EP0987101A2

Method for producing a ceramic diaphragm structure

Abstract

A method for forming a ceramic diaphragm structure includes the steps of: a) providing a laminate, comprising: i) a ceramic green substrate having at least one window therethrough and a plurality of layers; andii) a thin ceramic green sheet having at least one layer superposed on the ceramic green substrate to cover the at least one window; andb) firing the laminate so that the ceramic green sheet provides a diaphragm portion protruding in a direction away from the at least one window;    wherein the ceramic green substrate and the ceramic green sheet satisfy the formulae: 1) S(substrate) - S(sheet)    ≧ - 0.08{T70(substrate) - T70(sheet)} - 12) 0 ≦ T70(substrate)- T70(sheet) ≦ 300, and3) S(substrate) - S(sheet) ≦ 20 (wherein S(substrate) and S(sheet) denote shrinkage rates(%) of the ceramic green substrate and the ceramic green sheet, respectively, and T70(substrate) and T70(sheet) denote an mid-sintering temperatures (°C) of the ceramic green substrate and the ceramic green sheet, respectively.), and average mid-sintering temperature difference of the ceramic green substrate, shown by the following formula, is smaller than 0: (wherein N denotes the number of layers constituting the ceramic green substrate, T70(substrate)n denotes a mid-sintering temperature (°C) of a layer positioned in the nth place from the bottom of the laminate in the ceramic green substrate having the ceramic green sheet thereon, tn and tn+1 denote distances from the lower and upper surfaces, respectively, of the layer positioned in the nth place to a neutral line of the substrate after firing the unitary laminate, using (-) for a surface under the neutral line and (+) for a surface over the neutral line.), and an average shrinkage-rate difference of the ceramic green substrate, shown by the following formula, is smaller than 0: (wherein N denotes the number of layers constituting the ceramic green substrate, S(substrate)n denotes a shrinkage rate (%) of a layer positioned in the nth place from the bottom of the laminate in the ceramic green substrate having the ceramic green sheet thereon, and tn and tn+1 denote distances from the lower and upper surfaces, respectively, of the layer positioned in number n place to a neutral line of the substrate after firing the unitary laminate, using (-) for a surface under the neutral line and (+) for a surface over the neutral line.).

EP0987101A2, drawing sheet 1
Sheet 1 of 47

Term

Term ended

Projected expiry passed 13 September 2019, 7 years ago.

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8 claims: 4 independent, 4 dependent

  1. 1
    A method for forming a ceramic diaphragm structure comprising the steps of:a) providing a laminate, comprising: i) a ceramic green substrate having at least one window therethrough and a plurality of layers;and ii) a thin ceramic green sheet having at least one layer superposed on the ceramic green substrate to cover the at least one window;and b) firing the laminate so that the ceramic green sheet provides a diaphragm portion protruding in a direction away from the at least one window;wherein the ceramic green substrate and the ceramic green sheet satisfy the formulae: 1) S(substrate) - S(sheet)    ≧ - 0.08{T 70 (substrate) - T 70 (sheet)} - 1 2) 0 ≦ T 70 (substrate) - T 70 (sheet) ≦ 300, and 3) S(substrate) - S(sheet) ≦ 20 (wherein S(substrate) and S(sheet) denote shrinkage rates(%) of the ceramic green substrate and the ceramic green sheet, respectively, and T 70 (substrate) and T 70 (sheet) denote mid-sintering temperatures (°C) of the ceramic green substrate and the ceramic green sheet, respectively.), and an average mid-sintering temperature difference of the ceramic green substrate, shown by the following formula, is smaller than 0: (wherein N denotes the number of layers constituting the ceramic green substrate, T 70 (substrate) n denotes a mid-sintering temperature (°C) of a layer positioned in the nth place from the bottom of the laminate in the ceramic green substrate having the ceramic green sheet thereon, and t n and t n+1 denote distances from the lower and upper surfaces, respectively, of the layer positioned in number n place to a neutral line of the substrate after firing the unitary laminate, using (-) for a surface under the neutral line and (+) for a surface over the neutral line.), and an average shrinkage-rate difference of the ceramic green substrate, shown by the following formula, is smaller than 0: (wherein N denotes the number of layers constituting the ceramic green substrate, S(substrate) n denotes a shrinkage rate (%) of a layer positioned in the nth place from the bottom of the laminate in the ceramic green substrate having the ceramic green sheet thereon, and t n and t n+1 denote distances from the lower and upper surfaces, respectively, of the layer positioned in the nth place to a neutral line of the substrate after firing the unitary laminate, using (-) for a surface under the neutral line and (+) for a surface over the neutral line.).
  2. 3
    A method for forming a ceramic diaphragm structure comprising the steps of:a) providing a laminate, comprising: i) a ceramic green substrate having at least one window therethrough and a plurality of layers;and ii) a thin ceramic green sheet having at least one layer superposed on the ceramic green substrate to cover the at least one window;and b) firing the laminate so that the ceramic green sheet provides a diaphragm portion protruding in a direction away from the at least one window;wherein the ceramic green substrate and the ceramic green sheet satisfy the following formulae 1), 2), and 3): 1) S(substrate) - S(sheet)    ≧ - 0.08{T 70 (substrate) - T 70 (sheet)} - 1 2) 0 ≦ T 70 (substrate) - T 70 (sheet) ≦ 300, and 3) S(substrate) - S(sheet) ≦ 20 (wherein S(substrate), S(sheet), T 70 (substrate), and T 70 (sheet) denote as described above), and an average mid-sintering temperature difference of the ceramic green substrate, shown by the following formula, is 0: (wherein N, T 70 (substrate) n , t n , and t n+1 denote as described above.), and an average shrinkage-rate difference of the ceramic green substrate, shown by the following formula, is smaller than 0: (wherein N, S(substrate)n, t n , and t n+1 denote the same as mentioned above.).
  3. 5
    A method for forming a ceramic diaphragm structure comprising the steps of:a) providing a laminate, comprising: i) a ceramic green substrate having at least one window therethrough and a plurality of layers;and ii) a thin ceramic green sheet having at least one layer superposed on the ceramic green substrate to cover the at least one window;and b) firing the laminate so that the ceramic green sheet provides a diaphragm portion protruding in a direction away from the at least one window;wherein the ceramic green substrate and the ceramic green sheet satisfy the following formulae: 1) S(substrate) - S(sheet)    ≧ - 0.08{T 70 (substrate) - T 70 (sheet)} - 1 2) 0 ≦ T 70 (substrate) - T 70 (sheet) ≦ 300, and 3) S(substrate) - S(sheet) ≦ 20 (wherein S(substrate), S(sheet), T 70 (substrate), and T 70 (sheet) denotes as described before.), and an average mid-sintering temperature difference of the ceramic green substrate, shown by the following formula 4), is smaller than 0: (wherein N, T 70 (substrate) n , t n , and t n+1 denote the same as described above.), and an average shrinkage-rate difference of the ceramic green substrate, shown by the following formula 5), is 0: (wherein N, S(substrate) n , t n , and t n+1 denote as described above.).
  4. 7
    A method for forming a ceramic diaphragm structure comprising the steps of:a) providing a laminate, comprising: i) a ceramic green substrate having at least one window therethrough and a plurality of layers;and ii) a thin ceramic green sheet having at least one layer superposed on the ceramic green substrate to cover the at least one window;and b) firing the laminate so that the ceramic green sheet provides a diaphragm portion protruding in a direction away from the at least one window;wherein the ceramic green substrate and the ceramic green sheet satisfy the formulae: 1) S(substrate) - S(sheet)    ≧ - 0.08{T 70 (substrate) - T 70 (sheet)} - 1 2) 0 ≦ T 70 (substrate) - T 70 (sheet) ≦ 300, and 3) S(substrate) - S(sheet) ≦ 20 (wherein S(substrate), S(sheet), T 70 (substrate), and T 70 (sheet) denotes as described before.), and one of an average mid-sintering temperature difference of the ceramic green substrate, shown by the following formula 4): (wherein N, T 70 (substrate) n , t n , and t n+1 denote as described above.), and an average shrinkage-rate difference of the ceramic green substrate, shown by the formula 5): (wherein N, S(substrate) n , t n , and t n+1 denote the same as mentioned above.), is smaller than 0, and the other is larger than 0, and a value of the ceramic green substrate, given by the folowing formula 6), is smaller than 0: (wherein N, S(substrate) n , T 70 (substrate) n , t n , and t n+1 denote as described above.).