IP Library Granted Patent US 12,735,344
Granted Patent B2
US 12,735,344 · App. 18/558,491 · Granted Sep 15, 2026

Process of making multi-core fiber preform by integrating core rods and cladding cylinder

Inventors: Qiulin Ma (Buford, GA); Kai Huei Chang (Buford, GA); Kay Schuster (Hanau, DE); Michael Lorenz (Hanau, DE)
Assignees: HERAEUS QUARTZ NORTH AMERICA LLC; HERAEUS QUARZGLAS GMBH & CO. KG
C03B37/01222C03B37/01231C03B37/01245C03B37/01257C03B37/0126C03B37/07
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Quick Facts
Patent No.
US 12,735,344
App. No.
18/558,491
Granted
Sep 15, 2026
Kind
B2
Abstract

A process for manufacturing an MCF preform having a center longitudinal axis, a plurality of core rods each positioned in a respective core hole and extending along the axis, and a common cladding covering each of the plurality of core rods. The process includes the following steps. A cylinder is provided which will form the cladding of the preform and may have a center core hole. Peripheral core holes are created in the cylinder extending along the longitudinal axis. Each of a plurality of core rods is inserted into a respective peripheral core hole. The cylinder with the core rods inserted in the respective core holes is heated by exposing the cylinder and core rods to a heating element, thereby integrating the core rods and the cylinder and forming the preform, wherein the position error of the core holes with respect to the diameter of the preform is ≤0.6%.

Claims (42)

1 . A process for manufacturing a multicore optical fiber preform having a center longitudinal axis, a plurality of core rods each being positioned in a respective peripheral core hole and extending along the longitudinal axis, and a common cladding covering each of the plurality of core rods, the process comprising the steps of:

providing a cylinder which will form the cladding of the preform, the cylinder having no center core hole;

creating a plurality of peripheral core holes in the cylinder extending along the longitudinal axis;

inserting each of a plurality of core rods into a respective peripheral core hole of the cylinder;

heating the cylinder with the plurality of core rods inserted in the respective peripheral core holes by exposing the cylinder and core rods to a heating element, thereby integrating the plurality of core rods and the cylinder and forming the preform; and

before the step of creating the plurality of peripheral core holes, a step of defining positions of the plurality of peripheral core holes in the cylinder by considering a positional variation of the plurality of peripheral core holes before and after the step of heating, and wherein the step of creating the plurality of peripheral core holes includes creating the plurality of peripheral core holes at the defined positions,

wherein a position error of the plurality of peripheral core holes with respect to a diameter of the preform is no larger than 0.6%,

wherein the step of heating the cylinder is performed as part of an upward draw process in which the cylinder is collapsed onto the core rods in the peripheral core holes, the upward draw process including:

supporting from below both the cylinder and the core rods so that the weight of the cylinder and the core rods is completely supported from below and the core rods do not move longitudinally relative to the cylinder as the cylinder collapses onto the core rods, and

moving the cylinder and the core rods upward with respect to the heating element so the cylinder is continuously collapsed onto the core rods while the cylinder and core rods move upward,

wherein a differential flow of the cylinder and the core rods along the longitudinal axis due to gravity is minimized,

wherein the upward draw process includes simultaneously stretching the cylinder and core rods while collapsing the cylinder onto the core rods, and

wherein the step of defining positions of the plurality of peripheral core holes in the cylinder by considering a positional variation comprises:

a structure parameter after the heating step, B is defined as a final diameter of the preform,

structure parameters before the heating step, a is defined as an original diameter of the cylinder, r is defined as an original radius of one of the plurality of core rods, R is defined as an original radius of one of the plurality of peripheral core holes into which the respective one of the core rods is to be inserted, and D is defined as a distance between a center of the respective one of the peripheral core holes and the central longitudinal axis of the cylinder, and

the defined positions are defined such that the distance (d′) from each peripheral hole center to a center of the preform after collapsing and stretching satisfies the following relation: d′≥(β/α)×(D−R+r).

2 . The process according to claim 1 wherein the cylinder has an outside diameter ranging from about 150 mm to 250 mm.

3 . The process according to claim 1 wherein the step of creating the plurality of peripheral core holes includes drilling the plurality of peripheral core holes.

4 . The process according to claim 1 further comprising, after the step of creating the plurality of peripheral core holes and before the step of inserting the core rods, a step of resizing the cylinder.

5 . The process according to claim 4 wherein the step of resizing the cylinder includes applying a partial vacuum or pressure to the plurality of peripheral core holes and only partially collapsing or expanding and stretching the cylinder without the core rods inserted in the peripheral core holes to reduce the size of the cylinder proportionally and/or to modify the ratio of a diameter of the cylinder to a diameter of the plurality of peripheral core holes.

6 . The process according to claim 4 wherein the step of resizing the cylinder is limited to size changes of the plurality of peripheral core holes of about 10% or less relative to the resized cylinder.

7 . A process for manufacturing a multicore optical fiber preform having a center longitudinal axis, a plurality of core rods each being positioned in a respective peripheral core hole and extending along the longitudinal axis, and a common cladding covering each of the plurality of core rods, the process comprising the steps of:

providing a cylinder which will form the cladding of the preform, the cylinder having a center core hole;

creating a plurality of peripheral core holes in the cylinder extending along the longitudinal axis;

inserting each of a plurality of core rods into a respective peripheral core hole of the cylinder and a center core rod into the center core hole;

heating the cylinder with the plurality of core rods inserted in the respective peripheral core holes by exposing the cylinder and core rods to a heating element, thereby integrating the plurality of core rods and the cylinder and forming the preform; and

before the step of creating the plurality of peripheral core holes, a step of defining positions of the plurality of peripheral core holes in the cylinder by considering a positional variation of the plurality of peripheral core holes before and after the step of heating, and wherein the step of creating the plurality of peripheral core holes includes creating the plurality of peripheral core holes at the defined positions,

wherein a position error of the plurality of peripheral core holes with respect to a diameter of the preform is no larger than 0.6%,

wherein the step of heating the cylinder is performed as part of an upward draw process in which the cylinder is collapsed onto the core rods in the peripheral core holes, the upward draw process including:

supporting from below both the cylinder and the core rods so that the weight of the cylinder and the core rods is completely supported from below and the core rods do not move longitudinally relative to the cylinder as the cylinder collapses onto the core rods, and

moving the cylinder and the core rods upward with respect to the heating element so the cylinder is continuously collapsed onto the core rods while the cylinder and core rods move upward,

wherein a differential flow of the cylinder and the core rods along the longitudinal axis due to gravity is minimized,

wherein the upward draw process includes simultaneously stretching the cylinder and core rods while collapsing the cylinder onto the core rods, and

wherein the step of defining positions of the plurality of peripheral core holes in the cylinder by considering a positional variation comprises:

a structure parameter after the heating step, β is defined as a final diameter of the preform,

structure parameters before the heating step, a is defined as an original diameter of the cylinder, r is defined as an original radius of one of the plurality of core rods, R is defined as an original radius of one of the plurality of peripheral core holes into which the respective one of the core rods is to be inserted, and D is defined as a distance between a center of the respective one of the peripheral core holes and the central longitudinal axis of the cylinder, and

the defined positions are defined such that the distance (d″) from each peripheral core hole center to a center of the preform after collapsing and stretching satisfies the following relation: d″≥(β/α)×[D−(R−r)×(1+R/D)].

8 . The process according to claim 7 wherein the cylinder has an outside diameter ranging from about 150 mm to 250 mm.

9 . The process according to claim 7 wherein the step of creating the plurality of peripheral core holes includes drilling the plurality of peripheral core holes.

10 . The process according to claim 1 further comprising, after the step of creating the plurality of peripheral core holes and before the step of inserting the core rods, a step of resizing the cylinder.

11 . The process according to claim 10 wherein the step of resizing the cylinder includes applying a partial vacuum or pressure to the plurality of peripheral core holes and only partially collapsing or expanding and stretching the cylinder without the core rods inserted in the peripheral core holes to reduce the size of the cylinder proportionally and/or to modify the ratio of a diameter of the cylinder to a diameter of the plurality of peripheral core holes.

12 . The process according to claim 10 wherein the step of resizing the cylinder is limited to size changes of the plurality of peripheral core holes of about 10% or less relative to the resized cylinder.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2025
From: MA, QIULIN; CHANG, KAI; SCHUSTER, KAY; LORENZ, MICHAEL
To: HERAEUS QUARTZ NORTH AMERICA LLC; HERAEUS QUARZGLAS GMBH & CO. KG
Reel/Frame 071922/0583 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2023
From: MA, QUILIN; CHANG, KAI HUEI; SCHUSTER, KAY; LORENZ, MICHAEL
To: HERAEUS QUARTZ NORTH AMERICA LLC; HERAEUS QUARZGLAS BITTERFELD GMBH & CO. KG
Reel/Frame 065424/0140 →
Continuity (2)
Provisional Application 63185055 · May 6, 2021
Related Publication 20240217860A1 · Jul 4, 2024
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