263679-68-0 and 1263679-71-5) 05.0wt% -- Acetone CAS 67-64-1 0.1wt% -- Nitromethane CAS 75-52-5 Boiling point: 52°C (126°F) NVR: < 10 ppm Moisture content: < 100ppm Steam pressure (calculated): 33.7kPa Specific gravity: 1.33g / ml Flammability: Not flammable according to ASTM-D56 Closed Cup Flash Point test. The above solvent formulations were used in the tests described herein, however, alternative chemicals with similar physical properties will produce similar results when using the Coanda effect cleaning process.

[0047] The solvent has static dissipative properties that eliminate the buildup of static charges that may be generated by existing edge triboelectric charges or by pressurized airflow containing dust particles being removed during cleaning. Using an ACL Staticide Electrostatic Locator meter (Model 300B), it was demonstrated that surfaces charged with 4,000-5,000 volts prior to cleaning were reduced to zero volts upon completion of the cleaning cycle described above.

[0048] Because the cleaning method of the present invention does not involve wiping or rubbing contact with the endface, cleaning does not develop triboelectric charges on the optical fiber endface. Furthermore, using a solvent with static-dissipative properties helps prevent triboelectric charges from developing for other reasons because the solvate dissipates such charges. Therefore, the cleaning process of the present invention eliminates triboelectric charges that may already be present on the plug, endface, and associated connector components. Triboelectric charges may be generated by the movement of the plug assembly during insertion and withdrawal of the plug from the adapter housing for inspection or cleaning. By eliminating static charges across the entire endface and immediately adjacent associated areas, the cleaning process eliminates the possibility of static-induced dust particle migration after the connector plug is mated.

[0049] Because the dispensing nozzle is positioned 0.25 to 0.75 inches (0.635 to 1.905 cm) away from the fiber endface (FIG. 10), the nozzle does not need to be custom sized to fit a specific endface size. This means that one size cleaning nozzle can clean a wide range of connector sizes from 1.25 mm to 2.5 mm, as well as other commonly used connector configurations and sizes. It should be noted that the specified distance from the outlet nozzle to the endface is measured from the tip of the needle plug 110, as indicated by dimension d in the endface, FIGS. 8, 9, and 10.

[0050] Because the cleaning nozzle is spaced from the fiber endface during cleaning, the cleaning process of the present invention cleans 100% of the endface, regardless of polish, curvature, or endface geometry. This 100% cleaning prevents the presence of contamination in the area outside the endface diameter, which may pass inspection scope software metrics but then interfere with the signal by migrating to the apex of two butted fibers mated in an adapter.

[0051] For male and female connectors, microscopic amounts of end face contamination are carried away from the end faces and away from the connectors by the focused cleaning jet column, where it is either harmlessly carried away by the air flow and / or volatilized as the solvent evaporates during the drying phase of the cleaning cycle.

[0052] The amount of atomized solvent droplets dispensed in the slower cleaning cycle of Example 1 totals 24 to 55 microliters, while the faster cleaning cycle of Example 2 uses only 10 microliters. These small amounts of solvent used in the cleaning process are quickly evaporated as part of the drying process. Liquid present on adjacent surfaces does not run onto the end face after cleaning. There is also no solvent leakage from the cleaned end face adapter to adjacent connectors, other adapter housings, or communications / electronic devices located near the connector adapter assembly. The plug and end face are dry, clean, and ready to use after cleaning.

[0053] The industry's more widely used contact cleaning devices, as explained above, are often referred to in the industry as "clickers." Using such prior art clickers as a baseline for comparing cleaning performance, Example 4 below demonstrates the results of a cleaning trial comparing Coanda effect cleaning results with baseline "clicker" cleaning outcomes. The cleaning test results in the table below were performed on a 1.25 mm LC ("Lucent Connector") type connector, which is considered the most difficult connector to clean due to its small end-face diameter. The Lucent Connector is the fiber industry designation for 1.25 mm connectors originally developed by Lucent Technologies. [Example]

[0054] Because the industry lacks standardized cleaning test methods, the tests documented below were conducted under controlled laboratory conditions using methodology developed by MicroCare Critical Cleaning Laboratory, New Britain, Connecticut (a laboratory maintained by an affiliate of the applicant). Testing for cleaning outcome was performed using a Viavi, FVDi-2080 inspection microscope equipped with an FMA-LC adapter fitting. Results were determined using Viavi FiberChekPRO Software programmed in accordance with IEC-61300-3-35, Ed. 2.0; Pass / Fail for single mode Fiber Ultra Polished Connectors (SM UPC).

[0055] Testing Methodology 1. Clean, inspect, and verify visually and using inspection scope software that the target 1.25 LC endface is perfectly clean, with no contamination or scratches to confirm a "pass" outcome. 2. Contaminate known clean 1.25 LC endfaces with either Arizona road dust to replicate particulate contamination or artificial sebum to replicate human sebum formulated according to ASTM D4265-14. Methods for application of contamination were developed to provide consistent application of each contamination type for each endface test in order to minimize variability in terms of the amount and density of contamination on the endface prior to cleaning trials. 3. Tested cleaning methods: a. STICKLERS® brand CLEANCLICLICKER® #MCC-CCU125, one complete activation for each cleaning attempt. b. IBC brand cleaner H125 #12910, one complete run for each cleaning attempt. c. Coanda effect, one 6-second cycle for each cleaning trial, the optical fiber endface was fixed in the center of the dispensing nozzle (104 in FIG. 9) 0.25 inches from the cleaning nozzle. (Distance d in FIG. 9 is 0.25 inches.) It should be noted that the cleaning results obtained with the 3.5-second cleaning cycle described elsewhere herein were similar to those obtained with the 6-second cleaning cycle of this Example 4. 4. After the first cleaning attempt, inspect with the inspection scope software, which determines a "pass / fail" outcome. If the first attempt is a "pass," no additional cleaning is required. If it is a "fail," repeat the cleaning on the same end face and inspect with the scope. No more than three cleaning attempts are performed for each individual trial. 5. If the cleaning result is "fail" after three attempts, this will be considered in the average number of cleanings to pass the column and the reason for the failure will be recorded. 6. For each software-determined "pass" outcome at an endface, a visual review of the inspection scope video display is performed to determine under which of the following conditions the endface was "passed" by the software: a. The endface passed according to the software tolerances, but was not perfectly clean all the way to the edge of the endface. b. The end face showed scratches or other linear defects. c. The endface passed according to the software and visual review of the video screen showed the endface to be "perfectly clean" with no visible residue. Perfectly clean indicates that the endface was free of contamination right down to the outer edge. 7. Ten test trials of each cleaning method were performed. The results are reported in Table 1.

[0056] [Table 1]

[0057] Cleaning results; inspection scope image Figures 11-1 to 11-5B are photographs of the end faces of 1.25mm LC type connectors, magnified 80 times. Ink drawing of These end faces were cleaned and tested according to the methodology detailed above.

[0058] Figure 11-1 Clean end faces, free of contamination or defects. This is the ideal end face condition for connector cleanliness before making the mated interconnection in the adapter housing. This is the condition of each connector before each cleaning trial detailed above.

[0059] Figure 11-2A End face with Arizona road dust before cleaning with a CCU125 clicker.

[0060] Figure 11-2B Endface with Arizona road dust after cleaning with CCU125. Passed according to the inspection scope software. Note that the apex (center) of the endface is clean, but the areas furthest from the apex have an increased presence and concentration of particles.

[0061] Figure 11-3A 1 is an end face with Arizona road dust before cleaning by the Coanda effect.

[0062] Figure 11-3B End face with Arizona road dust after Coanda effect cleaning. Passed according to inspection software with no remaining dust contamination. Perfectly clean.

[0063] Figure 11-4A End surface with sebum oil before cleaning with a CCU125 clicker.

[0064] Figure 11-4B This is an end face with sebum oil after cleaning with a CCU125 clicker. It passed according to the inspection software, but only the apex area of ​​the connector was cleaned. The outer edge of the connector remains uncleaned because the convex curvature of the end face prevents full contact with the clicker cleaning tip.

[0065] Figure 11-5A 1 is an end surface with sebum oil before cleaning by the Coanda effect.

[0066] Figure 11-5B An end face with sebum oil after Coanda effect cleaning. Passes according to the inspection software, with the entire end face cleaned down to the top outer edge of the end face. [Example]

[0067] A particularly useful solvent has the following composition: 83wt% HFE-7100: Hydrofluoroether, containing: 55wt% to 90wt% isobutyl isomers: CAS# 163702-08-7, Methyl nonafluoroisobutyl ether 10wt% to 45wt% butyl isomers: CAS #163702-07-6, methyl nonafluorobutyl ether 10wt% Asahi AS300 Hydrofluoroether, containing: 90wt% Z-isomer: CAS#1263679-68-0 10wt% E-isomer: CAS#1263679-71-5 7wt% Heptane: CAS# 142-82-5 The physical properties of this solvent are as follows: Boiling point: 56°C (132°F); recorded during fractional distillation. The boiling point indicates how quickly a fluid will dry out. Non-Volatile Residue ("NVR"): Less than 10 ppm, collected per ASTM D2109. This is important because the solvent needs to be consistently high purity because the contamination you are removing is microscopic. If there is an NVR higher than 10 PPM, there is a risk of adding microscopic contamination to the area being cleaned. Moisture content less than 100 ppm; collected by Karl Fischer titrator per ASTM D3401. Calculated vapor pressure: 24.7 kPa. (Vapor pressure was calculated using the mole fractions and vapor pressures of the three components at 25°C.) Tests have shown that the ideal vapor pressure is about 24.7 kPa (e.g., about 25 kPa). This plays a role in how quickly the solvent evaporates. If the vapor pressure of the cleaning fluid is more than 20% lower than about 25 kPa, the fluid will evaporate more slowly, which means that the drying time after cleaning will be too long. Slow-drying solvents can migrate back onto the endface after cleaning, potentially transferring contamination back onto the endface. Slow-drying solvents can also migrate onto connectors immediately adjacent to the connector being cleaned, which is a hazard when connectors are closely packed in racks and in direct proximity to other connectors. If the vapor pressure is more than 20% higher than about 25 kPa, this will result in the solvent drying too quickly, i.e., evaporating too quickly while in the high velocity Coanda air stream, resulting in an insufficient amount of solvent to properly clean the connector end face. Specific gravity: 1.39 g / ml; measured by hydrometer at 25° C. 1.39 is the value for water. Having a higher specific gravity makes the solvent denser and more able to lift microscopic contamination off the surface through buoyancy. For example, oak (which is a relatively dense wood) has a specific gravity of 0.75, which means that oak dust / particles and similar construction dusts will easily become suspended in this solvent. A heavier solvent is beneficial for cleaning because it requires less time and less solvent is used, cleaning even smaller amounts of microscopic contamination on the edge. The above attributes are useful for solvents used in the practice of this invention. [Example]

[0068] Tests were performed to demonstrate the effect of Coanda effect air flow on solvent drying time. A steady-state air supply delivered a clean, dry air flow through a dispensing device positioned vertically above the center of the basin of the test fixture described below. Two different dispensing devices were alternately used to deliver air flow at the same pressure and velocity to dry 10 microliters of solvent. The only difference between the two methods of delivering the air flow was that in one set of tests, air was flowed directly onto the solvent from the orifice of a conventional syringe cannula, while in the other set of tests, air was flowed onto the solvent from an orifice incorporating a needle valve to establish a Coanda effect air flow. A needle was positioned in the orifice, as shown in Figures 8, 9, and 10, but only dry air was flowed.

[0069] Test Details The test used a fixture to vertically position the air delivery device 0.250 inches (0.635 cm) above a reservoir-like depression centered in the bottom of a shallow cylindrical cup having an outer diameter of 0.585 inches (1.486 cm), an inner diameter of 0.511 inches (1.298 cm), and providing circumferential walls 0.074 inches (0.188 cm) thick and 0.197 inches (0.500 cm) high. The reservoir formed in the bottom of the cup had an outer diameter of 0.289 inches (0.734 cm) and a depth of 0.028 inches (0.071 cm). The reservoir then had 10 microliters ("μL") of the solvent of Example 5 placed therein using a Fisherbrand precision-dosing single syringe, described below.

[0070] The following equipment was used in the solvent evaporation tests. To deliver the air flow to dry the solvent in the bath, a syringe with a conventional circular cannula for non-Coanda air flow and a conventional artist's airbrush with a needle valve arranged in the manner shown in Figures 8, 9, and 10 were used to provide the Coanda air flow. To mitigate as many variables as possible, the syringe cannula orifice (for air flow) was sized to be as close as possible to the air flow orifice in the airbrush. The syringe orifice diameter was 0.0095 in. 2 and the airbrush orifice diameter is 0.0041in 2 The larger diameter of the conventional cannula gives it some advantages over the airbrush. The air velocity dispensed from the syringe was controlled to match the air velocity exiting the airbrush, which was 4.5 meters per second ("m / s").

[0071] The meter used to check air flow was an Air Science - Air Velocity Control Meter. The device used to dispense 10 microliters of solvent was a Fisherbrand Single Syringe Pump Model 78-0100L. The room temperature at the time of testing was 65°F (18.3°C) on one day of the test and 73°F (23.9°C) on the other day of the test, with the relative evaporation rate being the same on both days, although evaporation times would be shorter on the warmer days.

[0072] A precise dose of 10 μL of solvent was deposited into the bath, and then the compressor was turned on, blowing air through the delivery device directly onto the solvent in a direction perpendicular to the surface of the solvent. The total time to dryness (evaporation of all 10 μL of solvent) was the average of the times measured for both syringe and airbrush methods over at least 20 test cycles. The results are as follows:

[0073] [Table 2]

[0074] Overall, the time difference is significant. Table 2 above shows that the Coanda effect air stream dried 10 μL of solvent in the bath about 3 seconds faster on average than air from a syringe, which is about a 37% faster rate than non-Coanda effect air flow. This test demonstrates that the Coanda effect air flow establishes conditions (both directed air flow and low-pressure zones) that significantly enhance solvent drying times.

[0075] According to the present invention, the solvent is atomized in the air flow by the Coanda effect, which further speeds drying time compared to using a slug of non-atomized solvent. The Coanda effect plays an essential role in achieving a cleaning cycle (which is actually only about 3.5 seconds in total duration). The cleaning cycle involves the delivery of compressed air (or other suitable gas) for about 1 second, followed by shutting off the solvent flow to provide dry air or other gas for about 2.5 seconds. A short cleaning cycle time is very important. Fiber optic cable connectors can contain many individual optical fiber end faces, for example, as many as 800 male connectors connected to 800 female connectors in a cabinet. As a result, as many as 1600 end faces must be cleaned. Saving even a few seconds per end face provides significant time savings.

[0076] Although the present invention has been described in detail with reference to specific embodiments thereof, it is not intended that these specific embodiments be construed as limitations on the scope of the invention. [Explanation of symbols]

[0077] 10a, 10b, 10c Optical fiber strands 12a, 12b, 12c Ceramic ferrules 14a, 14b, 14c Ferrule end face 16 connectors 16' Connector 18 Coupler, bulkhead 19 Fiber optic cable 19' fiber optic cable 20 optical fiber strands 22 Outer protective jacket, sheath 24 EB ferrule 24' ferrule 24a End face 26 Lens 26' lens 28 Connectors 28' Connector 100 Cleaning Devices 102 Housing 104 Dispensing Nozzle 106 Gas Route 106a Air outer orifice 108 Solvent Pathways 108a Solvent orifice 110 Needle plug 112 Compressed air supply source 113 Fiber Optic Male Connector 114 lines 115 Alignment Sleeve 116 Solvent 118 Jet Column 119 Line 120 Optical fiber end face 122 adapter housing 124 Optical fiber end face d distance G Jet O Orifice P a Ambient pressure, atmospheric pressure P g pressure T structure V move

Claims

1. 1. A method of cleaning an end face of an optical fiber with a cleaning device including a nozzle having a nozzle outlet within which is disposed a needle plug having a reduced cross section in a direction of outward flow through the nozzle and terminating in a pointed tip facing outward from the nozzle; The method comprises: flowing a stream of compressed gas through the nozzle around the needle plug and through the nozzle outlet, the needle plug and the nozzle outlet configured to form an emitted gas jet exiting the nozzle outlet, the emitted gas jet forming a zone of reduced pressure relative to ambient pressure, the zone of reduced pressure surrounding the emitted gas jet; aligning the nozzle outlet with the end face and positioning the sharp tip of the needle plug 0.64 cm to 1.91 cm from the end face; introducing a liquid solvent into the stream of compressed gas upstream of the nozzle outlet, whereby the solvent is atomized within the emitting gas jet; impinging an emitted gas jet containing atomized solvent onto the end surface for a cleaning time period; interrupting the introduction of solvent into the stream of compressed gas to generate a dry gas jet and impinging the resulting dry gas jet onto the end surface for a drying time period to remove solvent by evaporation accelerated by the zone of reduced pressure; A method comprising:

2. The method of claim 1 , wherein the cleaning time period is from 0.5 seconds to 2 seconds and the drying time period is from 1 second to 4 seconds.

3. 3. The method of claim 1 or 2, wherein the liquid solvent has a vapor pressure of 20 kPa to 30 kPa at 25°C and 1 atmosphere, a Kauri-butanol value of 18 to 44, and is non-flammable according to the ASTM D-56 closed cup flash point test.

4. The liquid solvent introduced into the gas jet comprises: (a) 83 wt% hydrofluoroethers comprising 55 wt% to 90 wt% methyl nonafluoroisobutyl ether and 10 wt% to 45 wt% methyl nonafluorobutyl ether; (b) 10 wt. % hydrofluoroether containing 90 wt. % Z-isomer and 10 wt. % E-isomer; (c) 7 wt% heptane; Including, 3. The method of claim 1, wherein the solvent contains less than 10 ppm of non-volatile residue and less than 100 ppm of water.

5. The liquid solvent introduced into the gas jet comprises: 60 wt% 1,1,1,3,3,3-hexafluoro-2-methoxypropane; 34.9 wt% 1-chloro-2,3,3-trifluoroprop-1-ene, 5.0 wt% acetone, 0.10 wt% nitromethane, 3. The method of claim 1 or 2, comprising:

6. the nozzle outlet includes a gas outlet and a separate solvent outlet, and the needle plug is disposed in the solvent outlet; The method comprises: moving the needle plug between an open position and a closed position, the open position opening the solvent outlet and dispensing solvent into the stream of compressed gas, and the closed position stopping dispensing of solvent into the stream of compressed gas; moving the needle plug to the open position to initiate the cleaning time period; moving the needle plug to the closed position to terminate the cleaning time period and begin the drying time period; 3. The method of claim 1 or 2, further comprising:

7. 3. The method of claim 1, wherein the compressed gas is selected from the group consisting of air, nitrogen, and carbon dioxide.

8. 3. The method of claim 1 or 2, wherein the velocity of the ejected gas jet flowing around the needle plug is sufficient to cause a Coanda effect to generate the zone of reduced pressure.

Citation Information

Patent Citations

  • Sprinkler structure with adjustable

    CN205253406U

  • Fluid nozzle assemblies

    EP1702685A1

  • FIBER OPTIC DEVICE END FACE CLEANING APPARATUS AND METHOD

    JP2005533293A

  • JP2007/0164130

  • Coater

    JP2007014912A