Abstract:
Described is a method of making an apparatus for oxygenating and controlling the temperature of blood in an extracorporeal circuit, the steps comprising: providing a core through which blood can be supplied to the apparatus from a patient; providing a heat exchanger about the core such that blood from the core can move radially outward through the heat exchanger; providing an oxygenator about the heat exchanger such that blood from the heat exchanger can move radially outward through the oxygenator; and placing the core, heat exchanger and oxygenator in a housing that includes an inlet in communication with the core and an outlet that is located radially outward from the inlet in order to define a flowpath for blood through the apparatus.
Abstract:
The present invention provides an imaging device that generates, for, each of a red color, a green color, and a blue color, an image signal having pixels arranged adjacent to each other in a two-dimensional array, including a red color imaging element that senses incident light to output a red color signal (20R) having pixels arranged in a check pattern, a green color imaging element that senses the incident light to output a green color signal (20G) having pixels arranged in a check pattern, a blue color imaging element that senses the incident light to output a blue color signal (20B) having pixels arranged in a check pattern, interpolation means for interpolating a blank pixel using neighboring pixels, and correlation means for determining a correlation of the neighboring pixels of the blank pixel, wherein the correlation means determines a correlation for each of the red color signal, the green color signal, and the blue color signal on the basis of at least one color signal of the red color signal, the green color signal, and the blue color signal, and wherein the interpolation means interpolates the blank pixel for each of the red color signal, the green color signal, and the blue color signal on the basis of the correlation to generate an imaging signal.
Abstract:
A method for manufacturing an integrated circuit system that includes: providing a substrate including an active device; forming a drift region in the substrate, the drift region bounded in part by a top surface of the substrate and spaced apart from a source; and forming a drain above the drift region.
Abstract:
A method for analyzing a sample for the manufacture of integrated circuits, e.g., dynamic random access memory device, commonly called, DRAMS. The method also provides an integrated chip including a thickness, a width, and a length. In a specific embodiment, the integrated chip has at least one elongated structure through a portion of the thickness, while being normal to the width and the length. In a specific embodiment, the elongated structure has a structure width and a structure length that extends through a vertical portion of the thickness. The method includes removing a slice of the integrated circuit chip from a portion of the thickness in a directional manner normal to the structure length. In a specific embodiment, the slice is provided through an entirety of the one elongated structure along the structure length to cause a portion of a thickness of the slice providing the elongated structure to be of a substantially uniform sample thickness. The method also includes capturing one or more images through a portion of the slice using a transmission electron
Abstract:
A nitrogen-free anti-reflective layer for use in semiconductor photolithography is fabricated in a chemical vapor deposition process, optionally plasma-enhanced, using a gaseous mixture of carbon, silicon, and oxygen sources. By varying the process parameters, a substantially hermetic layer with acceptable values of the refractive index n and extinction coefficient k can be obtained. The nitrogen-free moisture barrier anti-reflective layer produced by this technique improves plasma etch of features such as vias in subsequent processing steps.
Abstract:
The system includes a circuit board, a semiconductor module, a heat dissipator, and at least one thermal via. The circuit board has substantially flat opposing first and second sides. The semiconductor module includes multiple semiconductor devices. The semiconductor module is oriented substantially parallel to the circuit board near the first side, while the heat dissipator is disposed near the second side. The thermal via extends through the circuit board to thermally couple the semiconductor module to the heat dissipator, which may be a heat spreader, heat sink, cooling fan, or heat pipe.
Abstract:
A method and system for automated management of tissue information, where the tissue information, which may include intake tissue information upon receiving a tissue, inventory information, preparation information, and usage information of the tissue is input to a database via a user terminal, where the user terminal prompts a user to input any required tissue information. A patient record, including the tissue information, may be created in the database. Post-operative patient reaction information may be added subsequently to the patient record. The tissue information and the patient record are searchable and updatable using one or more user terminals at various times.
Abstract:
A multicore optical fiber with an integral diffractive element. The multicore optical fiber includes: a first optical fiber core formed of a non-photosensitive material having an initial index of refraction; and a second optical fiber core including a second longitudinal core axis substantially parallel to the first longitudinal axis. The first optical fiber core includes: a first longitudinal core axis; and a number of index-altered portions having an altered index of refraction which is different from the initial index of refraction. The index-altered portions are arranged within the non-photosensitive material of the first optical fiber core to form a diffractive structure of the integral diffractive element.
Abstract:
The method of controlling the user calling load in Soft Switch system in present invention comprises the steps of: basic calling module receives the congestion direction message; judge whether the system congestion indicated by said congestion direction message is sporadic or sustaining; control the switching of user calling load according to the judgment whether the system congestion indicated by said congestion direction message is sporadic or sustaining. The aggressive effectiveness brought by present invention are: the system has the higher stability and reliability; when the traffic overload state occurs, the setup of maximum calling number can be guaranteed and the system can also restore to the normal load state. Soft module doesn't influence the setup of normal calling, nor does the setup of urgency special service calling; the system possesses good adaptability, the controlling of load is efficient and stable, and has the self-adapting overload controlling capability.
Abstract:
A mechanism for releasably locking a drawer and preventing the drawer from inadvertently slipping out of its recess includes a user-accessible bar that actuates locking hooks to release the drawer from a locked position.