Method for predicting whether a columnar honeycomb formed body meeting predetermined design specifications can be obtained after firing
A non-destructive method for predicting the strength of fired honeycomb structures by analyzing statistical quantities on unfired structures addresses the inefficiencies and inaccuracies of existing methods, ensuring quality and reducing waste by identifying unsuitable products early.
Patent Information
- Application Number
- JP2024198433
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-11-13
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2042-02-09
AI Technical Summary
Existing methods for measuring the isostatic fracture strength of columnar honeycomb structures are time-consuming and potentially damaging, and existing predictive methods lack accuracy and clarity.
A non-destructive method for identifying statistical quantities on the bottom surfaces of unfired honeycomb structures that correlate with the strength of the fired structures, involving parameter measurement and correlation analysis to predict whether the fired structures meet design specifications.
Enables non-destructive, efficient prediction of the strength and quality of fired honeycomb structures, reducing waste by identifying unsuitable products before firing and optimizing parameter selection for specific designs.
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Abstract
Description
[Technical Field]
[0001] In one embodiment, the present invention relates to a method for searching for a statistical quantity correlated with the strength of a fired columnar honeycomb formed body, and in another embodiment, the present invention relates to a method for predicting whether a fired columnar honeycomb formed body meeting predetermined design specifications can be obtained. [Background technology]
[0002] In various fields, such as automobiles, chemicals, electricity, and steel, ceramic columnar honeycomb structures with excellent heat resistance and corrosion resistance are used as catalyst carriers or filters for environmental protection, recovery of specific materials, etc. The columnar honeycomb structure has an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and defining a plurality of cells extending from the first bottom surface to the second bottom surface. In general, columnar honeycomb structures are manufactured by mixing and kneading ceramic raw material powder, a dispersion medium, a binder, a pore-forming agent, etc. to prepare a clay, which is then molded into a predetermined shape to form a columnar honeycomb molded body, which is then fired.
[0003] Pillared honeycomb structures require sufficient mechanical strength to withstand impact and thermal loads. In particular, pillared honeycomb structures used as vehicle filters or catalyst supports must have sufficient mechanical strength to be placed into metal housings during a process called "canning."
[0004] One measure of the mechanical strength of a columnar honeycomb structure is its isostatic fracture strength. To measure the isostatic fracture strength of a columnar honeycomb structure, the columnar honeycomb structure is submerged in water in a pressure vessel, and a test is conducted in which the water pressure is gradually increased to apply isotropic pressure to the columnar honeycomb structure. The gradual increase in water pressure in the pressure vessel eventually causes fractures in the partition walls and outer peripheral side walls of the columnar honeycomb structure. The pressure value (fracture strength) at which fracture occurs is the isostatic fracture strength.
[0005] However, when measuring isostatic fracture strength, it is time-consuming because a test specimen must be placed in a pressure vessel and pressure must be applied. Furthermore, measuring the isostatic fracture strength can cause damage to the columnar honeycomb structure. Therefore, it is unrealistic to directly measure the isostatic fracture strength for quality inspection of columnar honeycomb structures. For these reasons, methods for easily inspecting the strength of columnar honeycomb structures have been proposed.
[0006] For example, Japanese Patent Application Laid-Open No. 2017-96879 (Patent Document 1) and Japanese Patent Application Laid-Open No. 2001-41867 (Patent Document 2) propose a simple breaking strength testing method that uses an elastic body and can shorten the measurement time.
[0007] JP 2019-512079 A (Patent Document 3) discloses a non-contact method for characterizing the isostatic fracture strength of a ceramic article having a web, the method including the steps of recording a digital image of the web, forming a 2D representation of the ceramic article based on the digital image, simulating a selected amount of isostatic pressure applied to the 2D representation to identify a maximum stress value within the 2D representation of the web, and identifying the isostatic fracture strength of the ceramic article using the maximum stress value.
[0008] Furthermore, although this invention is not intended to inspect the strength of a columnar honeycomb structure, Patent Publication No. 2015-161543 (Patent Document 4) proposes using an image analysis device to measure the size of the inscribed circle inscribed in the partition wall for only a specified portion of cells, in order to inspect cell deformation defects in a ceramic honeycomb structure in a short period of time.
[0009] Patent Publication No. 2021-139856 (Patent Document 5) discloses a method for inspecting a columnar honeycomb formed body before or after firing that can be performed non-destructively and can be used as an alternative to strength testing, based on the finding that the number of cells with abnormally sized openings among the multiple cells contained in a columnar ceramic formed body before or after firing shows a significant correlation with the strength of the columnar honeycomb formed body after firing. [Prior art documents] [Patent documents]
[0010] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-96879 [Patent Document 2] Japanese Patent Application Laid-Open No. 2001-41867 [Patent Document 3] Special Publication No. 2019-512079 [Patent Document 4] Japanese Patent Application Laid-Open No. 2015-161543 [Patent Document 5] Patent Publication No. 2021-139856 Summary of the Invention [Problem to be solved by the invention]
[0011] Although the test methods described in Patent Documents 1 and 2 do not result in destruction, they still require a large amount of work and a long inspection time because they actually apply pressure to the columnar honeycomb structure to inspect its strength. Furthermore, there is a risk of damaging the product. Patent Document 3 discloses a method for predicting isostatic fracture strength without contact, but this requires complex simulations, and the accuracy of the prediction is unclear.
[0012] In Patent Document 4, an image analyzer is used to inspect the presence or absence of deformation defects in some of the cells of a columnar honeycomb structure, and the percentage of cells having cell deformation defects among the measured cells is calculated. However, it is unclear what relationship the deformation defects in some of the cells have with the strength of the columnar honeycomb structure.
[0013] In Patent Document 5, a process is carried out in which the opening sizes of multiple cells of a columnar honeycomb formed body before firing are measured, and based on the measurement results, abnormal cells having opening sizes that deviate from a predetermined tolerance range are identified from the multiple cells, and the number of abnormal cells is counted. However, the inspection method described in Patent Document 5 requires setting criteria for determining whether each individual cell is abnormal, and it is possible that the inspection of a columnar honeycomb formed body can be carried out by methods other than the method of individually determining the presence or absence of abnormal cells. Furthermore, depending on the design specifications of the columnar honeycomb formed body, such as size, shape, cell structure, and material, it is possible that a better inspection method than the inspection method described in Patent Document 5 will be discovered.
[0014] The present invention has been made in view of the above circumstances, and an object of the present invention is to provide, in one embodiment, a method for searching for statistical quantities of a columnar honeycomb formed body before firing that can be measured non-destructively and that correlate with the strength of the columnar honeycomb formed body after firing. Also, an object of the present invention is, in another embodiment, to provide a method for predicting, based on the columnar honeycomb formed body before firing, whether or not a columnar honeycomb formed body of predetermined design specifications will be obtained after firing. [Means for solving the problem]
[0015] [1] A method for searching for a statistical quantity correlated with the strength of a fired columnar honeycomb formed body having predetermined design specifications, the columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of polygonal cells that form flow paths from a first bottom surface to a second bottom surface, the method comprising: A process A of manufacturing a plurality of unfired columnar honeycomb formed bodies for manufacturing fired columnar honeycomb formed bodies having predetermined design specifications; a step B of measuring two or more measurable parameters by observing at least one of the first bottom surface or the second bottom surface of each of the plurality of unfired columnar honeycomb formed bodies produced in the step A for 90% or more of the polygonal cells excluding the partial cells at the outermost periphery, and calculating two or more statistics for each of the measured parameters; a step C of firing each of the plurality of unfired columnar honeycomb formed bodies produced in the step A under predetermined conditions to produce a plurality of fired columnar honeycomb formed bodies; a step D of evaluating the correlation between two or more statistical quantities calculated for each parameter in the step B and the strength of the plurality of fired columnar honeycomb formed bodies produced in the step C; A step E of determining, based on the result of the step D, a statistical quantity having the highest correlation with the strength of the columnar honeycomb formed body after firing having predetermined design specifications from the two or more statistical quantities; A method comprising: [2] The method according to [1], wherein the two or more parameters are two or more parameters selected from one or more parameters characterizing the shape or size of the opening portion of each polygonal cell, one or more parameters characterizing the shape or size of the partition portion defining each side of each polygonal cell, and one or more parameters characterizing the shape or size of the partition portion defining each corner of each polygonal cell. [3] the one or more parameters characterizing the shape or size of the opening portion of each polygonal cell include one or more selected from an opening area, an inscribed circle radius, an approximate shorter side of a rectangle, an approximate longer side of a rectangle, rectangularity, circularity, compactness, a contour length, convexity, a ratio of major axis to minor axis, ellipticity, a structure coefficient, a center distance deviation, roundness, a circumscribed circle radius, an approximate longer axis of an ellipse, an approximate shorter axis of an ellipse, a cell direction, and a ratio of major axis to minor axis; the one or more parameters characterizing the shape or size of the partition wall portion defining each side of each polygonal cell include one or more selected from a partition wall curvature, a partition wall thickness, and a partition wall direction; One or more parameters characterizing the shape or size of the partition wall portion defining each corner of each polygonal cell include an area of the partition wall portion defining the corner; [2] The method described in [2]. [4] The method according to any one of [1] to [3], wherein the two or more parameters are ten or more parameters. [5] The method according to any one of [1] to [4], wherein the two or more types of statistics are five or more types of statistics. [6] The method according to any one of [1] to [5], wherein the two or more statistical quantities include two or more selected from the group consisting of an arithmetic mean, a standard deviation, a kurtosis, a skewness, a minimum value, a median value, and a maximum value. [7] The method according to any one of [1] to [6], wherein the strength is an isostatic fracture strength. [8] A method for predicting whether or not a fired columnar honeycomb formed body having predetermined design specifications can be obtained when fired under predetermined firing conditions, based on measurement results of a columnar honeycomb formed body before firing, the columnar honeycomb formed body having a columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of polygonal cells that form flow paths from a first bottom surface to a second bottom surface, a step 1 of measuring one or more parameters selected from a structural coefficient characterizing the shape of an opening portion, a cell direction and a long side / short side ratio, and an area of a partition wall portion defining a corner portion for 90% or more of polygonal cells excluding partial cells at the outermost periphery by observing at least one of a first bottom surface or a second bottom surface of the columnar honeycomb formed body before firing; If the parameter measured in step 1 is a structure coefficient, one or more statistical quantities selected from the arithmetic mean and the median; If the parameter measured in step 1 is a cell direction, one or more statistics selected from standard deviation and kurtosis; When the parameter measured in step 1 is the long side / short side ratio, one or more statistical quantities selected from the arithmetic mean, the standard deviation, and the maximum value; When the parameter measured in step 1 is the area of the partition portion defining the corner, one or more statistical quantities selected from kurtosis and skewness; Step 2: calculating based on the result of step 1; Step 3: comparing one or more types of statistical quantities calculated in step 2 with a judgment criterion that is predetermined according to the predetermined design specifications and the types of statistical quantities; A method comprising: [9] The method described in [8] includes a step 4 of estimating the strength of a columnar honeycomb formed body after firing the columnar honeycomb formed body before firing under the specified firing conditions based on the one or more statistical quantities calculated in step 2, utilizing a correlation between the one or more statistical quantities for the columnar honeycomb formed body before firing, which has been previously determined for a plurality of other columnar honeycomb formed bodies having the same design specifications as the columnar honeycomb formed body, and the strength of the other plurality of columnar honeycomb formed bodies after firing under the specified firing conditions.
[10] The method according to [9], wherein the strength is the isostatic fracture strength. [Effects of the Invention]
[0016] According to one embodiment of the present invention, there is provided a method for searching for statistical quantities of a columnar honeycomb formed body before firing that can be measured non-destructively and that correlate with the strength of the columnar honeycomb formed body after firing. The searching method according to this embodiment targets two or more types of parameters (feature quantities) that can be measured by observing at least one of the first bottom surface or the second bottom surface. Because bottom surface observation can be performed non-destructively and easily, the searching method according to this embodiment is highly convenient.
[0017] Furthermore, although parameters highly correlated with post-fired strength may vary depending on the design specifications of the columnar honeycomb formed body, such as size, shape, cell structure, material, etc., by employing the search method according to this embodiment, it is possible to discover optimal parameters and statistics according to the design specifications of the columnar honeycomb formed body. Therefore, the search method according to this embodiment makes it possible to discover the optimal non-destructive testing method according to the type and product number of the honeycomb formed body.
[0018] By searching for statistics of the pre-fired columnar honeycomb formed body that are correlated with the strength of the fired columnar honeycomb formed body, it becomes possible to provide a method for predicting whether or not a fired columnar honeycomb formed body that meets predetermined design specifications will be obtained, based on the pre-fired columnar honeycomb formed body. This prediction method can also be used for strength estimation and quality inspection of the fired columnar honeycomb formed body.
[0019] By applying this prediction method to a columnar honeycomb formed body before firing, formed bodies that are predicted not to produce a columnar honeycomb formed body according to the predetermined design specifications after firing can be excluded from firing as rejected products. This has the advantage of not wasting the cost and time required for firing. If rejected products can be selected before firing, they can be easily reused as forming raw materials, which is preferable. [Brief explanation of the drawings]
[0020] [Figure 1] FIG. 2 is a perspective view schematically showing a wall-through type pillar-shaped honeycomb formed body. [Figure 2] 1 is a schematic cross-sectional view of a wall-through type pillar-shaped honeycomb formed body observed from a direction perpendicular to the cell extension direction. FIG. [Figure 3] FIG. 2 is a perspective view schematically showing a wall-flow type columnar honeycomb formed body. [Figure 4] 1 is a schematic cross-sectional view of a wall-flow type columnar honeycomb formed body observed from a direction perpendicular to the cell extension direction. FIG. [Figure 5] FIG. 2 is a schematic diagram showing an example of the opening shape of a cell. [Figure 6] 10 is a schematic diagram showing linear partition wall portions that define linear portions of polygonal cells and partition wall portions that define corner portions of polygonal cells. FIG. [Figure 7] FIG. 10 is a schematic diagram illustrating an example of a partition wall in which bending has occurred. [Figure 8] FIG. 1 shows an example of a functional block diagram of an image analysis device. [Figure 9]1 shows the results of plotting the standard deviation of the long side / short side ratio of the honeycomb formed body according to Test Example 1 on a two-dimensional coordinate system with the horizontal axis representing the standard deviation and the vertical axis representing the isostatic fracture strength. [Figure 10] 1 shows the results of plotting the honeycomb formed body according to Test Example 2 on a two-dimensional coordinate system with the standard deviation of the approximate rectangular short side on the horizontal axis and the isostatic fracture strength on the vertical axis. DETAILED DESCRIPTION OF THE INVENTION
[0021] Next, embodiments of the present invention will be described in detail with reference to the drawings. It should be understood that the present invention is not limited to the following embodiments, and that appropriate design changes and improvements may be made based on the ordinary knowledge of those skilled in the art without departing from the spirit of the present invention.
[0022] <1. Columnar honeycomb formed body> The statistical quantity search method according to the present invention can observe a columnar honeycomb formed body before firing. Generally, the columnar honeycomb formed body has a columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of cells that form a flow path from the first bottom surface to the second bottom surface.
[0023] 1 and 2 respectively illustrate a schematic perspective view and a cross-sectional view of a columnar honeycomb formed body 100 that can be used as a wall-through type automotive exhaust gas filter and / or catalyst carrier. This columnar honeycomb formed body 100 has a columnar honeycomb structure portion that includes an outer peripheral side wall 102 and partition walls 112 that are disposed on the inner peripheral side of the outer peripheral side wall 102 and that separate a plurality of cells 108 that form a fluid flow path from a first bottom surface 104 to a second bottom surface 106. In this columnar honeycomb formed body 100, both ends of each cell 108 are open, and exhaust gas that flows into one cell 108 from the first bottom surface 104 is purified while passing through the cell and flows out from the second bottom surface 106.
[0024] 3 and 4 are schematic perspective and cross-sectional views, respectively, of a columnar honeycomb formed body 200 applicable as a wall-flow type automobile exhaust gas filter and / or catalyst carrier. This columnar honeycomb formed body 200 has a columnar honeycomb structure portion provided with an outer peripheral side wall 202 and partition walls 212 disposed on the inner peripheral side of the outer peripheral side wall 202 and defining a plurality of cells 208a, 208b that form a fluid flow path from a first bottom surface 204 to a second bottom surface 206.
[0025] In the columnar honeycomb formed body 200, the multiple cells 208a, 208b can be classified into multiple first cells 208a that are arranged inside the outer peripheral side wall 202, extend from the first bottom surface 204 to the second bottom surface 206, have plugging portions 209 on the second bottom surface 206, and are arranged inside the outer peripheral side wall 202, extend from the first bottom surface 204 to the second bottom surface 206, have plugging portions 209 on the first bottom surface 204, and are open on the second bottom surface 206. In this columnar honeycomb formed body 200, the first cells 208a and the second cells 208b are arranged alternately adjacent to each other with the partition walls 212 sandwiched therebetween.
[0026] When exhaust gas containing particulate matter (PM) such as soot is supplied to the first bottom surface 204 on the upstream side of the fired columnar honeycomb formed body 200, the exhaust gas is introduced into the first cells 208a and travels downstream within the first cells 208a. Because the first cells 208a have plugging portions 209 on the second bottom surface 206 on the downstream side, the exhaust gas passes through the porous partition walls 212 that separate the first cells 208a and the second cells 208b and flows into the second cells 208b. Since the particulate matter (PM) cannot pass through the partition walls 212, it is captured and deposited within the first cells 208a. After the particulate matter (PM) is removed, the clean exhaust gas that has flowed into the second cells 208b travels downstream within the second cells 208b and flows out from the second bottom surface 206 on the downstream side.
[0027] There are no restrictions on the bottom shape of the pillar-shaped honeycomb formed bodies 100, 200 after firing, and they may be round shapes such as a circle, an ellipse, a racetrack shape, and an oval shape, polygonal shapes such as a triangle and a square, and other irregular shapes. The pillar-shaped honeycomb formed bodies 100, 200 shown in the figures have a circular bottom shape and are cylindrical overall.
[0028] There are no particular restrictions on the height of the columnar honeycomb formed body (the length from the first bottom surface to the second bottom surface) and it may be set appropriately depending on the application and required performance. There are also no particular restrictions on the relationship between the height of the columnar honeycomb formed body and the maximum diameter of each bottom surface (referring to the maximum length of the diameters passing through the center of gravity of each bottom surface of the columnar honeycomb formed body). Therefore, the height of the columnar honeycomb formed body may be longer than the maximum diameter of each bottom surface, or the height of the columnar honeycomb formed body may be shorter than the maximum diameter of each bottom surface.
[0029] In the statistical quantity search method according to the present invention, a columnar honeycomb formed body having a plurality of cells, each of which has a polygonal opening shape in a cross section perpendicular to the cell flow direction, is targeted, from the viewpoint of making it easier to find parameters highly correlated with strength. There are no particular limitations on the cell opening shape as long as it is polygonal, but a square, hexagon, octagon, or a combination thereof is preferred. Of these, square and hexagonal shapes are preferred. By using such a cell opening shape, pressure loss is reduced when a fluid is passed through the columnar honeycomb formed body, resulting in excellent catalyst purification performance.
[0030] Here, the term "polygonal" refers to the cell opening shape, not necessarily being a strict mathematical polygon, but rather referring to the cell opening shape in the design specifications. A polygonal cell is also considered polygonal even if its corners (near the vertices) are curved, e.g., rounded. Referring to FIG. 5 , each side of a polygonal cell 500 has a straight line portion 503 and curved corners 502 at both ends of the straight line portion 503, e.g., rounded. In this case, the ratio (L2 / L1) of the length (L2) of one curved corner 502 along one side to the length (L1) of one side of the polygonal cell 500 assuming the curved corner 502 does not exist can be, for example, 0.005 to 0.020. From the viewpoint of emphasizing suppression of cell deformation and maintaining low pressure loss as an exhaust gas filter, L2 / L1 is preferably set to 0.005 to 0.008, and from the viewpoint of emphasizing strength, it is preferably set to 0.011 to 0.017. Note that L1 and L2 here refer to values in the design specifications of the columnar honeycomb formed body after firing.
[0031] The columnar honeycomb formed body may have cells whose cross-sectional shape is not polygonal, but from the viewpoint of making it easier to find parameters that are highly correlated with strength, it is preferable that the proportion of cells whose opening shape is polygonal among the total number of cells (including partial cells) possessed by the columnar honeycomb formed body is 90% or more, more preferably 95% or more, and even more preferably 98% or more.
[0032] "Partial cells" refer to cells located at the outermost periphery, at least a portion of which is partitioned and formed by the outer peripheral side wall. Because a partial cell has a portion of its outline formed by the outer peripheral side wall, it has a different shape from cells other than partial cells (hereinafter also referred to as "normal cells") and has a smaller area than normal cells. Partial cells are provided as appropriate in consideration of the balance between the outer peripheral side wall of the columnar honeycomb formed body and the cell arrangement, and are not defects but cells that exist due to design specifications.
[0033] There is no particular limitation on the cell density (the number of cells per unit cross-sectional area) of the fired columnar honeycomb formed body, and it can be, for example, 6 to 2000 cells / square inch (0.9 to 311 cells / cm). 2 ), more preferably 50 to 1000 cells / square inch (7.8 to 155 cells / cm 2 ), and particularly preferably 100 to 600 cells / square inch (15.5 to 92.0 cells / cm 2 Here, the cell density is calculated by dividing the number of cells in the columnar honeycomb formed bodies 100, 200 by one of the bottom areas of the columnar honeycomb formed bodies 100, 200 excluding the outer peripheral side wall.
[0034] In the fired columnar honeycomb formed body, the partition walls can be porous. The porosity of the partition walls can be adjusted appropriately depending on the application, but from the viewpoint of keeping fluid pressure loss low, it is preferably 40% or more, more preferably 50% or more, and even more preferably 60% or more. Furthermore, from the viewpoint of ensuring the strength of the fired columnar honeycomb formed body, the porosity of the partition walls is preferably 80% or less, more preferably 75% or less, and even more preferably 70% or less. The porosity is measured by mercury intrusion porosimetry using a mercury porosimeter in accordance with JIS R1655:2003.
[0035] The thickness of the partition walls in the fired columnar honeycomb formed body is preferably 150 μm or more, more preferably 170 μm or more, and even more preferably 190 μm or more, from the viewpoints of ensuring strength and increasing collection efficiency in filter applications, and is preferably 260 μm or less, more preferably 240 μm or less, and even more preferably 220 μm or less, from the viewpoints of suppressing pressure loss.
[0036] When the fired columnar honeycomb molded body 100, 200 is used as a catalyst carrier, the surfaces of the partition walls 112, 212 can be coated with a catalyst according to the purpose. Examples of catalysts include, but are not limited to, oxidation catalysts (DOCs) for oxidatively burning hydrocarbons (HC) and carbon monoxide (CO) to increase the exhaust gas temperature, PM combustion catalysts for assisting the combustion of PM such as soot, SCR catalysts and NSR catalysts for removing nitrogen oxides (NOx), and three-way catalysts capable of simultaneously removing hydrocarbons (HC), carbon monoxide (CO), and nitrogen oxides (NOx). The catalyst may appropriately contain, for example, precious metals (Pt, Pd, Rh, etc.), alkali metals (Li, Na, K, Cs, etc.), alkaline earth metals (Mg, Ca, Ba, Sr, etc.), rare earths (Ce, Sm, Gd, Nd, Y, La, Pr, etc.), transition metals (Mn, Fe, Co, Ni, Cu, Zn, Sc, Ti, Zr, V, Cr, etc.), etc.
[0037] <2. Manufacturing method of columnar honeycomb formed body> The columnar honeycomb molded body can be produced by known production methods, which are described below as examples. First, a raw material composition containing ceramic raw materials, a dispersion medium, a pore-forming agent, and a binder is kneaded to produce a clay, and the clay is then extruded and dried to produce a columnar honeycomb molded body before firing. Additives such as dispersants can be blended into the raw material composition as needed. During extrusion molding, a die having the desired overall shape, cell shape, partition wall thickness, cell density, etc. can be used.
[0038] In the drying step, conventionally known drying methods such as hot air drying, microwave drying, dielectric drying, reduced pressure drying, vacuum drying, freeze drying, etc. Among them, a drying method that combines hot air drying with microwave drying or dielectric drying is preferred because it can dry the entire formed body quickly and uniformly. The plugging portions can be formed by forming plugging portions at predetermined positions on both bottom surfaces of the dried honeycomb formed body and then drying the plugging portions.
[0039] The ceramic raw materials are raw materials for the portion that remains after firing of metal oxides, metals, etc. and constitutes the skeleton of the pillar-shaped honeycomb formed body (pillar-shaped honeycomb structure) after firing as ceramics. The ceramic raw materials can be provided in the form of, for example, powder. Examples of the ceramic raw materials include raw materials for obtaining ceramics such as cordierite, mullite, zircon, aluminum titanate, silicon carbide, silicon nitride, zirconia, spinel, indialite, sapphirine, corundum, and titania. Specific examples include, but are not limited to, silica, talc, alumina, kaolin, serpentine, pyroferrite, brucite, boehmite, mullite, magnesite, and aluminum hydroxide. The ceramic raw materials may be used singly or in combination of two or more.
[0040] In the case of filter applications such as DPF and GPF, cordierite can be suitably used as the ceramic. In this case, a cordierite-forming raw material can be used as the ceramic raw material. The cordierite-forming raw material is a raw material that becomes cordierite when fired. The cordierite-forming raw material preferably has a chemical composition of 30 to 45 mass% alumina (Al2O3) (including aluminum hydroxide converted to alumina), 11 to 17 mass% magnesia (MgO), and 42 to 57 mass% silica (SiO2).
[0041] Examples of the dispersion medium include water and a mixed solvent of water and an organic solvent such as alcohol, with water being particularly preferred.
[0042] The pore-forming agent is not particularly limited as long as it forms pores after firing, and examples thereof include wheat flour, starch, foamed resin, water-absorbent resin, silica gel, carbon (e.g., graphite, coke), ceramic balloons, polyethylene, polystyrene, polypropylene, nylon, polyester, acrylic, and phenol. One type of pore-forming agent may be used alone, or two or more types may be used in combination. From the viewpoint of increasing the porosity of the honeycomb formed body after firing, the content of the pore-forming agent is preferably 0.5 parts by mass or more, more preferably 2 parts by mass or more, and even more preferably 3 parts by mass or more, relative to 100 parts by mass of the ceramic raw material. From the viewpoint of ensuring the strength of the honeycomb formed body after firing, the content of the pore-forming agent is preferably 10 parts by mass or less, more preferably 7 parts by mass or less, and even more preferably 4 parts by mass or less, relative to 100 parts by mass of the ceramic raw material.
[0043] Examples of binders include organic binders such as methyl cellulose, hydroxypropyl methyl cellulose, hydroxyethyl cellulose, carboxymethyl cellulose, and polyvinyl alcohol. It is particularly preferable to use a combination of methyl cellulose and hydroxypropyl methyl cellulose. Furthermore, from the viewpoint of increasing the strength of the honeycomb formed body before firing, the binder content is preferably 4 parts by mass or more, more preferably 5 parts by mass or more, and even more preferably 6 parts by mass or more, per 100 parts by mass of the ceramic raw materials. From the viewpoint of suppressing cracks due to abnormal heat generation during the firing process, the binder content is preferably 9 parts by mass or less, more preferably 8 parts by mass or less, and even more preferably 7 parts by mass or less, per 100 parts by mass of the ceramic raw materials. One type of binder may be used alone, or two or more types may be used in combination.
[0044] The dispersant may be ethylene glycol, dextrin, fatty acid soap, polyether polyol, etc. One type of dispersant may be used alone, or two or more types may be used in combination. The content of the dispersant is preferably 0 to 2 parts by mass per 100 parts by mass of the ceramic raw material.
[0045] The columnar honeycomb formed body may have both ends of all cells open, as in the columnar honeycomb formed body 100 shown in Figures 1 and 2. The columnar honeycomb formed body may also have a cell structure in which one end of the cells is alternately plugged, as in the columnar honeycomb formed body 200 shown in Figures 3 and 4. The method for plugging the bottom surface of the columnar honeycomb formed body is not particularly limited, and known methods can be used.
[0046] The material of the plugging portions is not particularly limited, but is preferably ceramic from the viewpoint of strength and heat resistance. The ceramic preferably contains at least one selected from the group consisting of cordierite, mullite, zircon, aluminum titanate, silicon carbide, silicon nitride, zirconia, spinel, indialite, sapphirine, corundum, and titania. The plugging portions are preferably formed from a material containing a total of 50 mass% or more of these ceramics, and more preferably from a material containing 80 mass% or more. It is even more preferable that the plugging portions have the same material composition as the main body of the honeycomb formed body, since this allows the expansion coefficients during firing to be the same, leading to improved durability.
[0047] A method for forming plugging portions will be described by way of example. Plugging slurry is stored in a storage container. Next, a mask having openings at locations corresponding to the cells where plugging portions are to be formed is attached to one of the bottom surfaces. The bottom surface with the mask attached is immersed in the storage container, and the plugging slurry is filled into the openings to form plugging portions. Plugging portions can also be formed on the other bottom surface in the same manner.
[0048] A degreasing process and a firing process are performed on the pre-fired columnar honeycomb formed body to manufacture a fired columnar honeycomb formed body (columnar honeycomb structure). The conditions for the degreasing process and the firing process may be any known conditions depending on the material composition of the honeycomb formed body, and no particular explanation is required, but specific examples of conditions are given below.
[0049] The degreasing step will now be described. The combustion temperature of the binder is about 200°C, and the combustion temperature of the pore-forming agent is about 300 to 1000°C. Therefore, the degreasing step can be carried out by heating the honeycomb formed body to a temperature in the range of about 200 to 1000°C. The heating time is not particularly limited, but is usually about 10 to 100 hours. The honeycomb formed body after the degreasing step is called a calcined body.
[0050] The firing step may vary depending on the material composition of the honeycomb formed body, but may be carried out, for example, by heating the calcined body to 1350 to 1600° C. in an air atmosphere and holding the body for 3 to 10 hours.
[0051] 3. Methods for searching for statistics that are correlated with strength According to one embodiment of the present invention, A method for searching for a statistical quantity correlated with the strength of a fired columnar honeycomb formed body having predetermined design specifications, the columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of polygonal cells that form flow paths from a first bottom surface to a second bottom surface, the method comprising: A process A of manufacturing a plurality of unfired columnar honeycomb formed bodies for manufacturing fired columnar honeycomb formed bodies having predetermined design specifications; a step B of measuring two or more measurable parameters by observing at least one of the first bottom surface or the second bottom surface of each of the plurality of unfired columnar honeycomb formed bodies produced in the step A for 90% or more of the polygonal cells excluding the partial cells at the outermost periphery, and calculating two or more statistics for each of the measured parameters; a step C of firing each of the plurality of unfired columnar honeycomb formed bodies produced in the step A under predetermined conditions to produce a plurality of fired columnar honeycomb formed bodies; a step D of evaluating the correlation between two or more statistical quantities calculated for each parameter in the step B and the strength of the plurality of fired columnar honeycomb formed bodies produced in the step C; A step E of determining, based on the result of the step D, a statistical quantity having the highest correlation with the strength of the columnar honeycomb formed body after firing having predetermined design specifications from the two or more statistical quantities; A method is provided that includes:
[0052] According to the search method of this embodiment, the statistical quantity that has the highest correlation with the strength of a fired columnar honeycomb formed body of a predetermined design specification is determined from statistical quantities related to two or more parameters that can be measured by observing at least one of the first bottom surface or the second bottom surface of the columnar honeycomb formed body before firing. Because bottom surface observation can be performed non-destructively and easily, the search method of this embodiment is highly convenient. Furthermore, although the parameters that are highly correlated with the strength after firing may vary depending on the design specifications of the columnar honeycomb formed body, such as size, shape, cell structure, and material, by employing the search method of this embodiment, it is possible to discover the optimal parameters and statistical quantities according to the type and product number of the columnar honeycomb formed body.
[0053] (Process A) In step A, a plurality of pre-fired columnar honeycomb formed bodies are produced in order to produce a post-fired columnar honeycomb formed body of predetermined design specifications. The method for producing the pre-fired columnar honeycomb formed bodies is as described above, and the target dimensions of the pre-fired columnar honeycomb formed bodies are usually determined taking into account shrinkage during firing. It is desirable to determine the die shape, extrusion molding conditions, drying conditions, etc. depending on the raw material composition so that the pre-fired columnar honeycomb formed bodies to be produced approach the target dimensions.
[0054] (Process B) In step B, for each of the multiple unfired columnar honeycomb molded bodies produced in step A, two or more parameters that can be measured by observing at least one of the first bottom surface or the second bottom surface are measured for 90% or more, preferably 95% or more, and more preferably all of the polygonal cells excluding the partial cells at the outermost periphery (hereinafter also referred to as "normal cells"), and two or more statistical quantities are calculated for each measured parameter. The reason for measuring two or more parameters for the polygonal cells excluding the partial cells at the outermost periphery is to obtain highly reliable statistical quantities. Partial cells are excluded from the parameter measurement because they are few in number and their correlation with strength is negligible.
[0055] In order to obtain highly reliable statistics, the number of pre-fired columnar honeycomb formed bodies to be measured in step B is preferably 10 or more, more preferably 20 or more, and even more preferably 50 or more. On the other hand, if the number of pre-fired columnar honeycomb formed bodies to be measured is too large, the workload increases. Furthermore, as the number of data increases, the statistics also converge. For this reason, the number of pre-fired columnar honeycomb formed bodies to be measured in step B is preferably 500 or less, more preferably 300 or less, and even more preferably 100 or less.
[0056] Among the parameters that can be measured by observing at least one of the first bottom surface or the second bottom surface, it is preferable to measure parameters that are predicted to have a high correlation with the strength of the pillar-shaped honeycomb formed body after firing. Therefore, in a preferred embodiment, the measurement targets are two or more parameters selected from one or more parameters that characterize the shape or size of the opening portion of each polygonal cell, one or more parameters that characterize the shape or size of the partition wall portions that define each side of each polygonal cell, and one or more parameters that characterize the shape or size of the partition wall portions that define each corner of each polygonal cell.
[0057] The one or more parameters characterizing the shape or size of the opening portion of each polygonal cell are not limited to, but preferably include one or more selected from the opening area, inscribed circle radius, approximate rectangular short side, approximate rectangular long side, rectangularity, circularity, compactness, contour length, convexity, major axis / minor axis ratio, ellipticity, structure coefficient, center distance deviation, roundness, circumscribed circle radius, approximate ellipse major axis, approximate ellipse minor axis, cell direction, and major axis / minor axis ratio, and more preferably include at least the structure coefficient, cell direction, and major axis / minor axis ratio.
[0058] The opening area refers to the area of one cell opening. The inscribed circle radius refers to the radius of the largest circle inscribed in one cell opening. The short side of the approximate rectangle means the short side of the smallest rectangle that circumscribes the opening of one cell, taking into account rotation. The approximate long side of a rectangle refers to the long side of the smallest rectangle that circumscribes the opening of one cell, taking into account rotation. Rectangularity refers to the area of the symmetric difference between the area of a cell opening and the area of the approximate rectangle when that cell opening is approximated by a rectangle. An approximate rectangle is a rectangle that has the same center of gravity, the same second moment, and the same area as that of the cell opening. The second moment is the same as the second moment used to calculate an approximate ellipse, as described below. Circularity is the ratio of the area of one cell opening to the area of an approximation circle of the same area and with the same center of gravity as the opening. Either value can be used as the denominator in the calculation. Compactness is the ratio of the area of one cell opening to the contour length of that cell opening. Either ratio can be used as the denominator in the calculation. The contour length refers to the contour length of one cell opening. Convexity is the ratio of the area of a cell opening to the area of the approximate convex hull when that cell opening is approximated by a convex hull. The approximate convex hull is defined as the smallest convex set that includes that cell opening. The ratio can be calculated using either denominator. The major axis to minor axis ratio refers to the ratio of the major axis to the minor axis of an ellipse when approximating the opening of a cell. Either ratio can be used as the denominator in the calculation. For example, the equation of the approximating ellipse can be found by determining the coordinate values of each pixel included in the area that makes up the opening of a cell, finding the centroid coordinates from the image moment of that area, and then calculating the second moment from the centroid coordinates. The degree of ellipticity refers to the ratio of the area of one cell opening to the area of an ellipse that approximates the opening of that cell. Either value can be used as the denominator in the calculation. The structural coefficient is calculated using the formula: (structural coefficient) = (ratio of major axis to minor axis) x (degree of ellipticity) - 1. The center distance deviation refers to the standard deviation of the length of multiple lines drawn connecting the outline of one cell opening to the center of gravity. It is preferable to draw at least 360 lines at equal angular intervals. Roundness is the ratio of the standard deviation of the length of the lines drawn from the outline of one cell opening to the center of gravity (center distance deviation) to the average length of the lines. Either value can be used as the denominator in the calculation. The circumscribing circle radius refers to the radius of the smallest circle that circumscribes the opening of one cell. The approximate major axis of an ellipse is the major axis of an ellipse when the opening of one cell is approximated by an ellipse. The approximate minor axis of an ellipse is the minor axis of an approximate ellipse when the opening of one cell is approximated by an ellipse. The cell direction is the degree of inclination of the ellipse when the opening of one cell is approximated by an ellipse. The degree of inclination can be expressed in radians (rad) or degrees (°). The long side to short side ratio refers to the ratio of the long side to the short side of the smallest rectangle that circumscribes the opening of one cell, taking into account rotation. Either ratio can be used as the denominator in the calculation.
[0059] The one or more parameters characterizing the shape or size of the partition wall portion defining each side of each polygonal cell are not limited to, but preferably include one or more selected from partition wall curvature, partition wall thickness, and partition wall direction, and more preferably include two or more selected from these.
[0060] The partition curvature refers to the length of the short side of the smallest rectangle that can enclose the center line extending in the longitudinal direction of the partition portion that defines the linear portion of the polygonal cell in design. Because the linear partition portion 504 that defines the linear portion 503 of the polygonal cell 500 in design extends linearly in the longitudinal direction, the length of the short side of the smallest rectangle 507 that encloses the center line 505 is equal to the thickness of the center line 505 extending in the longitudinal direction ( FIG. 6 ). In contrast, if the linear partition portion 504 is bent during the manufacturing process, the center line 505 also curves in accordance with the degree of bending, and the length of the short side of the smallest rectangle 507 that can enclose the center line 505 becomes longer ( FIG. 7 ). The thickness of the center line 505 can be set appropriately, for example, to 1 to 3 pixels, and preferably 1 pixel. Furthermore, the statistics of the partition bending may be calculated using linear partition portions 504 that are parallel to each other in design as a unit, or the statistics may be calculated collectively for the linear partition portions 504 of all the partitions. The partition wall thickness means the radius of the largest circle 508 inscribed in the linear partition wall portion 504 that defines the linear portion 503 of the polygonal cell 500 (FIG. 6). The partition wall thickness may be calculated as the diameter of the largest circle 508. Furthermore, the partition wall thickness statistics may be calculated for each linear partition wall portion 504 that is parallel to one another in design, or may be calculated collectively for the linear partition wall portions 504 of all partition walls. The partition direction refers to the degree of inclination of the direction in which the longitudinal directions of the linear partition portions 504, which are parallel to each other in design, extend.
[0061] The one or more parameters characterizing the shape or size of the partition wall portion defining each corner of each polygonal cell preferably include, but are not limited to, the area of the partition wall portion defining the corner. Partition wall portion 506 defining corner 502 of polygonal cell 500 refers to the portion of the partition wall surrounded by linear partition wall portion 504 defining linear portion 503 in the design of polygonal cell 500 (FIG. 6).
[0062] The above parameters and statistics can be automatically measured and calculated from images generated by capturing the first and / or second bottom surfaces with a camera using an image processing library, such as HALCON (Ver. 18.11 or later versions) from MVTec.
[0063] In order to obtain highly reliable statistics, it is preferable to observe both the first bottom surface and the second bottom surface. In particular, in the case of a columnar honeycomb formed body having plugging portions, there are cells having plugging portions for which the size of the opening cannot be measured even if only one of the bottom surfaces is imaged, so it is preferable to observe both bottom surfaces.
[0064] The more types of parameters to be measured, the easier it is to discover parameters that have a high correlation with intensity. Therefore, the number of types of parameters to be measured is preferably 10 or more, more preferably 15 or more, and even more preferably 20 or more. On the other hand, there is a limit to the number of types of parameters to be measured, and the more types there are, the more labor required for data processing increases. For this reason, the number of types of parameters to be measured is preferably 30 or less, more preferably 28 or less, and even more preferably 25 or less.
[0065] Many types of statistics can be derived from one parameter. The more types of statistics to be considered, the easier it is to discover combinations of parameters and statistics that have a high correlation with intensity. For this reason, the number of types of statistics calculated for one parameter is preferably two or more, more preferably five or more, and even more preferably seven or more. On the other hand, there is a limit to the number of types of statistics to be measured, and the more types there are, the more labor required for data processing. For this reason, the number of types of statistics calculated for one parameter is preferably 15 or less, more preferably 13 or less, and even more preferably 10 or less.
[0066] The types of statistical quantities include, but are not limited to, representative values such as the arithmetic mean, standard deviation, kurtosis, skewness, minimum value, median value, maximum value, first quartile, third quartile, and range (maximum-minimum). Among these, it is preferable to include two or more types, and more preferably five or more types, selected from the arithmetic mean, standard deviation, kurtosis, skewness, minimum value, median value, and maximum value, which are statistical quantities empirically predicted to have a high correlation with the strength of the columnar honeycomb formed body after firing. In particular, it is preferable to include two or more types selected from the arithmetic mean, standard deviation, minimum value, median value, and maximum value, and more preferably to include all five types.
[0067] When the structural coefficient of polygonal cells is the object of measurement, it is predicted that there is a particularly high correlation with the strength of the columnar honeycomb formed body after firing, so it is preferable to calculate one or more statistical quantities selected from the arithmetic mean and the median, and it is more preferable to calculate both the arithmetic mean and the median.
[0068] When the cell direction of polygonal cells is the object of measurement, it is predicted that there will be a particularly high correlation with the strength of the columnar honeycomb formed body after firing, so it is preferable to calculate one or more statistical quantities selected from standard deviation and kurtosis, and it is more preferable to calculate both standard deviation and kurtosis.
[0069] When the long side to short side ratio of polygonal cells is the object of measurement, it is predicted that there is a particularly high correlation with the strength of the columnar honeycomb molded body after firing, so it is preferable to calculate one or more statistical quantities selected from the arithmetic mean, standard deviation, and maximum value, more preferably to calculate two or more statistical quantities, and even more preferably to calculate all three statistical quantities.
[0070] When the area of the partition wall portion defining the corner of a polygonal cell is the object of measurement, it is predicted that there will be a particularly high correlation with the strength of the columnar honeycomb molded body after firing, so it is preferable to calculate one or more statistical quantities selected from kurtosis and skewness, and it is more preferable to calculate both kurtosis and skewness.
[0071] There are no particular limitations on the method for observing the first or second bottom surface of each columnar honeycomb formed body before firing, but an example is a method of imaging the first or second bottom surface with a camera. It is preferable to perform imaging with a camera from a direction perpendicular to the first or second bottom surface in order to improve inspection accuracy. The camera may be an area camera or a line camera, but an area camera is preferred because of its fast imaging tact time, wide illumination width, and ability to reduce equipment size. From the perspective of improving inspection accuracy, it is preferable to use a camera with high pixel resolution. Specifically, taking into account the general opening area of a cell, the camera preferably has a pixel resolution of 40 μm / pixel or less in both the vertical and horizontal directions, preferably 25 μm / pixel or less, and can be, for example, 1 to 40 μm / pixel.
[0072] The two or more parameters mentioned above are measured in an image generated by capturing an image with a camera. Although the various parameters may be measured by an inspector based on the image, since the number of cells to be inspected is large, it is preferable to perform the measurements automatically using an image analyzer. An example of the measurement procedure using an image analyzer will be described later.
[0073] (Process C) In step C, each of the multiple pre-fired columnar honeycomb formed bodies produced in step A is fired under specified conditions to produce multiple fired columnar honeycomb formed bodies. The firing conditions are set appropriately depending on the design specifications of the columnar honeycomb formed body. In order to properly evaluate the correlation between various statistical quantities measured before firing and the strength of the fired columnar honeycomb formed body, when firing multiple pre-fired columnar honeycomb formed bodies, it is preferable to match the design firing conditions, such as the furnace atmosphere, heat curve, and firing time, in addition to the degreasing conditions before firing. Note that, since the actual firing conditions may inevitably vary due to external disturbances, "matching the design firing conditions" means not intentionally varying the firing conditions.
[0074] (Process D) In step D, the correlation between two or more statistical quantities calculated for each parameter in step B and the strength of the plurality of fired columnar honeycomb molded bodies produced in step C is evaluated. The correlation between the two can be evaluated, for example, by calculating the correlation coefficient. The larger the absolute value of the correlation coefficient, the higher the correlation between the two. If the absolute value of the correlation coefficient is 0.4 or more, it can be said that there is a significant correlation, and the absolute value of the correlation coefficient is preferably 0.5 or more, and more preferably 0.6 or more. In addition to the correlation coefficient, the coefficient of determination, which is the value obtained by squaring the correlation coefficient, can also be used to evaluate the correlation.
[0075] There are various parameters that represent the strength of the columnar honeycomb formed body, and they are not particularly limited, but examples thereof include isostatic fracture strength and compressive strength. Among these, it is preferable to use isostatic fracture strength because it is easy to evaluate whether the formed body can withstand the pressure applied during canning.
[0076] (Process E) In step E, a statistical quantity having the highest correlation with the strength of a fired columnar honeycomb formed body having predetermined design specifications is determined from the two or more statistical quantities based on the results of step D. The statistical quantity having the highest correlation with the strength of a fired columnar honeycomb formed body having predetermined design specifications can be determined, for example, by selecting the statistical quantity having the highest absolute value of the correlation coefficient.
[0077] <4. Method for predicting whether a columnar honeycomb formed body meeting predetermined design specifications can be obtained after firing> Once a statistical quantity that has the highest correlation with the strength of a fired columnar honeycomb formed body of a predetermined design specification is determined, it becomes possible to predict, based on the columnar honeycomb formed body before firing, whether or not a fired columnar honeycomb formed body of a predetermined design specification can be obtained. It is also possible to estimate the strength of the fired columnar honeycomb formed body. Therefore, the statistical quantity can be incorporated as a quality inspection item for the columnar honeycomb formed body before firing.
[0078] Furthermore, according to the research results of the present inventors, there are combinations of parameters and statistics that are highly correlated with the strength of the pillar-shaped honeycomb formed body after firing, regardless of design specifications such as size, shape, cell structure, material, etc. Specifically, the following combinations (1) to (4) are preferred. (1) A combination of a “structure coefficient” and one or more statistical quantities selected from the arithmetic mean and median. (2) A combination of the "cell direction" and one or more statistics selected from standard deviation and kurtosis. (3) A combination of the “length-to-width ratio” and one or more statistical quantities selected from the arithmetic mean, standard deviation, and maximum value. (4) A combination of the "area of the partition portion defining the corner" and one or more statistical quantities selected from kurtosis and skewness.
[0079] Among the above (1) to (4), the combination of the "long side / short side ratio" and one or more statistical quantities selected from the arithmetic mean and the standard deviation is more preferable, and the combination of the "long side / short side ratio" and the standard deviation is even more preferable.
[0080] Therefore, according to one embodiment of the present invention, A method for predicting whether or not a fired columnar honeycomb formed body having predetermined design specifications can be obtained when fired under predetermined firing conditions, based on measurement results of a columnar honeycomb formed body before firing, the columnar honeycomb formed body having a columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of polygonal cells that form flow paths from a first bottom surface to a second bottom surface, a step 1 of measuring one or more parameters selected from a structural coefficient characterizing the shape of an opening portion, a cell direction and a long side / short side ratio, and an area of a partition wall portion defining a corner portion for 90% or more, preferably 95% or more, and more preferably all, of polygonal cells excluding partial cells at the outermost periphery by observing at least one of a first bottom surface or a second bottom surface of the columnar honeycomb formed body before firing; If the parameter measured in step 1 is a structure coefficient, one or more statistical quantities selected from the arithmetic mean and the median; If the parameter measured in step 1 is a cell direction, one or more statistics selected from standard deviation and kurtosis; When the parameter measured in step 1 is the long side / short side ratio, one or more statistical quantities selected from the arithmetic mean, the standard deviation, and the maximum value; When the parameter measured in step 1 is the area of the partition portion defining the corner, one or more statistical quantities selected from kurtosis and skewness; Step 2: calculating based on the result of step 1; Step 3: comparing one or more types of statistical quantities calculated in step 2 with a judgment criterion that is predetermined according to the predetermined design specifications and the types of statistical quantities; A method is provided that includes:
[0081] The judgment criteria used for the comparison in step 3 may be determined in advance as appropriate depending on the predetermined design specifications and the type of statistical quantity. As an example, a case will be described in which whether a columnar honeycomb molded body with predetermined design specifications can be obtained is predicted based on the standard deviation of the long side / short side ratio. First, for a plurality of other columnar honeycomb molded bodies with the same design specifications as the columnar honeycomb molded body to be predicted, a correlation is obtained between the standard deviation of the long side / short side ratio of the columnar honeycomb molded body before firing and the strength of the other plurality of columnar honeycomb molded bodies after firing under predetermined firing conditions. Next, based on the obtained correlation, an allowable range of the standard deviation of the long side / short side ratio that is predicted to have the required strength after firing is set for the columnar honeycomb molded body before firing. Therefore, in this case, the allowable range of the standard deviation of the long side / short side ratio can be used as the judgment criterion.
[0082] Based on the above-mentioned criteria, a quality inspection of the columnar honeycomb formed body before firing can be carried out. For example, if the standard deviation of the calculated long side / short side ratio exceeds the allowable range, the columnar honeycomb formed body can be judged as a rejected product, and if the standard deviation of the calculated long side / short side ratio is within the allowable range, the columnar honeycomb formed body can be judged as an acceptable product.
[0083] Furthermore, by utilizing the above correlation, it is also possible to estimate the strength of the columnar honeycomb formed body after firing. Therefore, according to one embodiment of the prediction method, the method includes a step 4 of estimating the strength of the columnar honeycomb formed body after firing the columnar honeycomb formed body before firing under the predetermined firing conditions based on the one or more statistical quantities calculated in step 2, by utilizing a correlation between the one or more statistical quantities for the columnar honeycomb formed body before firing and the strengths of the other plurality of columnar honeycomb formed bodies after firing under the predetermined firing conditions, which correlation is obtained in advance for a plurality of other columnar honeycomb formed bodies having the same design specifications as the columnar honeycomb formed body to be predicted.
[0084] Based on the strength estimated by the above estimation method, a quality inspection of the columnar honeycomb formed body before firing can be carried out. For example, if the estimated strength is lower than the strength required for the columnar honeycomb formed body after firing, the columnar honeycomb formed body being inspected can be judged as a defective product, and if the estimated strength is equal to or higher than the required strength, it can be judged as an acceptable product.
[0085] (Image analysis device) 8 shows an example of a functional block diagram of the image analyzing device 300. The image analyzing device 300 includes a data storage unit 301, a display unit 302, an input unit 303, and a calculation unit 304.
[0086] The data storage unit 301 can be configured, for example, by a semiconductor memory, and can store image data of at least one of the first bottom surface and the second bottom surface of the columnar honeycomb molded body generated by a camera. It can also store the judgment criteria used in step 3 of the prediction method.
[0087] The input unit 303 can be composed of, for example, a keyboard, touch panel, numeric keypad, and mouse, and the inspector can use the input unit 303 to give instructions to start image analysis for the desired image showing the first bottom surface or second bottom surface of the columnar honeycomb molded body.
[0088] The display unit 302 can be configured with a display device such as a liquid crystal display or an organic EL display, and can display the image data stored in the data storage unit 301. It can also display the results of image analysis.
[0089] The calculation unit 304 can be configured with, for example, a CPU (Central Processing Unit), an MPU (Micro Processing Unit), etc. When the calculation unit 304 receives a command to start image analysis from the input unit 303, it executes image analysis based on the image data stored in the data storage unit 301, and can measure predetermined parameters and calculate statistics. As software used for image analysis, the above-mentioned HALCON (Ver. 18.11 or later version) by MVTec can be suitably used.
[0090] In one embodiment, the image analysis includes a step of image processing at least one of the first bottom surface or second bottom surface of the columnar honeycomb molded body captured by a camera, a step of measuring the two or more parameters mentioned above for 90% or more, preferably 95% or more, and more preferably all of the polygonal cells excluding the partial cells at the outermost periphery, based on the image of at least one of the first bottom surface or second bottom surface obtained by the image processing step, and a step of calculating two or more statistical quantities for each of the measured parameters.
[0091] In order to easily measure various parameters, in the image processing step, the calculation unit 304: a binarization process for dividing an inner peripheral side of an outer peripheral side wall in an image of at least one of a first bottom surface or a second bottom surface of the columnar honeycomb molded body into two regions: a cell opening region, and a partition wall region and an outer peripheral side wall region, based on a predetermined brightness threshold value; a step of identifying a partition wall region by distinguishing, after the binarization process, an area that is offset inward by a predetermined threshold value from the outline that forms the outer surface of the outer peripheral side wall as an outer peripheral side wall region; It is preferable to perform image processing including the following. Furthermore, when calculating the "partition wall bending," it is preferable to perform a skeletonization process that extracts the center line of the partition wall region from the partition wall region.
[0092] The threshold value in the binarization process can be set from the viewpoint of distinguishing between the opening region, the partition region, and the outer peripheral sidewall region. The binarization process may be performed using a known method, but a dynamic binarization method such as Otsu's binarization method is preferably used. By performing the binarization process, the partition region and the opening can be clearly distinguished, which has the advantage of facilitating image analysis.
[0093] In the skeletonization process, for example, circles having a diameter corresponding to the thickness of the partition are arranged in series within the partition region adjacent to each other along the direction in which the partition extends, and the center pixels of the circles are connected to each other, thereby extracting the center line. By performing the skeletonization process, the center line of the partition can be recognized, which has the advantage of clearly recognizing the linearity of the partition and improving inspection accuracy.
[0094] In the above-described method for predicting whether a columnar honeycomb formed body having predetermined design specifications will be obtained after firing under predetermined firing conditions, step 3 of comparing with the judgment criterion can also be performed by the image analysis device 300. In this case, information regarding the judgment criterion is stored in the data storage unit 301, and the calculation unit 304 compares the calculated statistical quantity with the judgment criterion. The image analysis device 300 can also be configured so that the result of the comparison, whether or not the judgment criterion is satisfied, is displayed on the display unit 302.
[0095] Furthermore, in a method for predicting whether a columnar honeycomb formed body that meets predetermined design specifications will be obtained after firing under predetermined firing conditions, it is also possible to have the image analysis device 300 perform step 4 of estimating the strength of the columnar honeycomb formed body after firing under the predetermined firing conditions. In this case, the data storage unit 301 stores information regarding the correlation between one or more statistical quantities for the columnar honeycomb formed body before firing and the strength of the other plurality of columnar honeycomb formed bodies after firing under the predetermined firing conditions, and the calculation unit 304 estimates the strength based on the calculated statistical quantities. The image analysis device 300 can also be configured so that the estimated strength is displayed on the display unit 302. [Example]
[0096] <Test Example 1> (1. Preparation of honeycomb formed body) For honeycomb formed bodies having the following design specifications to be assigned predetermined product numbers, honeycomb formed bodies before firing were produced by the following procedure. [Design specifications of honeycomb formed body after firing] Overall shape: Cylinder with a diameter of 118 mm and a height of 114 mm Cell shape in cross section perpendicular to the flow direction of normal cells: square Design dimensions of the opening in the cross section perpendicular to the flow direction of a normal cell: 0.97 mm x 0.97 mm Cell density (number of cells per unit cross-sectional area): 600 cells / in 2 Partition thickness: 64 μm
[0097] To 100 parts by mass of the cordierite-forming raw material, 1 part by mass of a pore-forming agent, 30 parts by mass of a dispersion medium, 8 parts by mass of an organic binder, and 1 part by mass of a dispersant were added, mixed, and kneaded to prepare a clay. The cordierite-forming raw materials used were alumina, aluminum hydroxide, kaolin, talc, and silica. Water was used as the dispersion medium, coke with an average particle size of 1 to 10 μm was used as the pore-forming agent, hydroxypropyl methylcellulose was used as the organic binder, and ethylene glycol was used as the dispersant.
[0098] The clay was placed in an extrusion molding machine and extruded horizontally through a predetermined die to obtain a cylindrical honeycomb molded body. The obtained honeycomb molded body was subjected to dielectric drying and hot air drying, and then both bottom surfaces were cut to the predetermined dimensions to obtain a cylindrical honeycomb molded body.
[0099] A total of 306 cylindrical honeycomb molded bodies were produced using the same procedure as above. However, for eight of these, the amount of dispersion medium was intentionally changed to reduce strength and promote distortion of the cell shape. For the remaining 298 honeycomb molded bodies, no intentional changes were made to the manufacturing conditions, but some dimensional variations were unavoidable.
[0100] (2. Measurement of various parameters characterizing the cell and calculation of statistics) For each of the obtained honeycomb formed bodies, various parameters were measured according to the following procedure, and various statistical quantities were calculated for each parameter. One bottom surface of each columnar honeycomb formed body was imaged from a direction perpendicular to the bottom surface using an area camera (vertical pixel resolution: 0.01455 mm / pixel, horizontal pixel resolution: 0.01453 mm / pixel), and an image of the bottom surface was generated. The generated image was subjected to image processing and analysis using an image processing library (HALCON, Ver. 18.11, manufactured by MVTec Corporation). Various parameters shown in Table 1 were measured for all cells except for the partial cells, and the following statistical quantities related to the parameters were calculated for each honeycomb formed body. [Parameters that characterize the shape or size of the opening of each polygonal cell] Opening area, inscribed circle radius, approximate short side of rectangle, approximate long side of rectangle, rectangularity, circularity, compactness, contour length, convexity, major axis / minor axis ratio, ellipticity, structural coefficient, center distance deviation, roundness, circumscribed circle radius, approximate major axis of ellipse, approximate minor axis of ellipse, cell direction, and major axis / minor axis ratio [Parameters characterizing the shape or size of the partition portions defining each side of each polygonal cell] Bulkhead bending, bulkhead thickness, and bulkhead direction (In a cross section perpendicular to the cell extension direction, the partition wall extending in the vertical direction during extrusion molding was defined as partition wall 1, and the partition wall extending in the horizontal direction during extrusion molding was defined as partition wall 2, and the partition wall bending, partition wall thickness, and partition wall direction were calculated for each of partition wall 1 and partition wall 2.) [Parameters characterizing the shape or size of the partition wall portions defining each corner of each polygonal cell] Area of the partition wall portion defining the corner
[0101] For image analysis, the following image processing was performed using an image processing library (MVTec HALCON, Ver. 18.11). In the image of the bottom surface, the inner periphery of the outer periphery side wall is binarized into two regions, a cell opening region and a partition wall region, based on a threshold dynamically calculated by Otsu's binarization method. - Only when calculating "partition wall bending", a skeletonization process is performed to extract the center line of the partition wall area (thickness 1 pixel = 0.01453 mm) from the partition wall area after smoothing processing.
[0102] (3. Firing of honeycomb formed body) Thereafter, each honeycomb formed body was degreased under predetermined conditions of 200 to 1000°C in an air atmosphere, and then heated to 1350 to 1600°C and fired under predetermined firing conditions for 3 to 10 hours. All honeycomb formed bodies were fired under the same firing conditions (no intentional changes to the firing conditions).
[0103] (4. Measurement of isostatic fracture strength) The isostatic fracture strength of all the fired honeycomb molded bodies was measured based on the automobile standard (JASO M505-87) issued by the Automotive Engineers Association of Japan.
[0104] (5. Calculation of correlation coefficient) The correlation coefficient between the various statistical quantities calculated before firing and the isostatic fracture strength measured after firing for all honeycomb molded bodies produced was calculated. The results are shown in Table 1. When the absolute value of the correlation coefficient is 0.4 or more, it is considered that there is a significant correlation between the two. For this reason, in the table, combinations of parameters and statistical quantities with absolute values of correlation coefficients of 0.4 or more are marked "OK," and combinations of parameters and statistical quantities with absolute values of correlation coefficients of less than 0.4 are marked "-."
[0105] <Test Example 2> (1. Preparation of honeycomb formed body) For honeycomb formed bodies with the following design specifications, which were to be assigned product numbers different from those of Test Example 1, honeycomb formed bodies before firing were produced using the same procedure as Test Example 1. Test Example 2 differs from Test Example 1 only in the overall design shape. [Design specifications for pillar-shaped honeycomb formed body after firing] Overall shape: cylindrical, 132mm diameter x 95mm height Cell shape in cross section perpendicular to the flow direction of normal cells: square Design dimensions of the opening in the cross section perpendicular to the flow direction of a normal cell: 0.97 mm x 0.97 mm Cell density (number of cells per unit cross-sectional area): 600 cells / in 2 Partition thickness: 64 μm
[0106] A total of 135 cylindrical honeycomb molded bodies were produced using the same procedure as above. However, for 13 of these, the amount of dispersion medium was intentionally changed to reduce strength and promote distortion of the cell shape. For the remaining 122 honeycomb molded bodies, no intentional changes were made to the manufacturing conditions, but some dimensional variations were unavoidable.
[0107] (2. Measurement of various parameters characterizing the cell and calculation of statistics) For each of the obtained honeycomb formed bodies, various parameters were measured in the same manner as in Test Example 1, and various statistical quantities were calculated for each parameter.
[0108] (3. Firing of honeycomb formed body) Thereafter, each honeycomb formed body was degreased under predetermined conditions of 200 to 1000°C in an air atmosphere, and then heated to 1350 to 1600°C and fired under predetermined firing conditions for 3 to 10 hours. All honeycomb formed bodies were fired under the same firing conditions (no intentional changes to the firing conditions).
[0109] (4. Measurement of isostatic fracture strength) The isostatic fracture strength of all the fired honeycomb molded bodies was measured based on the automobile standard (JASO M505-87) issued by the Automotive Engineers Association of Japan.
[0110] (5. Calculation of correlation coefficient) The correlation coefficient between the various statistical quantities calculated before firing and the isostatic fracture strength measured after firing for all honeycomb molded bodies produced was calculated. The results are shown in Table 1. When the absolute value of the correlation coefficient is 0.4 or more, it is considered that there is a significant correlation between the two. For this reason, in the table, combinations of parameters and statistical quantities with absolute values of correlation coefficients of 0.4 or more are marked "OK," and combinations of parameters and statistical quantities with absolute values of correlation coefficients of less than 0.4 are marked "-."
[0111] [Table 1-1]
[0112] [Table 1-2]
[0113] [Table 1-3]
[0114] [Table 1-4]
[0115] <Consideration> In the honeycomb molded body having the design specifications according to Test Example 1, the combinations of the following parameters and statistics have correlation coefficients with absolute values of 0.4 or more, indicating a significant correlation. The combination with the long side / short side ratio and standard deviation had the highest correlation coefficient. Combination of structural coefficients and arithmetic means Combination of structure coefficients and medians Combination of cell direction and standard deviation Combination of cell direction and kurtosis Combination of length ratio and arithmetic mean Combination of length ratio and standard deviation Combination of long and short side ratio and maximum value The combination of the area and kurtosis of the partition that defines the corner The combination of the area and skewness of the partition wall that defines the corner
[0116] Fig. 9 shows the results of plotting all honeycomb formed bodies produced in Test Example 1 on a two-dimensional coordinate system with the standard deviation of the long side / short side ratio on the horizontal axis and the isostatic fracture strength on the vertical axis. From Fig. 9, it can be seen that when the standard deviation of the long side / short side ratio is 0.0162 or less, the isostatic fracture strength is 3 MPa or more. Therefore, if an isostatic fracture strength of 3 MPa or more is the strength required for a fired honeycomb formed body, for example, whether or not the standard deviation of the long side / short side ratio for the honeycomb formed body before firing is 0.0162 or less can be used as a judgment criterion to determine whether or not a fired columnar honeycomb formed body meeting the design specifications of Test Example 1 can be obtained, allowing for highly accurate quality inspection (0 overdetections where a passing product is judged as a failing product, and 0 overlooked cases where a failing product is judged as a passing product).
[0117] In the honeycomb molded body having the design specifications according to Test Example 2, the combinations of the following parameters and statistics have correlation coefficients with absolute values of 0.4 or more, indicating a significant correlation. In addition, the combination with the rectangular approximation short side and standard deviation had the highest correlation coefficient. Combination of opening area and arithmetic mean Combination of opening area and standard deviation Combination of opening area and distortion Combination of opening area and maximum value Combination of inscribed circle radius and standard deviation Combination of inscribed circle radius and maximum value Combination of rectangular approximation short side and standard deviation Combination of rectangular approximation short side and skewness Combination of the short side of a rectangle approximation and the maximum value Combination of rectangular approximation long side and arithmetic mean Combination of rectangular approximation length and standard deviation Combination of rectangular approximation length and skewness Combination of rectangular approximation long side and median Combination of rectangular approximation long side and maximum value Combination of rectangularity and arithmetic mean Combination of rectangularity and standard deviation Combination of rectangularity and skewness Combination of roundness and arithmetic mean Combination of circularity and skewness Combination of circularity and median Combination of compactness and arithmetic mean Combination of compactness and median Combination of major axis / minor axis ratio and arithmetic mean Combination of major axis / minor axis ratio and standard deviation Combination of major axis / minor axis ratio and median Combination of structural coefficients and arithmetic means Combination of structure coefficients and standard deviations Combination of structure coefficients and medians Combination of center distance deviation and arithmetic mean Combination of center distance deviation and standard deviation Combination of center distance deviation and median Combination of roundness and arithmetic mean Combination of roundness and standard deviation Combination of roundness and median Combination of circumscribed circle radius and arithmetic mean Combination of circumscribed circle radius and standard deviation Combination of circumscribed circle radius and median Combination of circumscribed circle radius and maximum value Combination of ellipse approximation major axis and arithmetic mean Combination of ellipse approximation major axis and standard deviation Combination of ellipse approximation major axis and median Combination of ellipse approximate major axis and maximum value Combination of the minor axis of the ellipse approximation and the standard deviation Combination of the approximate minor axis of the ellipse and the maximum value Combination of cell direction and arithmetic mean Combination of cell direction and standard deviation Combination of cell direction and kurtosis Combination of cell direction and skewness Combination of cell direction and median Combination of length ratio and arithmetic mean Combination of length ratio and standard deviation Combination of long and short side ratio and maximum value Combination of bulkhead bending (bulhead 1) and standard deviation Combination of bulkhead bending (bulhead 2) and standard deviation Combination of partition wall thickness (partition wall 1) and arithmetic mean Combination of partition wall thickness (partition wall 1) and minimum value Combination of partition wall thickness (partition wall 2) and arithmetic mean Combination of partition wall thickness (partition wall 2) and standard deviation -Combination of the area of the partition wall defining the corner and the arithmetic mean The combination of the area and kurtosis of the partition that defines the corner The combination of the area and skewness of the partition wall that defines the corner -Combination of the area and minimum value of the partition wall that defines the corner Combination of area and median of the partition wall defining the corner
[0118] Fig. 10 shows the results of plotting all honeycomb formed bodies produced in Test Example 2 on a two-dimensional coordinate system with the standard deviation of the rectangular approximation short side on the horizontal axis and the isostatic fracture strength on the vertical axis. From Fig. 10, it can be seen that when the standard deviation of the rectangular approximation short side is 0.402 or less, there is an extremely high probability that the isostatic fracture strength will be 3 MPa or more. Therefore, if an isostatic fracture strength of 3 MPa or more is the strength required for a fired honeycomb formed body, for example, whether or not the standard deviation of the rectangular approximation short side for the honeycomb formed body before firing is 0.402 or less can be used as a judgment criterion to determine whether or not a fired columnar honeycomb formed body meeting the design specifications of Test Example 2 can be obtained, allowing for highly accurate quality inspection (1 over-detection example in which a passing product is judged as a failing product, and 0 oversight examples in which a failing product is judged as a passing product).
[0119] Furthermore, from the above results, it can be seen that the combinations of the following parameters and statistical quantities have a significant correlation, with the absolute value of the correlation coefficient being 0.4 or more in both Test Example 1 and Test Example 2. In other words, these combinations of parameters and statistical quantities have a high correlation with strength even when the design specifications of the honeycomb molded body change. In particular, the combination of long side / short side ratio and standard deviation has an absolute value of the correlation coefficient being 0.6 or more in both Test Example 1 and Test Example 2, making it highly versatile. Combination of structural coefficients and arithmetic means Combination of structure coefficients and medians Combination of cell direction and standard deviation Combination of cell direction and kurtosis Combination of length ratio and arithmetic mean Combination of length ratio and standard deviation Combination of long and short side ratio and maximum value The combination of the area and kurtosis of the partition that defines the corner The combination of the area and skewness of the partition wall that defines the corner [Explanation of symbols]
[0120] 100, 200 Pillar honeycomb formed body 102, 202 outer side wall 104, 204 First bottom surface 106, 206 Second bottom surface 108, 208a, 208b cells 112, 212 bulkhead 209 Plugging part 300 Image analysis device 301 Data storage unit 302 Display section 303 Input section 304 Arithmetic section 500 polygonal cells 502 Corner 503 Straight section 504 Straight partition wall portions defining the straight line portions of polygonal cells 505 Center line 506 Partition wall portion defining corners of polygonal cells 507 minimum rectangle 508 Maximum yen
Claims
1. A method for predicting whether or not a fired columnar honeycomb formed body having predetermined design specifications can be obtained when fired under predetermined firing conditions, based on measurement results of a columnar honeycomb formed body before firing, the columnar honeycomb formed body having a columnar honeycomb structure portion including an outer peripheral side wall and partition walls disposed on the inner peripheral side of the outer peripheral side wall and partitioning a plurality of polygonal cells that form flow paths from a first bottom surface to a second bottom surface, a step 1 of measuring one or more parameters selected from a structural coefficient characterizing the shape of an opening portion, a cell direction and a long-side-short-side ratio, and an area of a partition wall portion defining a corner portion for 90% or more of polygonal cells excluding partial cells at the outermost periphery by observing at least one of a first bottom surface or a second bottom surface of the columnar honeycomb formed body before firing; If the parameter measured in step 1 is a structure coefficient, one or more statistical quantities selected from the arithmetic mean and the median; If the parameter measured in step 1 is a cell orientation, one or more statistics selected from standard deviation and kurtosis; When the parameter measured in step 1 is the long side / short side ratio, one or more statistical quantities selected from the arithmetic mean, the standard deviation, and the maximum value; When the parameter measured in step 1 is the area of the partition portion defining the corner, one or more statistical quantities selected from kurtosis and skewness; Step 2: calculating based on the result of step 1; a step 3 of comparing one or more types of statistical quantities calculated in the step 2 with a judgment criterion that is predetermined according to the predetermined design specifications and the types of statistical quantities; A method comprising:
2. The method of claim 1, further comprising a step 4 of estimating the strength of the columnar honeycomb formed body after firing the columnar honeycomb formed body before firing under the specified firing conditions based on one or more statistical quantities calculated in step 2, utilizing a correlation between the one or more statistical quantities for the columnar honeycomb formed body before firing and the strength of the other plurality of columnar honeycomb formed bodies after firing under the specified firing conditions, which correlation was previously determined for a plurality of other columnar honeycomb formed bodies having the same design specifications as the columnar honeycomb formed body.
3. 3. The method of claim 2, wherein said strength is an isostatic fracture strength.
Citation Information
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