METHOD FOR CALCULATING DIELECTRIC CONSTANT OF PARTICLE-DISPERSED COMPOSITE MATERIALS AND METHOD FOR EVALUATING DISPERSIBILITY
20180292343 ยท 2018-10-11
Assignee
Inventors
Cpc classification
International classification
Abstract
A method for calculating the dielectric constant of particle-dispersed composite materials that enables an easy evaluation of dispersibility. The composite material is assumed as a cell combination 10 in which unit cells 1 having a length a are combined together in an x-axis, a y-axis, and a z-axis direction and which has a length 1 in the x-axis direction, a length m in the y-axis direction, and a length n in the z-axis direction, the cell combination 10 is created in which a particle element or a medium element is assigned to each of the unit cells 1 Layers have a thickness d in the z-axis direction are combined and layered in the z-axis direction and assigning a capacitance C.sub.Layer,h of each of the layers represented by Formula 1 below to Formula 2 to determine a relative dielectric constant ?.sub.Total.
Claims
1. A method for calculating a dielectric constant of a particle-dispersed composite material containing particles dispersed in a medium, the method comprising: measuring a number-based median particle diameter D.sub.50, a maximum diameter D.sub.max, a minimum diameter D.sub.min, and a geometric standard deviation ?.sub.g in a particle diameter distribution of the particles in an unagglomerated state; assuming the particle-dispersed composite material as a cell combination in which unit cells having the same length a in each of an x-axis direction, a y-axis direction, and a z-axis direction are combined together in the x-axis direction, the y-axis direction, and the z-axis direction and which has a length l in the x-axis direction, a length m in the y-axis direction, and a length n in the z-axis direction, considering that each of the unit cells of the cell combination is constituted by a single particle element or a single medium element, and creating the cell combination in which the particle element or the medium element is assigned to each of the unit cells in consideration of the number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in the particle diameter distribution and a content of the particles in the particle-dispersed composite material; and calculating a relative dielectric constant of the particle-dispersed composite material by assuming the cell combination as a laminate in which layers having a thickness d in the z-axis direction are combined and layered in the z-axis direction and assigning a capacitance C.sub.Layer,h of each of the layers represented by Formula 1 below to Formula 2 below to determine a relative dielectric constant ?.sub.Total of the cell combination.
2. The method for calculating a dielectric constant of a particle-dispersed composite material according to claim 1, wherein the length a of the unit cell is a=(D.sub.50/??.sub.g) and a fitting parameter ? is selected within a range of values where determination results of the relative dielectric constant ?.sub.Total have a constant standard deviation.
3. A method for evaluating dispersibility in a particle-dispersed composite material containing particles dispersed in a medium, the method comprising the steps of: measuring a number-based median particle diameter D.sub.50, a maximum diameter D.sub.max, a minimum diameter D.sub.min, and a geometric standard deviation ?.sub.g in a particle diameter distribution of the particles in an unagglomerated state; measuring a relative dielectric constant of the particle-dispersed composite material to obtain a measured value of the relative dielectric constant of the particle-dispersed composite material; and assuming arbitrary values as a volume content Va % of agglomerates in the particles and an average number Na of primary particles forming the agglomerates, determining the relative dielectric constant ?.sub.Total of the cell combination by the method for calculating a dielectric constant according to claim 1, and selecting values of Va and Na giving a relative dielectric constant ?.sub.Total nearest to the measured value of the relative dielectric constant of the particle-dispersed composite material, wherein the dispersibility is evaluated by determining from the selected values of Va and Na a particle diameter distribution of the particles inclusive of the agglomerates in the particle-dispersed composite material.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DESCRIPTION OF EMBODIMENTS
[0037] Hereinafter, a description will be given of a preferred embodiment. However, the following embodiment is merely illustrative and the present invention is not limited by the following embodiment.
[0038]
[0039] The cell combination 10 shown in
[0040]
[0041] In the method for calculating the dielectric constant according to the present invention, each agglomerate 20 shown in
[0042] As shown in
[0043]
[0044] In the present invention, the number-based median particle diameter D.sub.50, the maximum diameter D.sub.rmax, the minimum diameter D.sub.min and the geometric standard deviation ?.sub.g in a particle diameter distribution of particles in an unagglomerated state are previously measured. The particle diameter distribution of particles in an unagglomerated state can be determined, for example, by measuring the particle diameter distribution of particles in powder form. The particle diameter distribution in powder form can be measured, for example, by a laser diffraction particle size distribution analyzer or observation with a microscope or the like. In determining the particle diameter by observation with a microscope or the like, the Green diameter in a predetermined direction can be defined as the particle diameter.
[0045] In assigning a particle element or a medium element to each unit cell 1 of the cell combination 10, the particle element or the medium element is assigned to each unit cell 1 in consideration of the above number-based median particle diameter D.sub.50, maximum diameter D.sub.max, minimum diameter D.sub.min, and geometric standard deviation ?.sub.g in the particle diameter distribution and the content of particles in the particle-dispersed composite material.
[0046] As for the cell combination 10 in which particle elements or medium elements are assigned to the unit cells 1 in the above manner, its dielectric constant is calculated. In calculating the dielectric constant of the cell combination 10 in the present invention, the cell combination 10 is assumed as a laminate in which layers having a thickness d in the z-axis direction are combined and layered in the z-axis direction.
[0047]
[0048] No particular limitation is placed on the thickness d of the layer 10a, but d represented by the following formula is preferably used.
d=(D.sub.4?.sub.g)/2(1+P.sub.f)
[0049] D.sub.4: volume mean diameter (?m)
[0050] P.sub.f: volume content of particles (within a range of 0 to 1)
[0051] The volume mean diameter D.sub.4 and the geometric standard deviation ?.sub.g are defined by the following formulas.
D.sub.4=D.sub.4,D(1?V.sub.?N/100)+D.sub.4,AV.sub.?N/100
?.sub.g=?.sub.g,D(1?V.sub.?N/100)+?.sub.g,AV.sub.?N/100
[0052] Suffix D: group of unagglomerated (dispersed) particles
[0053] Suffix A: group of agglomerated particles
[0054] V.sub.?N: percentage of number of agglomerates
[0055] The capacitance C.sub.Layer,h of the layer 10a (the capacitance of the h-th layer) can be represented by the following Formula 1.
[0056] ?.sub.0: dielectric constant of vacuum (F/m)
[0057] Note that the unit of the lengths l, m, and n is ?m.
[0058]
[0059] According to the present invention, the relative dielectric constant of the particle-dispersed composite material can be calculated by determining the relative dielectric constant ?.sub.Total of the cell combination 10 in the above manner.
[0060] Although an arbitrary value can be used as the length a of the unit cell, a value of a determined by the following formula is preferably used.
[0061] ?=(D.sub.50/??.sub.g)
[0062] ?: fitting parameter
[0063] An optimal fitting parameter ? was determined under the conditions shown in Table 1. The fitting parameter ? was changed within a range of 2 to 30.
TABLE-US-00001 TABLE 1 System Size l (x-direction) 30 (?m) m (y-direction) 30 (?m) n (z-direction) 30 (?m) Unit Cell Length a D.sub.50/??g (? = 2~30) Particle Diameter Max. Diameter Dmax 1.69 (?m) Distribution Min. Diameter Dmin 0.35 (?m) Median Diameter D.sub.50 0.77 (?m) Geom. Standard 1.47 () Deviation Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 2.227 () Dielectric Constant of Particles 100 () Volume Content of Particles 10 (%)
[0064]
[0065] Next, an optimal number of unit cells was determined under the conditions shown in Table 2. The number of unit cells was changed within a range of 100 to 2000. Furthermore, the volume content of particles was changed within a range of 0 to 15% by volume.
TABLE-US-00002 TABLE 2 Number of Cells l/a (x-direction) 100~2000 () m/a (y-direction) 100~2000 () n/a (z-direction) 100~2000 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 1.69 (?m) Distribution Min. Diameter Dmin 0.35 (?m) Median Diameter D.sub.50 0.77 (?m) Geom. Standard Deviation 1.47 () Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 134 () Dielectric Constant of Particles 7.4 () Volume Content of Particles 0~15 (%)
[0066]
[0067] (Calculation of Dielectric Constant of Particle-Dispersed Composite Material)
[0068] <Sample 1>
[0069] In Sample 1, glass beads were used as particles and gelatin was used as a medium. The relative dielectric constant of the glass beads was set at 7.4 and the dielectric constant of gelatin was set at 134. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated glass beads are as shown in Table 3.
TABLE-US-00003 TABLE 3 Number of Cells l/a (x-direction) 1500 () m/a (y-direction) 1500 () n/a (z-direction) 1500 () Unit Cell length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 1090 (?m) Distribution Min. Diameter Dmin 480 (?m) Median Diameter D.sub.50 720 (?m) Geom. Standard Deviation 1.22 () Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 134 () Dielectric Constant of Particles 7.4 () Volume Content of Particles 0~15 (%)
[0070]
[0071] As shown in
[0072] <Sample 2>
[0073] In Sample 2, zirconia (ZrO.sub.2) particles were used as particles and an ultraviolet curable resin was used as a medium. The relative dielectric constant of zirconia was set at 27 and the dielectric constant of the ultraviolet curable resin was set at 3.57. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated zirconia particles are as shown in Table 4.
TABLE-US-00004 TABLE 4 Number of Cells l/a (x-direction) 1500 () m/a (y-direction) 1500 () n/a (z-direction) 1500 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 2075 (?m) Distribution Min. Diameter Dmin 1814 (?m) Median Diameter D.sub.50 1940 (?m) Geom. Standard Deviation 1.03 (?m) Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 3.57 () Dielectric Constant of Particles 27 () Volume Content of Particles 0~5.2 (%)
[0074]
[0075] As shown in
[0076] <Sample 3>
[0077] In Sample 3, alumina (Al.sub.2O.sub.3) particles were used as particles and polyvinyl chloride (PVC) was used as a medium. The relative dielectric constant of alumina was set at 9 and the dielectric constant of polyvinyl chloride was set at 4.07. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated alumina particles are as shown in Table 5.
TABLE-US-00005 TABLE 5 Number of Cells l/a (x-direction) 1500 () m/a (y-direction) 1500 () n/a (z-direction) 1500 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 24.8 (?m) Distribution Min. Diameter Dmin 9.4 (?m) Median Diameter D.sub.50 15.2 (?m) Geom. Standard Deviation 1.27 (?m) Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 4.07 () Dielectric Constant of Particles 9 () Volume Content of Particles 0~20 (%)
[0078]
[0079] As shown in
[0080] As thus far described, it can be seen that the method for calculating a dielectric constant according to the present invention enables an easy calculation of a value of the relative dielectric constant close to an actual measured value.
[0081] (Evaluation of Dispersibility in Particle-Dispersed Composite Material)
[0082] In a method for evaluating dispersibility according to the present invention, arbitrary values are assumed as a volume content Va % of agglomerates in the whole of particles and an average number Na of primary particles forming the agglomerates, the relative dielectric constant ?.sub.Total of a cell combination is determined by the above-described method for calculating a dielectric constant according to the present invention, and values of Va and Na giving a relative dielectric constant ?.sub.Total nearest to the measured value of the relative dielectric constant of a particle-dispersed composite material are selected. The dispersibility is evaluated by determining from the selected values of Va and Na a particle diameter distribution of the particles inclusive of the agglomerates in the particle-dispersed composite material.
[0083] The particle-dispersed composite material in Sample 3 above was used as a sample for evaluating dispersibility. Therefore, alumina (Al.sub.2O.sub.3) particles were used as particles and polyvinyl chloride (PVC) was used as a medium.
[0084] By changing the content of alumina particles to 5% by volume, 10% by volume, 15% by volume, and 20% by volume, four types of polyvinyl chloride resin compositions containing alumina particles dispersed therein were produced. These polyvinyl chloride resin compositions were measured in terms of relative dielectric constant with an LCR meter.
[0085] Arbitrary values were assumed as a volume content Va % of agglomerates in the whole of particles and an average number Na of primary particles forming the agglomerates and simulation was performed under the conditions shown in Table 5, thus determining the respective relative dielectric constants ?.sub.Total of four types of cell combinations having different contents of alumina particles. This simulation was repeatedly performed and the values of Va and Na giving nearest values to the respective measured values of the relative dielectric constants of the four types of polyvinyl chloride resin compositions were selected. The selected values of Va and Na are shown in Table 6.
TABLE-US-00006 TABLE 6 Al.sub.2O.sub.3 Content Va Na (% by Volume) (% by Volume) () 5 66.0 1.5 10 69.6 4.2 15 73.4 8.3 20 72.7 7.8
[0086] The particle diameter distributions in the particle-dispersed composite materials were each calculated from the values of Va and Na shown in Table 6, the number-based median particle diameter D.sub.50, maximum diameter D.sub.max, minimum diameter D.sub.min, and geometric standard deviation ?.sub.g in the particle diameter distribution of particles in an unagglomerated state and the content of the particles in the particle-dispersed composite material. The resultant particle diameter distributions are shown as calculated values in
[0087] Furthermore, the above four types of polyvinyl chloride resin compositions were measured in terms of particle diameter distribution in their actual composition using an optical microscope. The measured particle diameter distributions are shown as measured values in
[0088] As shown in
[0089]
[0090] (Step 1)
[0091] The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of particles in an unagglomerated state are measured.
[0092] (Step 2)
[0093] The relative dielectric constant of the particle-dispersed composite material is measured to obtain a measured value of the relative dielectric constant of the particle-dispersed composite material.
[0094] (Step 3)
[0095] Arbitrary values are determined as the volume content Va % of agglomerates in the particles and the average number Na of primary particles forming the agglomerates.
[0096] (Step 4)
[0097] Based on the above-described method for calculating a dielectric constant according to the present invention, the relative dielectric constant ?.sub.Total of the cell combination is calculated using the determined values of Va and Na, the number-based median particle diameter D.sub.50, maximum diameter D.sub.max, minimum diameter D.sub.min, and geometric standard deviation ?.sub.g in the particle diameter distribution of the particles in an unagglomerated state and the content of the particles in the particle-dispersed composite material.
[0098] (Step 5)
[0099] A comparison is made between the calculated relative dielectric constant ?.sub.Total and the measured value of the relative dielectric constant and (Step 3) and (Step 4) are repeated until it is confirmed that a relative dielectric constant ?.sub.Total nearest to the measured value of the relative dielectric constant has been obtained.
[0100] (Step 6)
[0101] The values of Va and Na giving a relative dielectric constant ?.sub.Total nearest to the measured value of the relative dielectric constant are selected.
[0102] (Step 7)
[0103] A particle diameter distribution of the particles inclusive of the agglomerates in the particle-dispersed composite material is created from the particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, the geometric standard deviation ?.sub.g, the content of the particles in the particle-dispersed composite material, and the selected values of Va and Na, and dispersibility in the particle-dispersed composite material is evaluated.
[0104] In the case where a plurality of values are calculated as each of Va and Na giving a value nearest to the measured value of the relative dielectric constant in the above method for evaluating dispersibility, values of Va and Na considered to be most suitable are selected in consideration of the number-based median particle diameter D.sub.50, maximum diameter D.sub.max, minimum diameter D.sub.min, and geometric standard deviation ?.sub.g in the particle diameter distribution, the content of particles in the particle-dispersed composite material, and so on.
[0105] <Another Method for Determining Fitting Parameter ?>
[0106] In the above method for determining the fitting parameter ?, the fitting parameter ? is determined within a range of values where the standard deviation of the relative dielectric constant is constant, i.e., within a range of values where variations in relative dielectric constant are sufficiently small. However, in the case of a system in which the difference in dielectric constant between particles and a medium is not so large, it may be difficult to examine the fitting parameter ? based on variations in relative dielectric constant. As another method for determining the fitting parameter ?, a method for determining the fitting parameter ? within a range of values where variations in calculated volume content of particles are sufficiently small may be adopted.
[0107]
[0108] (Calculation of Dielectric Constant of Particle-Dispersed Composite Material)
[0109] <Sample 4>
[0110] In Sample 4, alumina beads were used as particles and gelatin was used as a medium. The relative dielectric constant of the alumina beads was set at 9 and the dielectric constant of gelatin was set at 112. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated alumina beads are as shown in Table 7.
TABLE-US-00007 TABLE 7 Number of Cells l/a (x-direction) 3178 () m/a (y-direction) 3178 () n/a (z-direction) 172~188 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 2140 (?m) Distribution Min. Diameter Dmin 970 (?m) Median Diameter D.sub.50 1440 (?m) Geom. Standard Deviation 1.22 () Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 112 () Dielectric Constant of Particles 9 () Volume Content of Particles 0~11.1 (%)
[0111]
[0112] As shown in
[0113] <Sample 5>
[0114] In Sample 5, alumina balls were used as particles and epoxy resin was used as a medium. The relative dielectric constant of alumina balls was set at 9 and the dielectric constant of epoxy resin was set at 4.44. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated alumina balls are as shown in Table 8.
TABLE-US-00008 TABLE 8 Number of Cells l/a (x-direction) 2645 () m/a (y-direction) 2645 () n/a (z-direction) 552~695 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 5300 (?m) Distribution Min. Diameter Dmin 4890 (?m) Median Diameter D.sub.50 5090 (?m) Geom. Standard Deviation 1.02 (?m) Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectrtic Constant of Medium 4.44 () Dielectric Constant of Particles 9 () Volume Content of Particles 0~15.2 (%)
[0115]
[0116] As shown in
[0117] <Sample 6>
[0118] In Sample 6, alumina (Al.sub.2O.sub.3) particles were used as particles and polyvinyl chloride (PVC) was used as a medium. The relative dielectric constant of alumina was set at 9 and the dielectric constant of polyvinyl chloride was set at 3.78. The number-based median particle diameter D.sub.50, the maximum diameter D.sub.max, the minimum diameter D.sub.min, and the geometric standard deviation ?.sub.g in a particle diameter distribution of unagglomerated alumina particles are as shown in Table 5.
TABLE-US-00009 TABLE 9 Number of Cells l/a (x-direction) 2000 () m/a (y-direction) 2000 () n/a (z-direction) 2000 () Unit Cell Length a D.sub.50/10?g Particle Diameter Max. Diameter Dmax 24.5 (?m) Distribution Min. Diameter Dmin 9.4 (?m) Median Diameter D.sub.50 15.2 (?m) Geom. Standard Deviation 1.27 (?m) Dielectric Constant of Vacuum 8.854 ? 10.sup.?12 (Fm.sup.?1) Dielectric Constant of Medium 3.78 () Dielectric Constant of Particles 9 () Volume Content of Particles 0~20 (%)
[0119]
[0120] As shown in
[0121] As thus far described, it can be seen that the method for calculating a dielectric constant according to the present invention enables an easy calculation of a value of the relative dielectric constant close to an actual measured value.
[0122] (Evaluation of Dispersibility in Particle-Dispersed Composite Material)
[0123] In a method for evaluating dispersibility according to the present invention, arbitrary values are assumed as a volume content Va % of agglomerates in the whole of particles and an average number Na of primary particles forming the agglomerates, the relative dielectric constant ?.sub.Total of a cell combination is determined by the above-described method for calculating a dielectric constant according to the present invention, and values of Va and Na giving a relative dielectric constant ?.sub.Total nearest to the measured value of the relative dielectric constant of a particle-dispersed composite material are selected. The dispersibility is evaluated by determining from the selected values of Va and Na a particle diameter distribution of the particles inclusive of the agglomerates in the particle-dispersed composite material.
[0124] The particle-dispersed composite material in Sample 6 above was used as a sample for evaluating dispersibility. Therefore, alumina (Al.sub.2O.sub.3) particles were used as particles and polyvinyl chloride (PVC) was used as a medium.
[0125] By changing the content of alumina particles to 5% by volume, 10% by volume, 15% by volume, and 20% by volume, four types of polyvinyl chloride resin compositions containing alumina particles dispersed therein were produced. These polyvinyl chloride resin compositions were measured in terms of relative dielectric constant with an LCR meter.
[0126] Arbitrary values were assumed as a volume content Va % of agglomerates in the whole of particles and an average number Na of primary particles forming the agglomerates and simulation was performed under the conditions shown in Table 9, thus determining the respective relative dielectric constants ?.sub.Total of four types of cell combinations having different contents of alumina particles. This simulation was repeatedly performed and the values of Va and Na giving nearest values to the respective measured values of the relative dielectric constants of the four types of polyvinyl chloride resin compositions were selected. The selected values of Va and Na are shown in Table 10.
TABLE-US-00010 TABLE 10 Al.sub.2O.sub.3 Content Va Na (% by volume) (% by Volume) () 5 67.3 6.68 10 74.1 7.57 15 80.0 10 20 82.4 12
[0127] The particle diameter distributions in the particle-dispersed composite materials were each calculated from the values of Va and Na shown in Table 10, the number-based median particle diameter D.sub.50, maximum diameter D.sub.max, minimum diameter D.sub.min, and geometric standard deviation ?.sub.g in the particle diameter distribution of particles in an unagglomerated state and the content of the particles in the particle-dispersed composite material. The resultant particle diameter distributions are shown as calculated values in
[0128] Furthermore, the above four types of polyvinyl chloride resin compositions were measured in terms of particle diameter distribution in their actual composition using an optical microscope. The measured particle diameter distributions are shown as measured values in
[0129] As shown in
REFERENCE SIGNS LIST
[0130] 1 . . . unit cell [0131] 10 . . . cell combination [0132] 10a . . . layer [0133] 20 . . . agglomerate [0134] 21 . . . agglomerate model