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Featured researches published by Daniel Lindgren.


European Polymer Journal | 2002

Decrease in activity caused by hydrogen in Ziegler–Natta ethene polymerisation

Thomas Garoff; Solveig Johansson; Kari Pesonen; Päivi Waldvogel; Daniel Lindgren

In this study we prepared seven different Ziegler–Natta catalysts and polymerised them at different hydrogen concentrations in order to investigate their kinetic behaviour during polymerisation. The objective was to see whether the results corresponded to what could be expected on the basis of Kissins β-agostic deactivation theory. According to this theory, hydrogen causes the formation of dormant sites due to the formation of β-agostic coordination from the ethyl groups formed after hydrogen termination. According to this theory, the more hydrogen that is used, the more β-agostic coupling and the smaller percentage of Ti in a polymerising state. This β-agostic coupling would thus explain the lower activity level seen in polymerisation where more hydrogen has been used. The results of this study showed that none of the catalysts showed the kind of behaviour that would correspond to what could be predicted on the basis of Kissins theory. Deactivation could be detected only when a lower amount of hydrogen was used. When higher amounts of hydrogen were used in polymerisation there was a clear delay in activation time of the catalysts. This particularly seemed to be the case for catalysts where Ti was present as Ti(IV). This delay in the activation of the catalyst caused a decrease in activity in addition to the normal decrease in activity due to hydrogen replacing C2′′ in the polymerisation process. The only catalyst showing no delay in activation was a silica-based PE ZN catalyst where the Ti was already in trivalent form. In this case no decrease in activity was observed in addition to the normal decrease in activity caused by hydrogen replacing C2′′ in the polymerisation process.


Archive | 1995

Procatalyst for ethylene polymer production, method for its preparation and use

Thomas Garoff; Solveig Johansson; Ulf Palmqvist; Daniel Lindgren; Marita Sutela; Päivi Waldvogel; Arja Kostiainen


Archive | 1996

Procatalyst, procatalyst precursor, and process for the preparation of a multimodal ethylene polymer

Ulf Palmqvist; Solveig Johansson; Lars Thorn; Peter Idelmann; Anders Wahlström; Daniel Lindgren


Archive | 1998

Procatalyst and process for the preparation of a multimodal ethylene polymer

Ulf Palmqvist; Solveig Johansson; Lars Thorn; Peter Idelmann; Anders Wahlström; Daniel Lindgren


Archive | 2000

A high activity olefin polymerization procatalyst, its preparation, catalyst system and use

Ulf Palmqvist; Solveig Johansson; Daniel Lindgren; Ove Andell; Jarmo Lindroos


Archive | 2001

Process for preparing a procatalyst for olefin polymerization

Solveig Johansson; Päivi Waldvogel; Daniel Lindgren; Ulf Palmqvist


Archive | 1989

PROCESS FOR THE GAS PHASE POLYMERISATION OF OLEFIN MONOMERS

Ulf Palmqvist; Solveig Johansson; Daniel Lindgren; Tarja Korvenoja


Archive | 2003

PROCATALYST FOR ETHYLENE POLYMER PRODUCTION, AND METHOD FOR ITS PREPARATION

Thomas Garoff; Solveig Johansson; Ulf Palmqvist; Daniel Lindgren; Marita Sutela; Päivi Waldvogel; Arja Kostiainen


Archive | 2000

Procatalyseur de polymerisation d'olefines ayant une haute activite, sa preparation, systeme catalyseur et utilisation

Ulf Palmqvist; Solveig Johansson; Daniel Lindgren; Ove Andell; Jarmo Lindroos


Archive | 1996

Prokatalysator, prokatalysatorvorstufe und verfahren zur herstellung eines multimodalen ethylenpolmers

Ulf Palmqvist; Solveig Johansson; Lars Thorn; Peter Idelmann; Anders Wahlstroem; Daniel Lindgren

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