The present invention relates generally to heating elements, and particularly to steady-state heaters useful in certain processes, such as reducing diameters of optical fibers.
Micro heat sources play a major role in fiber optics and glass processing. In general they need to provide a steady, clean and controllable heating zone at temperatures that approach 2000° C.
At present, there are four major techniques for achieving the required heat and which are used in commercial machines:
flame (usually hydrogen flame)
electric filament
arc discharge
direct laser absorption in the fiber or glass object.
Each technique has its advantages and disadvantages such that one technique may be suitable for certain processing conditions and not for others. Direct absorption of laser energy in the glass provides the cleanest heating source; however, due to high and dynamic heat convection to the surroundings, it is difficult to precisely and uniformly heat objects with diameters of a few microns. Moreover, some processes require very stable heating sources, which are difficult to produce with conventional laser and delivery optics.
An electric filament may be shaped to produce a highly uniform heating zone around the glass object. Its temperature can also be controlled by controlling the voltage and current that flows through it. Unfortunately, the commonly used electric filament needs to be kept in an inert environment and its lifetime is limited to about tens of minutes at working conditions. Moreover, electric filaments tend to contaminate the processed glass to some extent.
Arc discharge can provide high temperatures and be used to process large diameter fibers yet it suffers from long term stability issues and is not appropriate for delicate and thin adiabatic structures. It can also contribute to contamination as particles from the electrode collide with the processed glass.
Delicate and low-loss components with diameters of a few microns may be produced and processed using a gas flame torch. This heating source in general is less appropriate for large and non-symmetric glass objects mainly due to the relatively large heating zone and flame instability. Furthermore, OH contaminations are almost unavoidable when a gas flame is used. For some applications such contaminations are not desirable.
The present invention seeks to provide a radiation pumped heater, as is described more in detail hereinbelow.
The radiation pumped heater directs thermal radiation to a highly stable platform (e.g., ceramic platform), which absorbs the radiation, causing its temperature to rise. The heated platform functions as a heat capacitor, contributing to the process stability, and also functions as a clean, long-lived heat source. This concept allows flexibility in the processing techniques and is appropriate for processing both large fibers as well as delicate components of sub-micron diameters. The radiation pumped heater is not just applicable for fiber and glass processing, but may also be used for other processes that require a steady and clean heat source.
A ceramic substrate is used as a heater. Electromagnetic radiation from an external source is absorbed in the substrate. Since ceramics typically have poor thermal conductivity, the absorbed power is poorly dissipated by heat conduction. This in turn allows the buildup of high temperatures with relatively low incident powers. Furthermore, since the electromagnetic power can be delivered by a laser beam having high brightness, the heat source can be intense and small. Some ceramics such as zirconia (zirconium dioxide ZrO2) have melting points at the range of 2500° C. and higher and are inert. The thermal conductivity of ZrO2 is in the range of 1.8-2.2 W/m·K. Combining the nature of the ceramic substrate, the radiation source and the delivery technique can allow the formation of an effective heater or heating element in which the high ceramic temperature is dissipated to the surrounding as black body radiation and by convection, similarly to a standard electro-resistant heating element. Among the advantages of the invention are:
a. The ability to reach very high temperatures (above 2000° C.) in an atmospheric environment.
b. The ability to control the heat distribution with high resolution.
c. The ability to dynamically and accurately control the temperature of the heated zone.
d. The ability to use high purity materials with low vapor pressure suitable for non-contaminating presses.
Comparison with existing technologies:
The table below compares commercial optical fibers and glass processing machines:
The present invention will be understood and appreciated more fully from the following detailed description taken in conjunction with the drawings in which:
Reference is now made to
It is noted that the ceramic substrate 10 may be quite porous, and the volume of the pores may constitute 90% or more of the total volume. Such porosity lowers the thermal conductivity (the pores are basically air pockets and air has very poor thermal conductivity). The high porosity also affects the thermal shock resistance of the ceramic substrate 10. It has been found that the zirconia substrate behaved well in tests even when heated rapidly,
Another application for such heating techniques is a miniature-sized furnace, as is now described with reference to
Reference is now made to
Reference is now made to
Reference is now made to
Reference is now made to
Apparatus 60 includes holders 65 and 66 for holding an optical fiber 14. Motors or actuators 63 and 64 control and establish the relative position of holders 65 and 66, respectively. Motors 63 and 64 and holders 65 and 66 are all mounted on a moving table for movement in the x- and z-axes. The moving table may include a base which is moved by a motor or actuator 61 along the x-axis and another base which is moved by a motor or actuator 62 along the z-axis.
The central portion of the fiber is heated by a radiation pumped heater 67. Camera(s) 68 provide visual monitoring and measurement of the heating and drawing process. A laser 76 (e.g., CO2 laser) emits a laser beam via a safety shutter 75 and half-wavelength plate 75A (for controlling the beam polarity) to a variable zoom telescope 70. The beam passes from the telescope 70 to a cylindrical lens 71, and is then reflected by a mirror 74 to the work area of the fiber. A beam splitting polarizer 72 splits the beam and one of the beams is directed by another mirror 73 to the work area. Both beams that are directed to the work area may pass through a spherical mirror 69. The beams are directed on the ceramic substrate of heater 67 on opposite sides of the fiber 14 (or on the fiber), as described above.
The telescope 70 is used to control the spot size of the beam on the ceramic and/or fiber. A controller 79 may be provided for controlling the various elements of the apparatus for controlling the process to desired parameters.
The invention has been described above for use with reducing the diameter of an optical fiber. The invention may also be used for thinning and melting more than one fiber and fibers that have different mechanical and/or optical properties. For example, the invention may also be used for producing optical couplers and other optical devices, and for thinning tubes and other structures.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2016/056197 | 10/16/2016 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/068475 | 4/27/2017 | WO | A |
Number | Name | Date | Kind |
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4012213 | Haggerty | Mar 1977 | A |
4135902 | Oehrle | Jan 1979 | A |
4584464 | Myer | Apr 1986 | A |
4785156 | Benko | Nov 1988 | A |
4879454 | Gerdt | Nov 1989 | A |
5021630 | Benko | Jun 1991 | A |
5814784 | Kinsman | Sep 1998 | A |
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9977169 | Kurt | May 2018 | B2 |
20030012238 | Wu | Jan 2003 | A1 |
20090299353 | Lewinsky | Dec 2009 | A1 |
20090320527 | Harper | Dec 2009 | A1 |
Entry |
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PCT Search and Written Opinion PCT/IB2016/056197, dated Feb. 24, 2017. |
Number | Date | Country | |
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20200247711 A1 | Aug 2020 | US |
Number | Date | Country | |
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62244289 | Oct 2015 | US |