Patents by Inventor Torben E. Veng

Torben E. Veng has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 7221838
    Abstract: An optical fiber has a core region and a first cladding region surrounding the core. The first cladding region is doped to increase the fiber's refractive index volume. A second cladding region surrounds the first cladding region. The second cladding region is doped to reduce the fiber's cutoff wavelength, offsetting an increase in the fiber's cutoff wavelength caused by the first cladding region. An outer cladding surrounds the cutoff reduction region. In a further embodiment, the volume increasing region is doped to have a refractive index profile that is sloped to increase from the region's outer circumference towards its inner circumference. In another embodiment, the cutoff reduction region has a step refractive index profile that may have more than one section.
    Type: Grant
    Filed: June 23, 2004
    Date of Patent: May 22, 2007
    Assignee: Furukawa Electric North America, Inc.
    Inventors: Dan Jakobsen, Bera Palsdottir, Torben E. Veng
  • Patent number: 7037003
    Abstract: Techniques are described for reducing splice loss between a pair of optical fibers. A first fiber is spliced to a second fiber at a splice point. A region of the spliced fibers, including the splice point, is thermally treated to cause a controlled diffusion of dopants in the region. A controlled tension is then applied to the splice region while heating it to a predetermined temperature to produce a controlled change in the splice region's strain state. Further described is a heat and tension station for performing a heat and tension technique on a pair of spliced fibers.
    Type: Grant
    Filed: November 12, 2002
    Date of Patent: May 2, 2006
    Assignee: Fitel USA Corp.
    Inventors: Erling D. Christensen, Torben E. Veng, Andrew D. Yablon
  • Patent number: 6899470
    Abstract: Systems and techniques are described for fabricating a low-loss, high-strength optical transmission line. In one described technique, a first fiber is spliced to a second fiber at a splice point. The spliced fibers are loaded into a heat treatment station, where a gas torch flame is used to thermally treat a splice region including the splice point, with the thermal treatment reducing splice loss between the first and second fibers. While heating the splice region, a dry gas is purged around the torch flame during the heat treatment process to avoid water at the surface of the spliced fibers. According to further described techniques, a purging gas is fed to the torch flame to purge dust particles from the flame, and after the heat treatment has been completed, the torch flame is used to restore the glass surface of the spliced fibers. Additionally described are torch assemblies for fabricating low-loss, high-strength optical fiber transmission lines.
    Type: Grant
    Filed: July 17, 2002
    Date of Patent: May 31, 2005
    Assignee: Fitel USA Corp.
    Inventors: David John DiGiovanni, Torben E. Veng
  • Patent number: 6840687
    Abstract: Techniques and systems are described for reducing splice loss in an optical fiber transmission line. One described technique includes splicing together at a splice point a first fiber having a first modefield diameter to a second fiber having a second modefield diameter larger than the first modefield diameter. The splice point is heated to a core expansion temperature to cause a controlled thermal diffusion of core dopant in the first fiber in order to reduce modefield mismatch between the first and second fibers. Splice loss is then reduced by heating the splice point to a differential diffusion temperature to cause a controlled diffusion of a cladding dopant in the first fiber, while maintaining the expanded core.
    Type: Grant
    Filed: July 17, 2002
    Date of Patent: January 11, 2005
    Assignee: Fitel USA Corp.
    Inventors: Lars Riis, Tonny Sorensen, Torben E. Veng
  • Patent number: 6826341
    Abstract: Optical fibers are described that exhibit reduced splice loss. Further described are techniques for fabricating optical fibers exhibiting reduced splice loss. One described fiber includes a plurality of regions, one region having a higher viscosity and the other region having a lower viscosity, such that when the fiber is drawn under tension, a strain is frozen into the higher viscosity region. A lower viscosity buffer layer is sandwiched between the higher viscosity region and the lower viscosity region. The buffer layer isolates the lower viscosity region from changes in refractive index in the higher viscosity region arising from a change in the strain frozen into the higher viscosity region.
    Type: Grant
    Filed: November 4, 2002
    Date of Patent: November 30, 2004
    Assignee: Fitel USA Corp.
    Inventors: David John DiGiovanni, Peter Mikal Holmblad, Torben E. Veng, Andrew D. Yablon
  • Publication number: 20040114886
    Abstract: Systems and methods are described for reducing optical fiber splice loss. A torch is described for performing a thermally-diffused expanded core (TEC) technique. The torch includes a hollow body. A conduit delivers a flammable gas to the hollow body. The flammable gas streams out of an array of orifices formed in the hollow body. The orifices are shaped and arranged in the array such that when the streaming gas is ignited, a substantially continuous elongated flame is created having a desired heating profile. Further described are a thermal treatment station incorporating a line torch and techniques for using an elongated flame to reduce optical fiber splice loss.
    Type: Application
    Filed: December 12, 2002
    Publication date: June 17, 2004
    Applicant: Fitel USA Corp.
    Inventors: Erling D. Christensen, Thomas Rafn, Lars Riis, Torben E. Veng
  • Publication number: 20040091219
    Abstract: Techniques are described for reducing splice loss between a pair of optical fibers. A first fiber is spliced to a second fiber at a splice point. A region of the spliced fibers, including the splice point, is thermally treated to cause a controlled diffusion of dopants in the region. A controlled tension is then applied to the splice region while heating it to a predetermined temperature to produce a controlled change in the splice region's strain state. Further described is a heat and tension station for performing a heat and tension technique on a pair of spliced fibers.
    Type: Application
    Filed: November 12, 2002
    Publication date: May 13, 2004
    Applicant: Fitel USA Corp.
    Inventors: Erling D. Christensen, Torben E. Veng, Andrew D. Yablon
  • Publication number: 20040086243
    Abstract: Optical fibers are described that exhibit reduced splice loss. Further described are techniques for fabricating optical fibers exhibiting reduced splice loss. One described fiber includes a plurality of regions, one region having a higher viscosity and the other region having a lower viscosity, such that when the fiber is drawn under tension, a strain is frozen into the higher viscosity region. A lower viscosity buffer layer is sandwiched between the higher viscosity region and the lower viscosity region. The buffer layer isolates the lower viscosity region from changes in refractive index in the higher viscosity region arising from a change in the strain frozen into the higher viscosity region.
    Type: Application
    Filed: November 4, 2002
    Publication date: May 6, 2004
    Applicant: Fitel USA Corp.
    Inventors: David John DiGiovanni, Peter Mikal Holmblad, Torben E. Veng, Andrew D. Yablon
  • Publication number: 20040013374
    Abstract: Systems and techniques are described for fabricating a low-loss, high-strength optical transmission line. In one described technique, a first fiber is spliced to a second fiber at a splice point. The spliced fibers are loaded into a heat treatment station, where a gas torch flame is used to thermally treat a splice region including the splice point, with the thermal treatment reducing splice loss between the first and second fibers. While heating the splice region, a dry gas is purged around the torch flame during the heat treatment process to avoid water at the surface of the spliced fibers. According to further described techniques, a purging gas is fed to the torch flame to purge dust particles from the flame, and after the heat treatment has been completed, the torch flame is used to restore the glass surface of the spliced fibers. Additionally described are torch assemblies for fabricating low-loss, high-strength optical fiber transmission lines.
    Type: Application
    Filed: July 17, 2002
    Publication date: January 22, 2004
    Applicant: Fitel USA Corp.
    Inventors: David John DiGiovanni, Torben E. Veng
  • Patent number: 6543942
    Abstract: An optical transmission line with reduced splice loss, and methods for fabricating an optical transmission line with reduced splice loss, are described. In one described method, a length of dispersion-compensating fiber, or other suitable first transmission fiber, is spliced to a first end of a length of a bridge fiber. The splice is heated to a maximum temperature to cause a measurable reduction in splice loss. The temperature of the splice is then ramped down to room temperature, such that the reduction in splice loss is maintained. A second end of the bridge fiber is then spliced to a length of a second transmission fiber. Further described is a technique for determining the maximum temperature for heating the splice between the first transmission fiber and the bridge fiber.
    Type: Grant
    Filed: September 21, 2000
    Date of Patent: April 8, 2003
    Assignee: Fitel USA Corp.
    Inventor: Torben E. Veng
  • Publication number: 20030012526
    Abstract: Techniques and systems are described for reducing splice loss in an optical fiber transmission line. One described technique includes splicing together at a splice point a first fiber having a first modefield diameter to a second fiber having a second modefield diameter larger than the first modefield diameter. The splice point is heated to a core expansion temperature to cause a controlled thermal diffusion of core dopant in the first fiber in order to reduce modefield mismatch between the first and second fibers. Splice loss is then reduced by heating the splice point to a differential diffusion temperature to cause a controlled diffusion of a cladding dopant in the first fiber, while maintaining the expanded core.
    Type: Application
    Filed: July 17, 2002
    Publication date: January 16, 2003
    Applicant: Fitel USA Corp.
    Inventors: Lars Riis, Tonny Sorensen, Torben E. Veng
  • Publication number: 20020034364
    Abstract: Techniques and devices are described for reducing splice loss in an optical transmission line. According to one technique, an electric arc is generated from an arc current, the arc current having a level and duration sufficient to produce an electric arc with an intensity and duration sufficient to achieve a desired splicing temperature at a splice point between a first optical fiber and a second optical fiber positioned within the electric arc. The electric arc is used to splice together the first and second optical fibers. After the fibers have been spliced together, the level of the arc current is ramped downward over time, thereby creating a downward ramp in temperature at the splice point from the splicing temperature to a cooler temperature, the downward ramp in temperature being shaped to reduce splice loss. The techniques and devices described herein are suitable for use with various splice combinations.
    Type: Application
    Filed: October 4, 2001
    Publication date: March 21, 2002
    Inventor: Torben E. Veng