Abstract:
A comprehensively nutritious instant food includes the following raw ingredients: rice powder 39.593849% to 44.930798%, soybean meal 29.695386% to 33.698099%, protein 8.908616% to 10.109430%, edible fiber 4.949231% to 5.616350%, carotene 0.000099% to 0.000112%, calcium 0.197969% to 0.224654%, iron 0.000356% to 0.000404%, zinc 0.000297% to 0.000337%, copper 0.000040% to 0.000045%, sodium 0.395938% to 0.449308%, potassium 0.395938% to 0.449308%, manganese 0.000040% to 0.000045%, selenium 0.000014% to 0.000016%, iodine 0.000030% to 0.000034%, phosphorus 0.013858% to 0.015726%, magnesium 0.007919% to 0.008986%, fluorine 0.000554% to 0.000629%, vitamin B1 0.000297% to 0.000337%, vitamin B2 0.000040% to 0.000045%, vitamin B6 0.000040% to 0.000045%, vitamin B12 0.000001% to 0.000001%, vitamin B3 0.000396% to 0.000449%, vitamin D 0.000013% to 0.000015%, vitamin K 0.000016% to 0.000018%, vitamin H 0.000059% to 0.000067%, vitamin B 0.000079% to 0.000090%, vitamin E 0.000178% to 0.000202%, vitamin C 0.001188% to 0.001348%, vitamin A 0.000020% to 0.000022%, edible fat 0 to 10.523458%, and refined sugar 0-5.939077%.
Abstract:
This method for producing porous sintered aluminum includes: mixing aluminum powder with a sintering aid powder containing titanium to obtain a raw aluminum mixed powder; mixing the raw aluminum mixed powder with a water-soluble resin binder, water, and a plasticizer containing at least one selected from polyhydric alcohols, ethers, and esters to obtain a viscous composition; drying the viscous composition in a state where air bubbles are mixed therein to obtain a formed object prior to sintering; and heating the formed object prior to sintering in a non-oxidizing atmosphere, wherein when a temperature at which the raw aluminum mixed powder starts to melt is expressed as Tm (° C.), a temperature T (° C.) of the heating fulfills Tm−10 (° C.)≦T≦685 (° C.).
Abstract:
An eFuse with at least one fuse unit is provided. The fuse unit includes a first common node providing a first reference voltage, a second common node providing a second reference voltage, at least one fuse coupled to the first common node, and a determining unit coupled between the fuse and the second common node, generating an output signal indicating whether the fuse is blown or not according to a first condition in a normal mode and a second condition in a test mode.
Abstract:
Novel method and reagents for generating reversibly tagged saccharides, aldehydes, carboxyl acids, or orthoacetates useful in analytical and diagnostic applications are disclosed. Saccharides are coupled at the reducing end to tagging moieties comprising a reagent selected from a ortho-diaminobenzoic (DAB)-peptide, an aldo-imidazole or N-methylated aldo-imidazole, or an ortho-phenyldiamine (OPD) or substituted OPD. The tagged saccharide further comprising detectable or functional groups coupled to the tagging moiety are provided. Kits and reagents for chromatography and mass spectrometry are disclosed.
Abstract:
Glucagon antagonists are provided which comprise amino acid substitutions and/or chemical modifications to glucagon sequence. In one embodiment, the glucagon antagonists comprise a native glucagon peptide that has been modified by the deletion of the first two to five amino acid residues from the N-terminus and (i) an amino acid substitution at position 9 (according to the numbering of native glucagon) or (ii) substitution of the Phe at position 6 (according to the numbering of native glucagon) with phenyl lactic acid (PLA). In another embodiment, the glucagon antagonists comprise the structure A-B-C as described herein, wherein A is PLA, an oxy derivative thereof, or a peptide of 2-6 amino acids in which two consecutive amino acids of the peptide are linked via an ester or ether bond.
Abstract:
An integrated microchannel reactor and heat exchanger comprising: (a) a waveform sandwiched between opposing shim sheets and mounted to the shim sheets to form a series of microchannels, where each microchannel includes a pair of substantially straight side walls, and a top wall formed by at least one of the opposing shim sheets, and (b) a first set of microchannels in thermal communication with the waveform, where the waveform has an aspect ratio greater than two.
Abstract:
A device includes a gate stack formed over a channel in a semiconductor substrate. The gate stack includes a layer of gate insulator material, a layer of gate metal overlying the layer of gate insulator material, and a layer of contact metal overlying the layer band edge gate metal. The device further includes source and drain contacts adjacent to the channel. The source and drain contacts each include a layer of the gate metal that overlies and is in direct electrical contact with a doped region of the semiconductor substrate, and a layer of contact metal that overlies the layer of gate metal.
Abstract:
An electronic device having a cable holding device is disclosed. The electronic device comprises a case; a circuit board in the case; a cable holding device attached to the circuit board and defining a through hole, a first positioning slot and a second positioning slot; the first positioning slot communicating with the through hole, and the second positioning slot communicating with the through hole; a cable electronically connected to the circuit board; wherein the cable is received either in the first positioning slot and the through hole or in the second positioning slot and the through hole.
Abstract:
Provided is a process and device for exchanging heat energy between three or more streams in a microchannel heat exchanger which can be integrated with a microchannel reactor to form an integrated microchannel processing unit. The combining of a plurality of integrated microchannel devices to provide the benefits of large-scale operation is enabled. In particular, the microchannel heat exchanger enables flexible heat transfer between multiple streams and total heat transfer rates of about 1 Watt or more per core unit volume expressed as W/cc.
Abstract:
Exemplary embodiments provide various techniques and systems for identifying data objects stored on clustered logical data containers. In one embodiment, a method is provided for creating a backward data object handle. In this method, a request to create a file is received, and a redirector file is created on a first logical data container based on receipt of the request. A redirector handle resulting from the creation of the redirector file is received. A data object of the file is then created on a second logical data container using the redirector handle as an identifier of the data object. This redirector handle included in the identifier then becomes a backward data object handle that points from the data object to the redirector file. As such, the redirector file can be identified by referencing the identifier of the data object.