Abstract:
A process for preparing cyclododecene by selective gas-phase hydrogenation of at least one starting material selected from cyclododecatriene, cyclododecadiene and mixtures thereof, wherein the starting material present in the gas phase is hydrogenated in the presence of a catalyst in a fixed-bed reactor and the Bodenstein number for the process is greater than 100.
Abstract:
The present invention concerns a process for separation of a monomer including at least one double bond, hereafter referred to as “monomer,” in particular (meth)acrylic acid, from a composition Z including this monomer and at least one impurity different to the monomer, including the steps of bringing into contact of the composition Z with an additive by forming a separation phase. The additive has a melting point of at most about 150° C. and a vapour pressure at a temperature of 20° C. of at most about 1 mbar. The monomer is then separated from the separation phase. A device for producing a monomer, the use of additives in the separation of a monomer from a monomer-comprising composition, the monomer obtainable by the process according to the invention, chemical products comprising the monomer as well as the use of the monomer in or for production of chemical products.
Abstract:
The invention concerns a process for purification of an acidic monomer having a double bond, as well as a device for synthesis of an acidic monomer having a double bond, a process for producing an acidic monomer having a double bond, an acid monomer having a double bond and obtainable by this process, fibres, formed bodies, films, foams, superabsorbent polymers and other special polymers based on or containing this acidic monomer, the use of this acidic monomer in or for producing fibres, formed bodies, films, foams, superabsorbent polymers or other special polymers.
Abstract:
A system for operating a door lock (14) and a latching device (16), which can be arrested in a positive-locking manner, of a sliding door (10), said latching device preventing the sliding door (10) in its open position from sliding back. The operation of the door lock (14) and latching device (16) takes place mechanically via connecting elements, and the logical closing functions, are integrated in the door lock (14) which is situated remote from the door handles. In order to avoid very long connecting elements with cumulative tolerances, the connecting elements (22, 24) between the door handles and the door lock (14) have driver elements (40, 42) which act via a driven element (32, 44) on a connecting element (28) connected to the latching device (16).
Abstract:
A test probe for collecting test permeate samples from a multiple, reverse-osmosis membrane module, wherein the membrane module has a straight permeate-collection passageway and a plurality of individual, spaced-apart, permeate passageways which permit permeate, from each of a plurality of membranes, to flow into the permeate-collection passageway, and which probe comprises a first outer and a second inner tube concentrically positioned and spaced apart, whereby, on insertion of the test probe into the permeate-collection passageway, the test probe comprises a downstream permeate flow passageway and an upstream permeate flow passageway and a test permeate flow passageway, the test probe having a spacer element at the test end with a radial passageway, and resilient O-rings above and below the spacer element, and a coiled spring to bias the O-rings between an unbiased, nonsealing position and a biased, sealing position, whereby the O-rings extend radially outwardly, to form a seal above and below a test permeate passageway, and permit flow of the permeate from the individual passageways into the test permeate flow passageway, while not disrupting the flow of the upstream and downstream permeate.
Abstract:
The present application relates to a process for removing an organic compound having one or more positive charges from an aqueous solution, comprising the steps a) provision of the aqueous solution comprising the organic compound and of a hydrophobic organic solution which comprises a liquid cation exchanger, where the liquid cation exchanger is hydrophobic, and where the liquid cation exchanger has one or more negative charges and an overall negative charge, b) contacting the aqueous solution and the organic solution, and c) separating off the organic solution from the aqueous solution.
Abstract:
Cyclododecanone (CDON) is prepared by epoxidizing cyclododecene (CDEN) to epoxycyclododecane (CDAN epoxide), and rearranging the CDAN epoxide to CDON to obtain a mixture comprising said CDON and cyclododecane (CDAN), wherein CDAN is separated from the CDON-containing mixture and oxidized to CDON.
Abstract:
A computer system for receiving user data comprising a user access component having a display and a processor arranged to execute a data receiving application, wherein the data receiving application provides on the display at least one address field; and a geographical location device in communication with a location network and arranged to identify a geographical location of the device using information from the location network, the geographical location device located at a user address, the geographical location device operable to provide location data from which address data of the user address is derived and supplied to the data receiving application to automatically populate the address field on the display.
Abstract:
The invention relates to a method for removing an organic compound having one or more positive charges from an aqueous solution. Said method consists of the following steps a) the aqueous solution containing the organic compound, and a hydrophobic organic solution which contains a hydrophobic liquid cation exchanger having one or more negative charges and a negative total charge, are provided, b) the aqueous solution and the organic solution are brought into contact with each other and c) the organic solution is separated from the aqueous solution.
Abstract:
A process for preparing a ketone by conversion of a compound E which contains an epoxy group to the ketone in the presence of a mixture comprising at least one noble metal and at least one metal oxide as a catalyst system, wherein the metal oxide in the catalyst system is at least one of titanium dioxide and zirconium dioxide, and the process is conducted at 0 to 0.9 bar of hydrogen.