IP Library Granted Patent US 9,798,078
Granted Patent B2
US 9,798,078 · App. 15/141,540 · Granted Oct 24, 2017

Temperature compensated fiber bragg's grating filter

Inventors: Yung-Yu Tsai (Kaohsiung, TW); Chun-Chu Yang (Kaohsiung, TW)
Assignee: JINN HER ENTERPRISE CO., LTD.
G02B6/0218
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,798,078
App. No.
15/141,540
Granted
Oct 24, 2017
Kind
B2
Abstract

The present invention provides a filter composed of two layers of materials with different expansion coefficients. The difference between a length added to a whole section length of an outer low-expansion coefficient metal sleeve by a temperature change and a length added to a length of a whole section of high-expansion coefficient cylindrical coil spring arranged therein by the temperature change causes a stress-releasing or stress-increasing effect on the whole section of pre-tensioned high-expansion coefficient cylindrical coil spring arranged therein, so that a structure capable of compensating the wavelength shift of the fiber Bragg's grating filter caused by temperature by increasing or decreasing the refractive index is achieved.

Claims (18)

1. A temperature-compensated fiber Bragg's grating filter, comprising:

a single-mode optical fiber, comprising a fiber Bragg's grating therein;

a cylindrical coil spring series assembly formed by a cylindrical compression coil spring connected in series with a cylindrical tension coil spring, the single-mode optical fiber passing through the cylindrical coil spring series assembly, the fiber Bragg's grating in the single-mode optical fiber being arranged in the cylindrical compression coil spring in the cylindrical coil spring series assembly, the fiber Bragg's grating being pretensioned and fixed, and the thermal expansion coefficient of the springs of the cylindrical coil spring series assembly being higher than the thermal expansion coefficient of an outer metal sleeve mentioned below;

a fixed head-end connection ring or fixing adhesive, the fixed head-end connection ring or fixing adhesive, being fixedly connected with one end of the internal pretensioned fiber Bragg's grating, and the fixed head-end connection ring or fixing adhesive being also fixedly connected with one end of the external cylindrical compression coil spring;

a fixed tail-end connection ring or fixing adhesive, the fixed tail-end connection ring or fixing adhesive, being fixedly connected with the other end of the internal pretensioned fiber Bragg's grating, the fixed tail-end connection ring or fixing adhesive being also fixedly connected with the other end of the external cylindrical compression coil spring, and the pretensioned fiber Bragg's grating being formed by after the cylindrical compression coil spring is compressed and the fixed head-end connection ring or fixing adhesive and fixed tail-end connection ring or fixing adhesive are fixed, releasing the cylindrical compression coil spring to implement the effect of pretensioning the fiber Bragg's grating therein; and

an outer metal sleeve, the outer metal sleeve loosely jacketing the cylindrical coil spring series assembly, and both ends in the outer metal sleeve being fixedly connected with both ends of the cylindrical coil spring series assembly arranged therein through the two fixed connection rings or fixing adhesives in a non-pretensioning manner; and the fiber Bragg's grating filter composed of all the components in a concentric co-structuring manner with the axis of the optical fiber, wherein the temperature-compensated fiber Bragg's grating filter is characterized in that the difference between a change in the length of the outer metal sleeve caused by a temperature change and a change in the length of the cylindrical coil spring series assembly arranged therein caused by the temperature change causes a stress-releasing or stress-increasing effect on the pretensioned fiber Bragg's grating in the cylindrical coil spring series assembly arranged therein, so that a structure capable of compensating the wavelength shift of the fiber Bragg's grating filter caused by temperature by increasing or decreasing the refractive index is achieved.

2. The temperature-compensated fiber Bragg's grating filter of claim 1 , wherein the cylindrical compression coil spring between both ends of the pretensioned fiber Bragg's grating is connected in series with the cylindrical tension coil spring to form the cylindrical coil spring series assembly arranged in the outer metal sleeve, and the thermal expansion coefficient of the outer metal sleeve is lower than the thermal expansion coefficient of the cylindrical coil spring series assembly arranged therein.

3. The temperature-compensated fiber Bragg's grating filter of claim 1 , wherein the outer metal sleeve is a tubular metal sleeve, which is concentrically co-structured with the optical fiber therein.

4. The temperature-compensated fiber Bragg's grating filter of claim 1 , wherein the outer metal sleeve is a round-hole rectangular column-shaped metal sleeve, which is concentrically co-structured with the optical fiber therein.

5. A temperature-compensated fiber Bragg's grating filter, comprising:

a single-mode optical fiber, comprising a fiber Bragg's grating therein;

a cylindrical coil spring series assembly formed by a cylindrical compression coil spring connected in series with a cylindrical tension coil spring, the single-mode optical fiber passing through the cylindrical coil spring series assembly, the fiber Bragg's grating in the single-mode optical fiber being arranged in the cylindrical compression coil spring in the cylindrical coil spring series assembly and the fiber Bragg's grating being pretensioned and fixed, and the thermal expansion coefficient of the springs of the cylindrical coil spring series assembly being higher than the thermal expansion coefficient of an outer cylindrical coil spring mentioned below;

a fixed head-end connection ring or fixing adhesive, the fixed head-end connection ring or fixing adhesive being fixedly connected with one end of the internal pretensioned fiber Bragg's grating, and the fixed head-end connection ring or fixing adhesive being also fixedly connected with one end of the external cylindrical compression coil spring;

a fixed tail-end connection ring or fixing adhesive, the fixed tail-end connection ring or fixing adhesive being fixedly connected with the other end of the internal pretensioned fiber Bragg's grating, the fixed tail-end connection ring or fixing adhesive is also fixedly connected with the other end of the external cylindrical compression coil spring, and the pretensioned fiber Bragg's grating being formed by after the cylindrical compression coil spring is compressed and the fixed head-end connection ring or fixing adhesive and fixed tail-end connection ring or fixing adhesive are fixed, releasing the cylindrical compression coil spring to implement the effect of pretensioning the fiber Bragg's grating therein; and

an outer cylindrical coil spring, the outer cylindrical coil spring loosely jacketing the cylindrical coil spring series assembly in different coiling directions, and both ends in the outer cylindrical coil spring being respectively fixedly connected with both ends of the cylindrical coil spring series assembly arranged therein through the two fixed connection rings or fixing adhesives in a non-pretensioning manner; and the fiber Bragg's grating filter composed of all the components in a concentric co-structuring manner with the axis of the optical fiber, wherein the temperature-compensated fiber Bragg's grating filter is characterized in that the difference between a change in the length of the outer cylindrical coil spring caused by a temperature change and a change in the length of the cylindrical coil spring series assembly arranged therein caused by the temperature change causes a stress-releasing or stress-increasing effect on the pretensioned fiber Bragg's grating in the cylindrical coil spring series assembly arranged therein, so that a structure capable of compensating the wavelength shift of the fiber Bragg's grating filter caused by temperature by increasing or decreasing the refractive index is achieved.

6. The temperature-compensated fiber Bragg's grating filter of claim 5 , wherein the cylindrical compression coil spring between both ends of the pretensioned fiber Bragg's grating is connected in series with the cylindrical tension coil spring to form the cylindrical coil spring series assembly arranged in the outer cylindrical coil spring, and the thermal expansion coefficient of the outer cylindrical coil spring is lower than the thermal expansion coefficient of the cylindrical coil spring series assembly.

7. The temperature-compensated fiber Bragg's grating filter of claim 6 , wherein the cylindrical coil spring is a cylindrical tension coil spring, which is concentrically co-structured with the optical fiber therein.

8. The temperature-compensated fiber Bragg's grating filter of claim 5 , wherein the outer cylindrical coil spring is a cylindrical compressed coil spring, which is concentrically co-structured with the optical fiber therein.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 5, 2016
From: TSAI, YUNG-YU; YANG, CHUN-CHU
To: JINN HER ENTERPRISE CO., LTD.
Reel/Frame 038476/0370 →
Priority Claims (1)
TW 104113855 A · Apr 30, 2015 · national
Continuity (1)
Related Publication 20160320555A1 · Nov 3, 2016