MANUFACTURING APPARATUS AND MANUFACTURING METHOD FOR OPTICAL FIBER POROUS PREFORM
20200017396 ยท 2020-01-16
Assignee
Inventors
Cpc classification
C03B37/0148
CHEMISTRY; METALLURGY
C03B37/0144
CHEMISTRY; METALLURGY
C03B37/01486
CHEMISTRY; METALLURGY
International classification
Abstract
A manufacturing apparatus for an optical fiber porous preform includes a reaction chamber configured to accommodate a starting material; at least one main burner provided in the reaction chamber, the at least one main burner being configured to be supplied with a gas containing at least a source gas and a flammable gas, such that particulates are to be generated from reaction of the source gas and the flammable gas and deposited on the starting material; at least one auxiliary burner configured to be directed toward an end portion of the starting material on which the particulates are to be deposited; and an airflow guide provided such that at least part of the airflow guide is located across the at least one auxiliary burner from the starting material.
Claims
1. A manufacturing apparatus for an optical fiber porous preform, the manufacturing apparatus comprising: a reaction chamber configured to accommodate a starting material; at least one main burner provided in the reaction chamber, the at least one main burner being configured to be supplied with a gas containing at least a source gas and a flammable gas, such that particulates are to be generated from reaction of the source gas and the flammable gas and deposited on the starting material; at least one auxiliary burner configured to be directed toward an end portion of the starting material on which the particulates are to be deposited; and an airflow guide provided such that at least part of the airflow guide is located across the at least one auxiliary burner from the starting material.
2. The manufacturing apparatus for an optical fiber porous preform according to claim 1, wherein the airflow guide has an opening on a flame emission side, the opening allowing the auxiliary burner to emit flame, whereas the airflow guide covers a side of the auxiliary burner, the side being opposite to the flame emission side, and lateral sides as viewed from the flame emission side.
3. The manufacturing apparatus for an optical fiber porous preform according to claim 1, wherein the opening of the airflow guide is located downstream of an airflow generated in the reaction chamber with respect to the auxiliary burner.
4. The manufacturing apparatus for an optical fiber porous preform according to claim 1, wherein the auxiliary burner is configured to be immovable with respect to the starting material.
5. A manufacturing method for an optical fiber porous preform, the manufacturing method comprising: supplying gas containing a source gas and a flammable gas to at least one main burner; depositing particulates generated from reaction of the source gas and the flammable gas on a starting material, thereby to form a porous preform, while moving the at least one main burner relative to the starting material; and heating an end portion of the porous preform by an auxiliary burner while reducing, by an airflow guide at least part of which is located across the auxiliary burner from the porous preform, the airflow guide having an opening that allows the auxiliary burner to emit flame, an airflow flowing toward the flame emitted from the auxiliary burner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] The following describes an exemplary embodiment of the present disclosure with reference to the accompanying drawings. The disclosure, however, is not intended to be limited by the following embodiment. In each of the drawings, identical or corresponding constituent elements are denoted by identical reference signs as appropriate, and redundant explanations are omitted as appropriate. Furthermore, it needs to note that the drawings are schematic and that the relation of dimensions of respective elements and the like may be different from reality. Between the drawings also, portions that the relation of dimensions and the ratios are different from one another may be included.
[0020] First, a manufacturing apparatus and a manufacturing method for optical fiber porous preform according to one embodiment of the present disclosure will be described.
[0021] As illustrated in
[0022] The reaction chamber 11 is configured to be able to carry in and accommodate a target 16 and dummy rods 17. In the reaction chamber 11, provided are an air inlet 11a for introducing clean air from the outside or a predetermined air supply unit (not depicted), and an exhaust duct 11b for discharging gas into the reaction chamber 11. As the clean air is introduced into the reaction chamber 11 via the air inlet 11a and discharged from the exhaust duct lib, airflow 3 going toward the exhaust duct 11b from the air inlet 11a is generated in the reaction chamber 11. By the airflow 3, the surplus glass particulates floating in the reaction chamber 11 during the manufacturing of a porous preform 2 can be discharged from the exhaust duct 11b.
[0023] The glass-particulate synthesizing burner 12, which is a main burner, is made up of at least a single concentric multi-tube burner for depositing glass particulates on the target 16 as a starting material, or for performing sintering. In the glass-particulate synthesizing burner 12, simultaneously introduced from the gas supply unit 15 are a main raw material gas such as silicon tetrachloride (SiCl.sub.4), hydrogen (H.sub.2) gas, which is a flammable gas, oxygen (O.sub.2) gas, which is a combustion supporting gas, argon (Ar) gas as a blanketing gas, or the like. The dummy rods 17 are connected to corresponding ends of the target 16 and are grasped by corresponding grasping units (not depicted) for driving to rotate and driving to elevate the target 16. In the deposition of the glass particulates, a gas composed of vaporized SiCl.sub.4 gas, H.sub.2 gas, and O.sub.2 gas is supplied while being ignited and burned in the glass-particulate synthesizing burner 12. The SiCl.sub.4 that is subjected to hydrolysis reaction in the flames is turned into silica particulates and deposited around the target 16. Along with this, while the target 16 is being rotated, the glass-particulate synthesizing burner 12 is made to repeatedly reciprocate along the longitudinal direction of the target (arrows B in
[0024] As illustrated in
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[0026] As illustrated in
[0027] Next, first to seventh modifications of the wind guard in the embodiment of the present disclosure will be described.
[0028] First Modification
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[0030] Second Modification
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[0032] Third Modification
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[0034] Fourth Modification
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[0036] Fifth Modification
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[0038] Sixth Modification
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[0040] Seventh Modification
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[0042] The lateral surface shape (
[0043] The embodiment of the present disclosure in the foregoing enables the wind guards 20 and 21 serving as an airflow guiding unit to prevent the airflow 3 in the reaction chamber 11 from directly blowing against the flames of the auxiliary burner 13 and 14, respectively, and thus the flames are not greatly disturbed by the airflow 3 are stabilized, the sintering of the end portions of the porous preform 2 can be performed sufficiently. Thus, in the vitrification process performed after manufacturing the porous preform 2, the occurrence of cracks in the porous preform 2 can be suppressed.
[0044] In the foregoing, the embodiment of the present disclosure has been explained concretely. However, the present disclosure is not limited to the above-described embodiment, and various modifications based on the technical idea of the present disclosure can be made. For example, the numerical values presented in the above-described embodiment are mere examples, and different numerical values may be used as needed.
[0045] While, in the above-described embodiment, the example using SiCl.sub.4 as the glass material has been illustrated, for the glass material, SiHCl.sub.3, SiHCl.sub.2, and the like may be used, for example, and for Ge raw material as a dopant, GeCl.sub.4 may further be used. Moreover, a glass material such as siloxane may be used. Furthermore, as the flammable gas, in addition to H.sub.2, a short-chain hydrocarbon such as CH.sub.4, C.sub.2H.sub.6, C.sub.3H.sub.8, C.sub.4H.sub.10, and the like may be used, for example.
[0046] In the above-described embodiment, the glass-particulate synthesizing burner 12 has been made to reciprocate along the longitudinal direction of the target 16. However, the glass-particulate synthesizing burner 12 and the porous preform 2 only need to reciprocate relatively, and the porous preform 2 can be made to reciprocate with the glass-particulate synthesizing burner 12 standing still.
[0047] Furthermore, in the above-described third modification, an example of a shape for which the upper corner is rounded in the lateral surface shape of the wind guard 20 by the embodiment has been illustrated. However, it may be a shape for which the upper corner is rounded in the lateral surface shape of the wind guard 22 by the first modification or in the lateral surface shape of the wind guard 23 by the second modification.
[0048] With the manufacturing apparatus and the manufacturing method for the optical fiber porous preform of the present disclosure, the airflow guiding unit provided in the circumference of the auxiliary burner can suppress the flames of the auxiliary burner from being greatly disturbed, so that it is possible to sufficiently sinter the end portion of the optical fiber porous preform and to suppress the occurrence of cracks in the optical fiber porous preform in the vitrification process that is a post-process.
[0049] As in the foregoing, the manufacturing apparatus and the manufacturing method for the optical fiber porous preform according to the present disclosure are suitable for application to the manufacture of an optical fiber porous preform.