The present invention relates to a drying system and, more particularly, to a drying system for drying a fiber optic ferrule.
A fiber optic connector generally comprises a housing and a fiber optic ferrule mounted in the housing. The fiber optic ferrule has a ferrule and an optical fiber inserted into a bore of the ferrule. A front end of the optical fiber protrudes from a front end face of the ferrule by a predetermined distance. The optical fiber is fixed in the bore of the ferrule by an adhesive filled in the bore of the ferrule.
After the optical fiber is fixed in the bore of the ferrule, the front end face of the fiber optic ferrule is processed. The processing of the front end face of the fiber optic ferrule generally includes polishing the front end face of the fiber optic ferrule, cleaning the polished fiber optic ferrule to remove the polishing powder from the fiber optic ferrule, drying the cleaned fiber optic ferrule, and wiping the front end face of the dried fiber optic ferrule to remove dust from the front end face of the fiber optic ferrule. The processing of the fiber optic ferrule is generally performed manually, which is inefficient and complicates maintaining quality processing. Furthermore, the fiber optic ferrule is easily damaged during manual processing.
A drying system comprises a drying box, a carrier moving and holding device, and a high pressure jet device mounted in the drying box. The carrier moving and holding device is configured to move a carrier into the drying box and hold the carrier in the drying box. A plurality of fiber optic ferrules are mounted on the carrier. The high pressure jet device is adapted to spray a high pressure gas on the carrier held in the drying box to dry the fiber optic ferrules.
The invention will now be described by way of example with reference to the accompanying Figures, of which:
Exemplary embodiments of the present invention will be described hereinafter in detail with reference to the attached drawings, wherein like reference numerals refer to like elements. The present invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that the present disclosure will be thorough and complete and will fully convey the concept of the disclosure to those skilled in the art.
A drying system adapted to simultaneously dry a plurality of fiber optic ferrules 410, which have been previously cleaned by a cleaning liquid, is shown in
A plurality of rows of fiber optic ferrules 410 are mounted on the carrier 400, as shown in
The carrier moving and holding device, as shown in
As shown in
A first sensor 310 is provided on the carrier support table 300 as shown in
The moving mechanism, as shown in
The lift mechanism, as shown in
The rotation mechanism, as shown in
The grabbing mechanism 130, as shown in
The high pressure jet device, as shown in
The horizontal moving device 530, 540 is configured to move the high pressure spray head 500 back and forth in a straight line in a horizontal direction. As shown in
The bracket 520 is configured to be adjustable in its position, so that an angle of the high pressure spray head 500 with respect to the carrier 400 is adjustable. As shown in
In the embodiment shown in
In an embodiment, the drying system further comprises an air suction equipment connected to an exhaust port 210 of the drying box 200 and configured to suck gas and dust out of the drying box 200 through the exhaust port 210. Wet and hot air and the impurities in the drying box 200 are sucked out, further improving the drying efficiency. The drying box 200 has an inclined bottom wall; the exhaust port 210 is provided at a lowest location of the inclined bottom wall of the drying box 200. Residual liquid thereby smoothly flows to the exhaust port 210.
A drying process of the drying system will now be described in greater detail with reference to
The carrier 400, on which the plurality of fiber optic ferrules 410 are mounted, are first placed on the carrier support table 300. The carrier 400 is supported on the carrier support table 300 in the horizontal posture parallel to the horizontal plane.
The grabbing mechanism 130 is then moved up by the lift mechanism to move the gripper 131 of the grabbing mechanism 130 out of the drying box 200. The grabbing mechanism 130 is rotated to the horizontal posture by the rotation mechanism and moved down by the lift mechanism to move the grabbing mechanism 130 onto the carrier support table 300.
The carrier 400 to be dried is then grabbed from the carrier support table 300 by the grabbing mechanism 130. The grabbing mechanism 130 is moved up by the lift mechanism, the grabbing mechanism 130 is rotated to the vertical posture by the rotation mechanism, and the grabbing mechanism 130 is moved down by the lift mechanism so that the gripper 131 of the grabbing mechanism 130 and the grabbed carrier 400 are moved into and held in the drying box 200. In another embodiment, the grabbing mechanism 130 may grab a plurality of carriers 400 at one time, so as to further improve the drying efficiency of the fiber optic ferrules 410.
Then, the high pressure jet device is turned on, so that the dry high pressure gas is sprayed out of a row of nozzles, arranged vertically, of the high pressure spray head 500 to dry the carrier 400 and the fiber optic ferrules 410 on the carrier 400. The dry high pressure gas may be sprayed in a direction inclined to the surface of the carrier 400. The horizontal moving device 530, 540 is controlled to move the high pressure spray head 500 back and forth in a longitudinal direction of the carrier 400 while the high pressure spray head 500 is spraying the dry high pressure gas, so as to dry all fiber optic ferrules 410 on the carrier 400. The air suction equipment connected to the exhaust port 210 of the drying box 200 is operated to suck the wet and hot air and the impurities out of the drying box 200 while the fiber optic ferrules 410 are dried.
After the carrier 400 and the fiber optic ferrules 410 on the carrier 400 have been dried, the grabbing mechanism 130 is moved up by the lift mechanism, so as to move the carrier 400 grabbed by the grabbing mechanism 130 out of the drying box 200. The grabbing mechanism 130 and the carrier 400 grabbed by the grabbing mechanism 130 are rotated to the horizontal posture by the rotation mechanism. The grabbing mechanism 130 is then moved down by the lift mechanism, so as to move the grabbing mechanism 130 onto the carrier support table 300. Finally, the grabbing mechanism 130 is released, so as to loosen the dried carrier 400 and place the carrier 400 on the carrier support table 300.
Number | Date | Country | Kind |
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2015 1 0589471 | Sep 2015 | CN | national |
This application is a continuation of PCT International Application No. PCT/IB2016/055538, filed on Sep. 16, 2016, which claims priority under 35 U.S.C. § 119 to Chinese Patent Application No. 201510589471.5, filed on Sep. 16, 2015.
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Number | Date | Country | |
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20180267254 A1 | Sep 2018 | US |
Number | Date | Country | |
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Parent | PCT/IB2016/055538 | Sep 2016 | US |
Child | 15981139 | US |