date: 2020-07-10T11:52:26Z pdf:PDFVersion: 1.6 pdf:docinfo:title: Energy-Efficient Distillation Processes by Additional Heat Transfer Derived From the FluxMax Approach xmp:CreatorTool: LaTeX with hyperref package + hypdvips access_permission:can_print_degraded: true subject: Distillation processes are an essential component of any chemical plant for the separation and purification of condensable mixtures. language: en dc:format: application/pdf; version=1.6 pdf:docinfo:creator_tool: LaTeX with hyperref package + hypdvips access_permission:fill_in_form: true pdf:encrypted: false dc:title: Energy-Efficient Distillation Processes by Additional Heat Transfer Derived From the FluxMax Approach modified: 2020-07-10T11:52:26Z cp:subject: Distillation processes are an essential component of any chemical plant for the separation and purification of condensable mixtures. pdf:docinfo:subject: Distillation processes are an essential component of any chemical plant for the separation and purification of condensable mixtures. pdf:docinfo:creator: Kai Sundmacher meta:author: Kai Sundmacher meta:creation-date: 2020-07-03T02:32:29Z created: 2020-07-03T02:32:29Z access_permission:extract_for_accessibility: true Creation-Date: 2020-07-03T02:32:29Z Author: Kai Sundmacher producer: dvips + MiKTeX GPL Ghostscript 9.0 pdf:docinfo:producer: dvips + MiKTeX GPL Ghostscript 9.0 pdf:unmappedUnicodeCharsPerPage: 0 dc:description: Distillation processes are an essential component of any chemical plant for the separation and purification of condensable mixtures. Keywords: process design, distillation columns, energy-efficiency, heat exchange, heat integration, methanol access_permission:modify_annotations: true dc:creator: Kai Sundmacher description: Distillation processes are an essential component of any chemical plant for the separation and purification of condensable mixtures. dcterms:created: 2020-07-03T02:32:29Z Last-Modified: 2020-07-10T11:52:26Z dcterms:modified: 2020-07-10T11:52:26Z title: Energy-Efficient Distillation Processes by Additional Heat Transfer Derived From the FluxMax Approach xmpMM:DocumentID: uuid:1cd3beb7-4390-4af3-a4fd-9d4af77c88c0 Last-Save-Date: 2020-07-10T11:52:26Z pdf:docinfo:keywords: process design, distillation columns, energy-efficiency, heat exchange, heat integration, methanol pdf:docinfo:modified: 2020-07-10T11:52:26Z meta:save-date: 2020-07-10T11:52:26Z Content-Type: application/pdf X-Parsed-By: org.apache.tika.parser.DefaultParser creator: Kai Sundmacher dc:language: en dc:subject: process design, distillation columns, energy-efficiency, heat exchange, heat integration, methanol access_permission:assemble_document: true xmpTPg:NPages: 15 pdf:charsPerPage: 3349 access_permission:extract_content: true access_permission:can_print: true meta:keyword: process design, distillation columns, energy-efficiency, heat exchange, heat integration, methanol access_permission:can_modify: true pdf:docinfo:created: 2020-07-03T02:32:29Z