CA2019191C

Method of and apparatus for pyrolytically forming an oxide coating on a hot glass substrate

Abstract

A method of pyrolytically forming a silicon oxide coating on a hot glass substrate as it travels past a coating chamber comprises contacting the substrate with silane-containing coating precursor material in the presence of oxygen. The silane-containing coating precursor material is in the vapour phase and it and gaseous oxygen are intimately mixed before they enter the coating chamber to contact the substrate. Silane as coating precursor material may be conveyed towards the coating chamber in vapour phase in a substantially inert carrier gas stream and oxygen introduced into the silane-containing earner gas stream before it enters the coating chamber. The coating operation may take place within a coating chamber within a float chamber in which the glass is formed into a ribbon. The coating chamber may be defined by the ribbon path and a downwardly opening hood, and it may be aspirated around substantially the whole of its periphery.

CA2019191C, drawing sheet 1
Sheet 1 of 3

Term

Term ended

Expired 18 June 2010, 16.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

59 claims: 4 independent, 55 dependent

  1. 1
    The embodiments of the invention in which an exclusive property or privilege is claimed are defined as follows:1. A method of pyrolytically forming a silicon oxide coating on a hot glass substrate as it travels past a coating chamber by contacting the hot glass substrate with a silane-containing coating precursor material in the presence of oxygen, characterised in that the silane-containing coating precursor material in vapour phase and gaseous oxygen arc intimately mixed to form a gaseous mixture before introduction thereof into the coating chamber to contact the hot glass substrate.
  2. 8
    A method according to any one of claims 1 to 7, wherein the coating chamber is defined by the substrate path and a downwardly opening hood, and wherein the coating chamber is provided with aspiration means for aspirating substantially the entire periphery of the coating chamber.
  3. 10
    A method according to any one of claims 1 to 9, wherein the coating precursor material is silane and is conveyed towards the coating chamber in vapour phase in a stream of substantially inert carrier gas, and wherein oxygen is introduced into the silane-containing carrier gas stream before it enters the coating chamber.
  4. 14
    A method according to any one of claims 10 to 13, wherein turbulence is induced in the silane-containing carrier gas stream after the introduction of oxygen thereinto to ensure intimate mixing of the silane-containing carrier gas stream and the oxygen.
  5. 15
    A method according to any one of claims 1 to 14, wherein the coating precursor material is silane and the silane introduced into the coating chamber has a partial pressure between 0.1% and 1.5%.
  6. 19
    A method according to any one of claims 1 to 18, wherein there is a limited transfer of heat energy to the coating precursor material in the gaseous mixture as it travels towards the hot glass substrate.
  7. 20
    A method according to any one of claims 1 to 19, wherein the gaseous mixture is introduced into the coating chamber via at least one slot which extends, or which together extend, across at least the major part of the width of the silicone dioxide coating which is to be formed on the hot glass substrate.
  8. 21
    A method of pyrolytically forming a silicon oxide coating on a hot glass substrate as it travels through a coating chamber along a substrate path, the method comprising the steps of:a) intimately mixing a coating precursor material which contains silane and which is in vapor phase, and gaseous oxygen to form a gaseous mixture before introduction thereof into the coating chamber;b) introducing the gaseous mixture into the coating chamber;and c) contacting the hot glass substrate as it travels through the coating chamber with the gaseous mixture to pyrolytically form the silicon oxide coating thereon.
  9. 40
    An apparatus for pyrolytically forming an oxide coating on an upper face of a moving, hot glass substrate, comprising:a substrate path and a downwardly opening hood positioned along the substrate path and defining together with the substrate path a coating chamber;support means for conveying the hot glass substrate along the substrate path past the coating chamber;mixing means for intimately mixing a coating precursor material in vapour phase with oxygen to form a gaseous mixture before introduction thereof into the coating chamber;means for supplying the gaseous mixture to the coating chamber;and aspirating means for aspirating ambient atmosphere including coating reaction products and unused coating precursor material from the coating chamber.
  10. 45
    An apparatus according to any one of claims 40 to 44, wherein said mixing means includes means for introducing the coating precursor material into a 20 1 919 1 stream of substantially inert carrier gas and for subsequently introducing oxygen into the precursor-containing carrier gas stream to form said gaseous mixture.
  11. 49
    An apparatus according to any one of claims 40 to 48, wherein at least one slot is provided for the introduction of the coating precursor material into the coating chamber, the at least one slot extends across at least a major part of the width of the coating chamber.
  12. 50
    An apparatus according to any one of claims 40 to 49, wherein means is provided for limiting the transfer of heat energy to the coating precursor material in the gaseous mixture as it travels towards the coating chamber.
  13. 51
    Apparatus for pyro lyrically forming an oxide coating on an upper face of a moving, hot glass substrate, comprising:a) a substrate path and a downwardly opening hood positioned along the substrate path and defining together with the substrate path a coating chamber;20 1 919 1 b) support means for conveying a hot glass substrate along the substrate path past the coating chamber;c) means for introducing a coating precursor material in vapor phase into a stream of substantially inert carrier gas, including means for inducing turbulence in the carrier gas stream to ensure intimate mixing of the carrier gas and the coating precursor material;d) means including at least one venturi for introducing oxygen into the precursor-containing carrier gas stream before it enters the coating chamber and provide a gas mixture stream;e) means for supplying to the coating chamber the gas mixture stream;and f) means for aspirating ambient atmosphere including coating reaction products and unused coating precursor material from the coating chamber.