EP0505002A2

Method of preparing polyethercyclicpolyols.

Abstract

Polyethercyclicpolyols are prepared by thermally condensing a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, precursors of the polyol, cyclic derivatives of the polyol, or mixtures thereof, and controlling process conditions to avoid substantial undesirable degeneration.

EP0505002A2, drawing sheet 1
Sheet 1 of 4

Term

Term ended

Projected expiry passed 17 March 2012, 14.5 years ago.

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40 claims: 20 independent, 20 dependent

  1. 1
    A method for preparing polyethercyclicpolyol by thermal condensation, comprising:(a) heating a reaction mixture comprising a reactant selected from the group consisting of (1) a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, (2) precursors of the polyol, (3) cyclic derivatives of the polyol, and (4) mixtures thereof, which heating initiates the thermal condensation;(b) removing water formed during the thermal condensation;and (c) continuing the thermal condensation until a predetermined quantity of moles of water per mole of reactant are removed, wherein the condensation goes to completion without incurring substantial undesirable degeneration.
  2. 2
    A method for preparing polyethercyclicpolyol by thermal condensation, comprising:(a) heating a reaction mixture comprising a reactant selected from the group consisting of (1) a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, (2) precursors of the polyol, (3) cyclic derivatives of the polyol, and (4) mixtures thereof, which heating initiates the thermal condensation;(b) removing water formed during the thermal condensation;and (c) continuing the thermal condensation while adding additional reactant in such a manner that the reaction proceeds to completion at a rate faster than the additional reactant is being incorporated, thereby maximizing molecular weight of the polyethercyclicpolyol.
  3. 3
    A method for preparing polyethercyclicpolyol by thermal condensation, comprising:(a) heating a reaction mixture comprising a basic catalyst and a reactant selected from the group consisting of (1) a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, (2) precursors of the polyol, (3) cyclic derivatives of the polyol, and (4) mixtures thereof, which heating initiates the thermal condensation;(b) removing water formed during the thermal condensations;and (c) continuing the thermal condensation to completion while controlling the pH of the reaction mixture within a preselected range by addition of the basic catalyst.
  4. 4
    A method for preparing polyethercyclicpolyol by thermal condensation, comprising:(a) heating a reaction mixture comprising a reactant selected from the group consisting of (1) a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, (2) precursors of the polyol, (3) cyclic derivatives of the polyol, and (4) mixtures thereof, which heating initiates the thermal condensation;(b) removing water formed during the thermal condensation;and (c) continuing the thermal condensation and adding a final quantity of additional reactant to the reaction mixture when the thermal condensation is within a preselected degree of completion, thereby buffering the condensation and preventing undesirable degeneration.
  5. 5
    Method according to any one of the claims 1-4, wherein prior to the thermal condensation going to completion an aromatic compound containing at least two hydroxyl groups is admixed with the reaction mixture.
  6. 8
    Method according to any one of the claims 1-4, wherein prior to the thermal condensation going to completion an aliphatic dihydric alcohol is admixed with the reaction mixture.
  7. 11
    Method according to any one of the claims 1-4, wherein, prior to the thermal condensation going to completion epoxy alcohol is admixed with the reaction mixture.
  8. 14
    The method according to any one of the claims 1-4, prior to the thermal condensation going to completion epihalohydrin and an alkali metal salt is admixed with the reaction mixture.
  9. 17
    The method according to any one of the claims 1-16, wherein the reactant is glycerol and at least 1.05 moles of water per mole of the glycerol are removed.
  10. 20
    The method according to any one of the claims 1-16, wherein the reactant is a mixture including glycerol and cyclic derivatives of the glycerol and wherein the moles of water removed per mole of the cyclic derivatives of glycerol is equal to at least 1.05 minus the moles of water which would have been removed in thermally condensing the cyclic derivatives of the glycerol from a glycerol feedstock.
  11. 21
    The method according to any one of the claims 1-16, wherein the reactant is glycerol and additional glycerol is added to the reaction mixture after the thermal condensation is at least 40 percent complete, basis the amount of reactant present at the end of the reaction.
  12. 23
    The method according to of any one of the claims 1-16, wherein the reactant is glycerol and a minor quantity of glycerol is added to the reaction mixture when the thermal condensation is at least 90 percent complete.
  13. 25
    The method according to any one of the claims 1-16, including controlling the temperature of the reaction mixture to stay below a maximum within the range of 250 to 295°C at a pressure of 40 to 80 mm Hg.
  14. 26
    The method according to any one of the claims 1-16, wherein an alkali hydroxide catalyst is employed to control the starting pH of the reaction within a range of 5 to 13.5, and the final pH of the reaction mixture within a range of 5 to 9.5.
  15. 27
    The method according to any one of the claims 1-16, wherein sodium chloride is present in the reactant mixture.
  16. 28
    The method according to any one of the claims 1-16, wherein the initial condensation pressure is selected so that water is the principal overhead product.
  17. 29
    A composition comprising a mixture of polyethercyclicpolyols characterized by the presence of at least one 5- to 7-membered ring structure per individual molecule in at least 80 percent of the molecular mass.
  18. 36
    A polyethercyclicpolyol of a reactant selected from the group consisting of (1) a polyol having at least three hydroxyl groups of which at least two of the hydroxyl groups are vicinal, (2) precursors of the polyol, (3) cyclic derivatives of the polyol, and (4) mixtures thereof, having a weight average molecular weight in the range of from 50 000-300 000.
  19. 38
    Use of a polyethercyclicpolyol prepared by the method according to any one of the claims 1-28 in a drilling fluid.
  20. 39
    Use of the composition according to any one of the claims 29-35 in a drilling fluid.
Independent claims20