Patents by Inventor Ishwar Aggarwal
Ishwar Aggarwal 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).
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Publication number: 20080060387Abstract: A photonic band gap fiber and method of making thereof is provided. The fiber is made of a non-silica-based glass and has a longitudinal central opening, a microstructured region having a plurality of longitudinal surrounding openings, and a jacket. The air fill fraction of the microstructured region is at least about 40%. The fiber may be made by drawing a preform into a fiber, while applying gas pressure to the microstructured region. The air fill fraction of the microstructured region is changed during the drawing.Type: ApplicationFiled: November 5, 2007Publication date: March 13, 2008Inventors: Jasbinder Sanghera, Pablo Pureza, Frederic Kung, Daniel Gibson, Leslie Shaw, Ishwar Aggarwal
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Patent number: 7242835Abstract: This invention pertains to fiber termination combination which includes an optical fiber having a fiber core for transmitting a highly energetic optical signal that can damage the fiber and a structured region around the core for directing the optical signal into the core, the structured region being characterized by multiple channels of smaller internal diameter than the core defined by thin walls disposed around said core; a ferrule, with an opening therein for locating said fiber, at the end of said fiber enveloping said fiber extremity which cooperates with said blocking structure to block the optical signal from impinging on said microstructured region of said fiber; and a blocking structure disposed over the end of said fiber with an opening mating with said fiber core, said blocking structure blocking the optical signal from impinging on said microstructured region of said fiber.Type: GrantFiled: July 18, 2005Date of Patent: July 10, 2007Assignee: The United States of America as represented by the Secretary of the NavyInventors: Lynda Busse, Frederic H. Kung, Jasbinder Sanghera, Ishwar Aggarwal
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Publication number: 20070147757Abstract: A hollow core photonic bandgap chalcogenide glass fiber includes a hollow core for passing light therethrough, a Raman active gas disposed in said core, a microstructured region disposed around said core, and a solid region disposed around said microstructured region for providing structural integrity to said microstructured region. A coupler can introduce at least one light signal into the hollow core of the chalcogenide photonic bandgap fiber. The method includes the steps of introducing a light beam into a hollow core chalcogenide photonic bandgap glass fiber filled with a Raman active gas disposed in the core, conveying the beam through the core while it interacts with the gas to form a Stokes beam of a typically higher wavelength, and removing the Stokes beam from the core of the fiber.Type: ApplicationFiled: September 15, 2006Publication date: June 28, 2007Applicant: The Government of the US, as represented by the Secretary of the NavyInventors: L Shaw, Jasbinder Sanghera, Ishwar Aggarwal, Peter Thielen
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Publication number: 20070127529Abstract: This invention pertains to a scene projection system and a method for projecting a scene that can simulate light temperature of above 2000 K. The system comprises of a light source part for generating light at a lower wavelength; a means part for individually controlling dynamic range, contrast, brightness, temporal characteristics and temporal dynamics of the light; a rare earth doped fiber part that re-emits the output light at a higher wavelength; and a means part for conveying light between its parts. The method comprises steps of generating light at a lower wavelength wavelength; individually controlling temporal characteristics, temporal dynamics, brightness and contrast of the light; passing the light through a rare earth-doped fiber; and re-emitting the light at a higher wavelength.Type: ApplicationFiled: December 2, 2005Publication date: June 7, 2007Inventors: Brandon Shaw, Jasbinder Sangtiera, Ishwar Aggarwal, Peter Thielen
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Publication number: 20070110377Abstract: A photonic band gap fiber and method of making thereof is provided. The fiber is made of a non-silica-based glass and has a longitudinal central opening, a microstructured region having a plurality of longitudinal surrounding openings, and a jacket. The air fill fraction of the microstructured region is at least about 40%. The fiber may be made by drawing a preform into a fiber, while applying gas pressure to the microstructured region. The air fill fraction of the microstructured region is changed during the drawing.Type: ApplicationFiled: January 16, 2007Publication date: May 17, 2007Applicant: United States Government as represented by the Secretary of the NavyInventors: Jasbinder Sanghera, Pablo Pureza, Frederic Kung, Daniel Gibson, Leslie Shaw, Ishwar Aggarwal
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Publication number: 20070087203Abstract: This invention pertains to a composite of AlON and a germanate glass, and to a process for bonding AlON to the glass. The composite includes AlON and glass bonded together and having transmission in the visible and mid-infrared wavelength region. The process includes the step of heating them together above the softening temperature of the glass, the composite having excellent, i.e., typically in excess of about 60%, transmission in the 0.4-5 wavelength region.Type: ApplicationFiled: October 13, 2005Publication date: April 19, 2007Inventors: Shyam Bayya, Jasbinder Sanghera, Guillermo Villalobos, Geoffrey Chin, Ishwar Aggarwal
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Publication number: 20070087204Abstract: This invention pertains to a composite of Spinel and BGG glass substrates and to process for bonding Spinel to BGG glass. The composite includes a Spinel and a BGG glass bonded together and having transmission in the visible and mid-infrared wavelength region. The process includes the step of heating them together above the softening temperature of the BGG glass, the composite having excellent, i.e., typically in excess of about 80%, transmission in the 0.5-5 wavelength region.Type: ApplicationFiled: October 13, 2005Publication date: April 19, 2007Inventors: Shyam Bayya, Jasbinder Sanghera, Guillermo Villalobos, Geoffrey Chin, Ishwar Aggarwal
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Patent number: 7197899Abstract: A process includes the steps of disposing a solid core glass rod at a point removed from hot temperature that can cause crystallization in the core glass rod, disposing a solid clad glass rod at a point removed from the core glass rod; softening to the flowing condition the solid clad glass rod, transferring the softened clad glass to a lower point, the softened clad glass having a central void therethrough, heating the softened clad glass above its crystallization temperature, cooling the softened clad glass to a draw temperature, transferring the solid core glass rod into the central void in the softened glad glass, softening to the flowing condition the solid core glass rod with the heat from the softened and cooled clad glass, and drawing the core/clad, glass fiber by allowing the clad and core glasses to flow in the form of a fiber.Type: GrantFiled: January 6, 2003Date of Patent: April 3, 2007Assignee: United States of America as represented by the Secretary of the NavyInventors: Reza Mossadegh, Brian Cole, Pablo Pureza, Jasbinder Sanghera, Shyam Bayya, Ishwar Aggarwal
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Publication number: 20070014528Abstract: This invention pertains to fiber termination combination which includes an optical fiber having a fiber core for transmitting a highly energetic optical signal that can damage the fiber and a structured region around the core for directing the optical signal into the core, the structured region being characterized by multiple channels of smaller internal diameter than the core defined by thin walls disposed around said core; a ferrule, with an opening therein for locating said fiber, at the end of said fiber enveloping said fiber extremity which cooperates with said blocking structure to block the optical signal from impinging on said microstructured region of said fiber; and a blocking structure disposed over the end of said fiber with an opening mating with said fiber core, said blocking structure blocking the optical signal from impinging on said microstructured region of said fiber.Type: ApplicationFiled: July 18, 2005Publication date: January 18, 2007Inventors: Lynda Busse, Frederic Kung, Jasbinder Sanghera, Ishwar Aggarwal
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Publication number: 20060251369Abstract: This invention pertains to a glass fiber, a Raman device and a method. The fiber is a hollow core photonic bandgap chalcogenide glass fiber that includes a hollow core for passing light therethrough, a Raman active gas disposed in said core, a microstructured region disposed around said core, and a solid region disposed around said microstructured region for providing structural integrity to said microstructured region. The device includes a coupler for introducing at least one light signal into a hollow core of a chalcogenide photonic bandgap fiber; a hollow core chalcogenide photonic bandgap glass fiber; a microstructured fiber region disposed around said core; a solid fiber region disposed around said microstructured region for providing structural integrity to said microstructured region; and a Raman active gas disposed in the hollow core.Type: ApplicationFiled: May 3, 2005Publication date: November 9, 2006Inventors: L. Shaw, Jasbinder Sanghera, Ishwar Aggarwal, Peter Thielen
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Publication number: 20060230792Abstract: This invention pertains to a hollow core photonic band gap chalcogenide optical glass fiber and to a fabrication method for making the fiber. The fiber, which is 80-1000 microns in outside diameter, is characterized by a solid glass circumferential region and a structured region disposed centrally within the solid region, the structured region includes a hollow core of 1 micron to several hundreds of microns in diameter surrounded by a plurality of parallel hollow capillaries extending parallel to the core, the core being centrally and longitudinally located within the fiber. Ratio of open space to glass in the structured region is 30-99%. The fabrication method includes the steps of providing a mold, placing chalcogenide micro-tubes around the mold, stacking chalcogenide micro-canes around the stacked micro-tubes, fusing the micro-tubes and the micro-canes to form a preform, removing the mold and drawing the preform to obtain the fiber.Type: ApplicationFiled: May 16, 2005Publication date: October 19, 2006Inventors: Jasbinder Sanghera, Ishwar Aggarwal, L. Shaw, P. Pureza, Fred Kung, Brian Cole
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Publication number: 20060216511Abstract: A particle having a magnesium aluminate core and a fluoride salt coating on the core. The particle has been heated in an oxidizing atmosphere to a temperature in the range of about 400° C. to about 750° C. A method of making a particle by mixing a magnesium aluminate core with a solution of a fluoride salt in a solvent to form a slurry and spraying the slurry into a drying column. The slurry enters the column as an aerosol under thermal conditions that avoid boiling the solvent. The thermal conditions in the column evaporate the solvent as the aerosol moves through the column to form a coating of the fluoride salt on the core while substantially avoiding spalling.Type: ApplicationFiled: March 24, 2005Publication date: September 28, 2006Inventors: Guollermo Villalobos, Jasbinder Sanghera, Shyam Bayya, Ishwar Aggarwal
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Publication number: 20060217260Abstract: A ceramic having at least about 90% by weight magnesium aluminate and having a bulk scattering and absorption loss of less than about 1/cm at any wavelength in a range of about 0.23 to about 5.3 microns or 0.2/cm at any wavelength in a range of about 0.27 to about 4.5 microns. A method of making a ceramic by providing a plurality of particles having a magnesium aluminate core and a fluoride salt coating; heating the particles in an oxidizing atmosphere to a temperature in the range of about 400° C. to about 750° C.; and sintering the particles to form a solid ceramic.Type: ApplicationFiled: March 24, 2005Publication date: September 28, 2006Inventors: Guillermo Villalobos, Jasbinder Sanghera, Shyam Bayya, Ishwar Aggarwal
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Publication number: 20060210227Abstract: This invention pertains to a device for broadening optical wavelength in the 2-14 ?m region comprising a light source and a highly nonlinear chalcogenide fiber associated therewith whereby a light signal is passed from the light source into the fiber wherein and through interactions between the light signal and the material, bandwidth of the light signal is broadened in the 2-14 ?m region.Type: ApplicationFiled: March 17, 2005Publication date: September 21, 2006Inventors: Leslie Shaw, Jasbinder Sanghera, Ishwar Aggarwal, Peter Thielen, Fred Kung
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Publication number: 20060024436Abstract: The coating method includes the steps of dissolving coating precursor(s) in a solvent to form a precursor solution: adding with mixing a miscible diluent to the precursor solution to form a coating solution; admixing solid particles to the coating solution to form a coating slurry, with the particles surrounded with the coating solution; spraying the coating slurry to form droplets containing at least one particle; passing the droplets through a drying zone where the droplets are dried and form dry particles coated with a coating material formed from the coating precursor(s); heat-treating the coating material on the particles emanating from the drying zone to remove volatile matter on the coating material, to improve integrity of the coating material and/or to effect another objective; and collecting dry coated particles.Type: ApplicationFiled: September 20, 2005Publication date: February 2, 2006Inventors: Shyam Bayya, Guillermo Villalobos, Jasbinder Sanghera, Ishwar Aggarwal
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Patent number: 6993230Abstract: This invention pertains to a hollow core photonic band gap chalcogenide optical glass fiber and to a fabrication method for making the fiber. The fiber, which is 80-1000 microns in outside diameter, is characterized by a solid glass circumferential region and a structured region disposed centrally within the solid region, the structured region includes a hollow core of 1 micron to several hundreds of microns in diameter surrounded by a plurality of parallel hollow capillaries extending parallel to the core, the core being centrally and longitudinally located within the fiber. Ratio of open space to glass in the structured region is 30-99%. The fabrication method includes the steps of providing a mold, placing chalcogenide micro-tubes around the mold, stacking chalcogenide micro-canes around the stacked micro-tubes, fusing the micro-tubes and the micro-canes to form a preform, removing the mold and drawing the preform to obtain the fiber.Type: GrantFiled: August 1, 2003Date of Patent: January 31, 2006Assignee: The United States of America as represented by the Secretary of the NavyInventors: Jasbinder Sanghera, Ishwar Aggarwal, Leslie B. Shaw, Pablo C. Pureza, Fred Kung, Brian Cole
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Publication number: 20050229636Abstract: This invention pertains to a chalcogenide glass of low optical loss that can be on the order of 30 dB/km or lower, and to a process for preparing the chalcogenide glass.Type: ApplicationFiled: April 15, 2004Publication date: October 20, 2005Inventors: Vinh Nguyen, Jasbinder Sanghera, Ishwar Aggarwal
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Publication number: 20050159289Abstract: This invention pertains to a BGG glass material with excellent optical and mechanical properties and to a method for its preparation characterized by the use of a halogen component. The BGG glass material is essentially devoid of water, has excellent optical transmission in the visible and mid-infrared wavelength range, and can be easily molded in small and large sizes and complex shapes at a low cost.Type: ApplicationFiled: January 15, 2004Publication date: July 21, 2005Inventors: Shyam Bayya, Jasbinder Sanghera, Ishwar Aggarwal
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Publication number: 20050074215Abstract: A photonic band gap fiber and method of making thereof is provided. The fiber is made of a non-silica-based glass and has a longitudinal central opening, a microstructured region having a plurality of longitudinal surrounding openings, and a jacket. The air fill fraction of the microstructured region is at least about 40%. The fiber may be made by drawing a preform into a fiber, while applying gas pressure to the microstructured region. The air fill fraction of the microstructured region is changed during the drawing.Type: ApplicationFiled: October 21, 2004Publication date: April 7, 2005Applicant: United States of America as represented by the Secretary of the NavyInventors: Jasbinder Sanghera, Pablo Pureza, Frederic Kung, Daniel Gibson, Leslie Shaw, Ishwar Aggarwal
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Patent number: 6873893Abstract: This invention pertains to a jam head and to a protection system. The jam head is rotatable around at least two separate axes and includes a first part rotatable around a first axis and a second part rotatably connected to the first part and rotatable around a second axis; a viewing port in the first part for viewing an object; at least one reflecting surface for conveying an image through the port; a camera optically connected via the at least one reflecting surface to the port; and a unitary infrared transmitting glass fiber of constant core diameter passing from the laser to and through the first and the second parts for conveying an energetic infrared optical signal and an exit port through which the optical signal passes. The protection system is mounted on a movable platform and includes a detector for locating a threat; an electronic and control system connected to the detector for receiving a signal from the detector; a laser connected to the electronic and control system; and the jam head.Type: GrantFiled: August 1, 2003Date of Patent: March 29, 2005Assignee: The United States of America as represented by the Secretary of the NavyInventors: Jasbinder Sanghera, Lynda Busse, Ishwar Aggarwal