Abstract:
The invention relates to a solid preparation, containing an acid-sensitive proton-pump blocker as the active substance, whereby said active substance is present in an x-ray amorphous form and is embedded in molecularly dispersed form in an auxiliary agent matrix.
Abstract:
The invention relates to a solid crop protection formulation comprising a) cinidon-ethyl as a crop protection agent; b) at least one random radical copolymer comprising as polymerized units at least one hydrophilic and at least one hydrophobic monomer; and c) optionally further additives, wherein at least 50 % of the dispersed cinidon-ethyl particles in said solid crop protection formulation are in an X-ray amorphous state and an aqueous dispersion formulation thereof. Additionally, the invention relates to processes for preparing said formulations and the use of said formulations in agriculture. Further, the invention relates to a random radical copolymer essentially consisting of as polymerized units a) 5 to 95 % by weight of styrene as component A; b) 5 to 95 % by weight of DMAPMAM (dimethylaminopropyl methacrylic amide) as component B; c) 0 to 98 % by weight of methyl acrylate and/or vinyl acetate as component C.
Abstract:
Disclosed are random radical (co)polymers containing -20 to 50 mol% of styrene as component A, -15 to 35 mol% of acrylic acid as component B, and -15 to 60 mol% of dimethylaminoethylmethacrylate (DMAEM) or 4-vinyl pyridine as component C; and dispersion formulations containing said (co)polymer, a dye selected from the group consisting of a monoazo dye, a quinophtalone dye, an anthraquinone dye, optionally further assistants, and an aqueous system; solid solutions containing said (co)polmyer, a dye selected from the group consisting of a monoazo dye, a quinophthalone dye, an anthraquinone dye, optionally further assistants; and dyeing formulations and formulations of inks for ink-jets comprising said dispersion formulation and optionally conventional dyeing auxiliaries.
Abstract:
The invention relates to a method for combined analysis of the hardening of hardenable liquid or viscous formulations, wherein (a) n hardenable formulations are provided in parallel in n containers, and (b) at least one degree of hardening is determined for each of the n formulations, wherein a measuring tip is inserted into the formulation with a determined amount of force and the maximum penetration depth thus obtained is taken as a measure of the degree of hardening of said formulations, and (c) one or several parameters characterizing the hardening kinetics are determined for a respective composition of the formulations from the measured values for the depths of penetration at various times after the production of the formulations . Preferably, steps (a) - (c) are carried out on several occasions and by analyzing the large number of individual values of the parameters characterizing the hardening characteristics thus obtained, it is possible to ascertain the dependency of the characteristic parameter(s) in relation to the composition of the formulations, whereupon the composition of the formulations can be optimized with regard to the hardening behavior thereof.
Abstract:
Disclosed is a method of making an array of n nanoparticular dispersion formulations, wherein said nanoparticular dispersion formulations each comprise -at least one nanodispersant, -at least one application media, -an active ingredient said method comprising the following steps: c) making said array of n nanoparticular dispersion formulations by c1) a parallelized solid solution route, or c2) a parallelized general precipitation route, or c3) a parallelized reactive precipitation route, d) parallelized, rapid serial or semi-parallel characterizing of said obtained n nanoparticular dispersion formulations; an array of at least 8 different nanoparticular dispersion formulations; a method of making an array of m nanodipersants by a parallel polymerization process; an array of at least 8 different nanodispersants; a method of making an array of n solid solutions by a parallelized solid solution route; and an array of at least 8 different.
Abstract:
The invention relates to a method for producing molding materials and coatings on substrates by curing radiation curable materials under a protective gas, by irradiation with light. The method is characterized in that said protective gas is a gas that is heavier than air and in that the protective gas is prevented from escaping sideways during the radiation curing by a suitable device or measures.
Abstract:
The invention relates to a method for evaluating mechanical tests of a coating on a substrate, wherein a mechanical stress is embossed on the coating in a first step (S1), the substrate with the coating is clamped in isothermically in a second step (S2), and an infrared picture of the region where the mechanical stress is embossed in the first step (S1) is taken. In a fourth step (S4), the infrared picture is evaluated. The invention further relates to a device for executing said method.
Abstract:
This invention relates to a process of producing compounds, which are useful as bleach boosters, as well as to the compounds, which are obtainable using said process, and to their use.
Abstract:
The invention relates to a method for producing a coated substrate by applying at least one coating agent to the substrate and then hardening said coating agent in order to obtain a coat of lacquer on the substrate. The invention also relates to the coated substrates obtained by said method, and a coating agent.
Abstract:
This invention relates to a process of producing compounds, which are useful as bleach boosters, as well as to the compounds, which are obtainable using said process, and to their use.