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Hussain
Hussain Al Ghatta, Fiuggi (frosinone) IT
| Patent application number | Description | Published |
|---|---|---|
| 20080293964 | Process for Preparing High Purity Terephthalic Acid - The present invention relates to a process for preparing high purity terephthalic acid by catalytic, liquid phase oxidation of p-xylene utilizing a partially homogeneous reaction in the presence of a very specific catalyst. The process produces a high purity terephthalic acid without the secondary purification step currently practiced. | 11-27-2008 |
| 20090099388 | RECOVERY OF AROMATIC DICARBOXYLIC ACIDS FROM WASTE POLYESTER RESIN IN THE PRESENCE OF A POLYAMIDE - The present invention relates to a process of recovering aromatic dicarboxylic acids with low metal contaminants from manufactured articles, such as beverage bottles, fibers and films, comprising aromatic polyesters, whether or not those articles are contaminated with PVC or chlorinated compounds, or from waste from processing of these polyesters. In particular, the invention relates to the recovery of terephthalic acid, isophthalic acid and 2,6-naphthalene dicarboxylic acid from bottles for recycling which are made of PET, PEN or aromatic polyester copolymers. | 04-16-2009 |
| 20090287017 | RECOVERY OF AROMATIC DICARBOXLYIC ACIDS FROM WASTE POLYESTER RESIN - The present invention relates to a process of recovering aromatic dicarboxylic acids with low metal contaminants from manufactured articles and/or articles contaminated with PVC or chlorinated compounds, made of or containing aromatic polyester resins, such as beverage bottles, fibers and films, or from waste from processing of these resins. In particular, the invention relates to the recovery of terephthalic acid, isophthalic acid and 2,6-naphthalene dicarboxylic acid from bottles for recycling which are made of PET, PEN or aromatic polyester copolymers. | 11-19-2009 |
Hussain Al-Rizzo, Little Rock, AR US
| Patent application number | Description | Published |
|---|---|---|
| 20100097273 | NANO AND MICRO BASED ANTENNAS AND SENSORS AND METHODS OF MAKING SAME - A method of fabricating an antenna. In one embodiment, the method includes the steps of providing a substrate treated with a plasma treatment, providing a nanoparticle ink comprising nanoparticles, painting the nanoparticle ink on the substrate to form an antenna member in which the nanoparticles are connected, determining a feed point of the antenna member, and attaching an feeding port onto the substrate at the feed point to establish a contact between the feeding port and the antenna member. | 04-22-2010 |
| 20110025571 | Circularly Polarized Microstrip Antennas - The present invention in one aspect relates to a circularly polarized antenna having a conductive ground layer, a conductive patch and a dielectric substrate formed between the conductive ground layer and the conductive patch. The conductive patch formed in a square shape with four equal sides and has four square slots with each formed in the central portion of each side, and two rectangular slots orthogonally formed in the central area of the square such that one rectangular slot is aligned with one diagonal of the square, the other rectangular slot is aligned with the other diagonal of the square, and the junction of the two rectangular slots is coincident with the geometrical center of the square. | 02-03-2011 |
Hussain Fatakdawala, North Brunswick, NJ US
| Patent application number | Description | Published |
|---|---|---|
| 20110087192 | TRANSMUCOSAL DRUG DELIVERY DEVICE AND METHOD INCLUDING CHEMICAL PERMEATION ENHANCERS - Devices and methods are provided for transmucosal drug delivery. The transmucosal drug delivery device may include a housing configured for intralumenal deployment, such as intravaginally, into a human or animal subject; a drug-dispensing portion which contains at least one drug, the drug-dispensing portion being configured to dispense the drug from the housing by positive displacement; and a permeability enhancer-dispensing portion configured to release or generate a permeability enhancing substance to disrupt at least one region of a mucosal barrier adjacent to the housing at a selected time while intralumenally deployed in the human or animal subject. The device may be operable to dispense the drug from the housing to a region of the mucosal barrier disrupted by the permeability enhancing substance. | 04-14-2011 |
Hussain Mothaffar, Al-Salmiya KW
| Patent application number | Description | Published |
|---|---|---|
| 20100229287 | Head and Neck Restraint System - A restraint system for limiting the range of motion of an individual's head and flexure of their neck includes an arrangement of straps extending from a head engulfing helmet to a two piece arch-shaped shoulder mounted support member. The arch-shaped shoulder mounted support member includes a front portion, a rear portion and a mechanism for adjusting the curvature of the arch to accommodate individuals of different sizes and also to accommodate different seating positions. A pair of upwardly extending restraint members extends upwardly from the rear portion of the shoulder mounted support member. An upper portion of the upwardly extending restraint member extends upwardly behind the helmet and is tethered to the helmet so that the upwardly extending restraint member limits forward and rear movement of the head. | 09-16-2010 |
Hussain Sahid, Pohang-Si KR
| Patent application number | Description | Published |
|---|---|---|
| 20100129529 | Method For Manufacturing A Nanoparticle, Method For Manufacturing A Light-Emitting Element Having The Nanoparticle, And Method For Manufacturing A Display Substrate Having The Nanoparticle - In a method for manufacturing a nanoparticle, a precursor (e.g., transition metal complex) mixed with polyethylene glycol (PEG) is thermally decomposed. A nanoparticle is formed from the thermal decomposition. PEG is cost effective and less toxic than chemicals that are conventionally used for nanoparticle production, so that costs for manufacturing the nanoparticle may be decreased. Further, PEG may be reused to produce more nanoparticles. | 05-27-2010 |
