Filter testing apparatus and method
The filter testing device and method improve reproducibility by using inorganic particles with specific size and flow properties to simulate engine-accelerated ash deposition, aligning test results with actual engine-accelerated ash outcomes.
Patent Information
- Application Number
- JP2021162155
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-30
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2041-09-30
AI Technical Summary
Existing filter testing methods using calcium sulfate powder to simulate ash deposition on filters result in significant discrepancies between test results and those obtained with engine-accelerated ash, necessitating improved reproducibility.
A filter testing device and method that generates a particle-containing gas with inorganic particles simulating ash, having an average particle size of 10 μm or more and an angle of repose of 50 degrees or less, to deposit these particles on filters, mimicking engine-accelerated ash deposition.
The method provides test results closer to those obtained with engine-accelerated ash, enhancing the reproducibility and accuracy of filter testing.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a filter testing apparatus and method for testing filters. [Background technology]
[0002] Exhaust gas emitted from automobiles equipped with engines (internal combustion engines) such as gasoline engines and diesel engines contains soot (PM), which is mainly composed of carbon, as well as ash, which is mainly composed of unburned components derived from engine oil.Since soot and ash are causes of environmental pollution, filters such as GPFs and DPFs that collect soot and ash have traditionally been installed in the exhaust gas lines of these engines.
[0003] In order to verify the validity of the product design of a filter, it is necessary to understand the pressure loss caused by ash deposition on the filter. In such verification tests, ash is acceleratedly deposited on the filter by burning fuel with engine oil added in the engine or by intentionally widening the gap between the piston ring and the cylinder of the engine to burn engine oil in the cylinder. However, even with such a method of accelerating the deposition of ash using an engine, it takes a long time, about several months, to deposit the amount of ash required for the verification test, even for one filter alone. Hereinafter, the ash obtained in an accelerated manner using the engine may be referred to as "engine accelerated ash".
[0004] Therefore, as disclosed in the following Patent Document 1, in order to obtain a state in which a required amount of ash is deposited on the filter more quickly, it is being considered to deposit a powder simulating ash on the filter. The following Patent Document 1 proposes using a powder of calcium sulfate, which is the main component of ash, as the powder simulating ash. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] JP 2019-124606 A Summary of the Invention [Problem to be solved by the invention]
[0006] In Patent Document 1, when calcium sulfate powder is used, calcium sulfate powder is deposited on the filter in an amount equal to the weight of the ash of the test specimen obtained by using an engine. However, there is a considerable discrepancy between the test results when engine acceleration ash is used and the test results when calcium sulfate powder is used, and there is a need to improve the reproducibility of the test results. As a result of the inventor's investigation, it was found that there is a difference in the powder properties between engine acceleration ash and calcium sulfate powder.
[0007] The present invention has been made to solve the above-mentioned problems, and its object is to provide a filter testing device and method that can obtain test results that are closer to the test results when engine accelerated ash is used. [Means for solving the problem]
[0008] The filter testing device of the present invention includes a burner for generating combustion gas, a particle-containing gas generating section for generating a particle-containing gas containing inorganic particles simulating ash, a mixing section for generating a mixed gas by mixing the combustion gas and the particle-containing gas, and a filter installation section provided in a flow path of the mixed gas generated in the mixing section for installing a filter that collects inorganic particles in the mixed gas, wherein the inorganic particles have an average particle size of 10 μm or more and an angle of repose of 50 degrees or less.
[0009] The filter testing method according to the present invention includes the steps of generating combustion gas by a burner, generating a particle-containing gas containing inorganic particles simulating ash, mixing the combustion gas with the particle-containing gas to generate a mixed gas, and collecting the inorganic particles in the mixed gas with a filter to deposit the inorganic particles on the filter and evaluating the performance of the filter, wherein the inorganic particles have an average particle size of 10 μm or more and an angle of repose of 50 degrees or less. Effect of the Invention
[0010] The filter testing apparatus and method of the present invention can provide test results that are closer to those obtained when engine accelerated ash is used. [Brief description of the drawings]
[0011] [Figure 1] 1 is an explanatory diagram showing a filter testing device according to an embodiment of the present invention; [Diagram 2] FIG. 2 is a perspective view showing a schematic example of the filter of FIG. 1. [Diagram 3] 3 is a schematic cross-sectional view of an example of the filter in FIG. 2, observed from a direction perpendicular to the extending direction of the cells. FIG. [Figure 4] 1 is a graph showing the initial pressure loss when various inorganic particles are deposited on a filter. [Diagram 5] 1 is a graph showing PM pressure loss when various inorganic particles are deposited on a filter. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] Hereinafter, the embodiments of the present invention will be described in detail with reference to the drawings. The present invention is not limited to the following embodiments, and it should be understood that the scope of the present invention includes any modifications and improvements to the following embodiments based on the ordinary knowledge of those skilled in the art without departing from the spirit of the present invention.
[0013] (Filter testing equipment) Fig. 1 is an explanatory diagram showing a filter testing device according to an embodiment of the present invention. The filter testing device shown in Fig. 1 includes a burner 1 for generating a combustion gas 1a, a particle-containing gas generating section 2 for generating a particle-containing gas 2a containing inorganic particles 2b simulating ash, a mixing section 3 for generating a mixed gas 3a by mixing the combustion gas 1a and the particle-containing gas 2a, and a filter installation section 4 provided in a flow path of the mixed gas 3a generated in the mixing section 3 and for installing a filter 5 for collecting the inorganic particles 2b and soot (PM) in the mixed gas 3a.
[0014] (1. Burna) The burner 1 is configured to mainly generate a combustion gas 1a. In one embodiment, the burner 1 includes a combustion chamber 10, an air supply device 11, a fuel supply device 12, a pilot burner 13, and a main burner 14.
[0015] (1.0. Combustion chamber) The combustion chamber 10 is a vessel in which the combustion gas 1a is generated. In one embodiment, the overall shape of the combustion chamber 10 may be tubular, typically cylindrical. The material of the wall that divides the combustion chamber 10 may be, but is not limited to, stainless steel, nickel alloy, or the like. A combustion chamber inlet 10a through which an air flow 11a is supplied is provided at one end of the combustion chamber 10, and a combustion chamber outlet 10b through which the combustion gas 1a is discharged is provided at the other end of the combustion chamber 10. A pilot burner 13 and a main burner 14 are attached to the combustion chamber 10.
[0016] The size of the combustion chamber 10 is not particularly limited, but it is preferable that the size is such that the fuel can be burned by the air flow 11a to generate soot suitable for performing a filter test in a short time. For example, in view of the general size range of GPF and DPF (filter 5), the combustion chamber 10 is cylindrical and the flow rate of the air flow 11a is 0.04 Nm 3 / min~0.25Nm 3 / min. The inner diameter of the combustion chamber 10 is preferably 130 to 250 mm, and more preferably 150 to 200 mm. The volume of the combustion chamber 10 is preferably 6,000 to 35,000 cm. 3 Preferably, the range is 6,000 to 30,000 cm 3 It is more preferable that the inner diameter of the combustion chamber 10 is 250 mm or less. By setting the inner diameter of the combustion chamber 10 to 250 mm or less, it is possible to avoid restrictions on the minimum flow rate for uniformly distributing the air flow 11a in the combustion chamber 10. 3 By setting the volume of the combustion chamber 10 to 35,000 cm or more, it is possible to prevent the wall of the combustion chamber 10 from becoming too hot, which may result in oxidation deterioration of the combustion chamber 10 or the need for heat shielding of the surrounding area. 3 By keeping the size of the filter testing device at or below 100 mm, it is possible to prevent the filter testing device from becoming large, and it is possible to reduce the manufacturing costs and operating costs of the testing device.
[0017] (1.1. Air supply device) The air supply device 11 is a device for supplying an air flow 11a into the combustion chamber 10 mainly through the combustion chamber inlet 10a. The air flow 11a supplied into the combustion chamber 10 is mainly used for combustion in the combustion chamber 10. As the air supply device 11, a dry air supply device, a blower, a compressor, etc. can be suitably used, but are not limited to these. The air supply device 11 of this embodiment is connected to the combustion chamber 10, the pilot burner 13, and the mixing section 3 via the air supply piping 11b. The air supply device 11 can supply the air flow 11a to the pilot burner 13 and the mixing section 3 as well.
[0018] A flow control device 11c for controlling the flow rate of the air flow 11a toward the combustion chamber inlet 10a can be provided between the combustion chamber inlet 10a and the air supply device 11. It is preferable to generate the air flow 11a (compressed air) by compressing air with a compressor as the air supply device 11, and supply the air flow 11a whose flow rate is controlled by the flow control device 11c to the combustion chamber 10. A flow control device 11c can also be provided between the air supply device 11 and the pilot burner 13 and between the air supply device 11 and the mixing section 3 to control the flow rates of the air flows 11a toward the pilot burner 13 and the mixing section 3, respectively.
[0019] (1.2.Fuel supply device) The fuel supply device 12 is a device for supplying fuel 12a to the pilot burner 13 and the main burner 14. The fuel supply device 12 is connected to the pilot burner 13 and the like via a fuel pipe 12b. As the fuel supply device 12, a fuel cylinder, a fuel supply pump, and the like can be suitably used, but are not limited thereto. As the fuel 12a, liquid fuel and gaseous fuel can be used, but gaseous fuel is preferable from the viewpoint of ease of handling and safety. As the gaseous fuel, methane gas, ethane gas, propane gas, butane gas, and the like can be mentioned. As the fuel 12a, one type may be used alone, or two or more types may be used in combination. Between the fuel supply device 12 and the pilot burner 13 and the like, a flow rate control device 12c for controlling the flow rate of the fuel 12a to the pilot burner 13 and the like can be provided.
[0020] The flow control device 11c for the air flow 11a or the flow control device 12c for the fuel 12a is not particularly limited as long as it can achieve the respective purpose of controlling the flow rate of the air flow 11a or the fuel 12a, and examples thereof include a pressure reducing valve and a flow control valve. The flow control valve may be opened and closed manually or via a valve actuator such as an electromagnetic valve or an electric valve of a pneumatic, electric, hydraulic, or solenoid type. The flow control valve may be controlled using a mass flow controller. The flow control device 11c for the air flow 11a and the flow control device 12c for the fuel 12a may each be a single device such as a pressure reducing valve, or two or more devices may be used in combination.
[0021] (1.3. Pilot burner) The pilot burner 13 is mainly used for the purpose of igniting the main burner 14. The operation of the pilot burner 13 may be stopped after the main burner 14 is ignited, but the operation of the pilot burner 13 may be continued even after the main burner 14 is ignited. When the operation of the pilot burner 13 is stopped after the main burner 14 is ignited, it is preferable to stop the operation of the pilot burner 13 after operating it for 10 seconds or more, for example, 10 to 20 seconds, after the main burner 14 is ignited. This makes it possible to maintain a stable combustion state.
[0022] (1.4. Main burner) The main burner 14 is mainly used for the purpose of generating the combustion gas 1a. There are no particular limitations on the shape of the main burner 14, but it may be, for example, tubular, typically cylindrical.
[0023] The temperature of the combustion gas 1a generated by the main burner 14 can be 500° C. or higher. There is no particular upper limit set for the temperature of the combustion gas 1a, but for safety reasons, it is preferably set to 1000° C. or lower.
[0024] The temperature of the combustion gas 1a can be controlled, for example, by adjusting the flow rate of the air flow 11a supplied to the combustion chamber 10 and the flow rate of the fuel 12a supplied to the main burner 14. For example, the temperature of the combustion gas 1a can be increased by increasing the flow rate of the air flow 11a through the control of the flow rate control device 11c, or by increasing the flow rate of the fuel 12a through the control of the flow rate control device 12c.
[0025] The opening diameter of the fuel supply hole (fuel injection port) of the main burner 14 is preferably 6 mm or less, more preferably 4 mm or less, and even more preferably 3 mm or less. Here, the opening diameter of the fuel supply hole refers to a circle equivalent diameter.
[0026] The number of fuel supply holes provided per main burner 14 is preferably 5 or more, more preferably 10 or more, and even more preferably 20 or more. When providing multiple fuel supply holes, it is preferable to arrange them in a row from the viewpoint of combustion stability, etc.
[0027] During operation of the main burner 14, the average excess air ratio in the combustion chamber 10 is preferably 2 to 10, and more preferably 3 to 8. The average excess air ratio in the combustion chamber 10 is determined by the total flow rate (Nm 3 / min) and the flow rate (Nm 3 / min) is used to calculate.
[0028] The position where the main burner 14 is arranged is preferably within a range from a position 100 mm downstream (downstream in the flow direction of the air flow 11a) from the position where the pilot burner 13 is arranged to a position 200 mm upstream (upstream in the flow direction of the air flow 11a) from the position where the pilot burner 13 is arranged. It is more preferable that the position where the main burner 14 is arranged is within a range from a position 100 mm downstream from the position where the pilot burner 13 is arranged to a position 100 mm upstream from the position where the pilot burner 13 is arranged.
[0029] The air flow 11a supplied to the combustion chamber 10 when the main burner 14 is operated is also preferably generated by compressing air using a compressor. The air flow 11a (compressed air) adjusted by the flow rate control device 11c is preferably supplied to the combustion chamber inlet 10a. The average flow velocity of the air flow 11a at the combustion chamber inlet 10a is preferably 1.0 m / sec or more, and more preferably 4.0 m / sec or more. From the viewpoint of ensuring stable combustion, the average flow velocity of the air flow 11a at the combustion chamber inlet 10a is preferably 40.0 m / sec or less, and more preferably 20.0 m / sec or less. The average flow velocity is determined by the air supply flow rate (Nm 3 / sec) ÷ cross-sectional area of the inlet (m2 ) is calculated as follows:
[0030] It is preferable that at least one main burner 14 is provided in the combustion chamber 10. That is, a plurality of main burners 14 may be provided. When a plurality of main burners 14 are provided, each of the main burners 14 may have a different configuration. For example, the orientation and / or opening diameter of the fuel supply hole (fuel injection port) of each main burner 14 may be different from each other.
[0031] (2. Particle-containing gas generating section) As described above, the particle-containing gas generating unit 2 is configured to generate the particle-containing gas 2a containing the inorganic particles 2b simulating ash. In an actual vehicle, the speed at which ash derived from engine oil accumulates on the filter 5 is very slow, so that the accumulation state of ash that is close to that of an actual vehicle can be simulated in a short period of time by supplying and accumulating the inorganic particles 2b simulating ash on the filter 5. In one embodiment, the particle-containing gas generating unit 2 has a feeder 20 and an air supply device 21.
[0032] (2.0.Feeder) The feeder 20 is configured to supply inorganic particles 2b simulating ash. As long as the feeder 20 can supply the inorganic particles 2b, there is no particular limitation on the configuration of the feeder 20. However, it is preferable that the feeder 20 is configured to be capable of supplying a fixed amount of the inorganic particles 2b in terms of managing the deposition rate of the ash or inorganic particles 2b. In one embodiment, the feeder 20 includes a storage section 200 for holding the inorganic particles 2b, and a discharge mechanism 201 for discharging the inorganic particles 2b in the storage section 200. The discharge mechanism 201 can be operated by a driving device such as a motor. An impeller or the like can be used as the discharge mechanism 201. The discharge rate of the inorganic particles 2b from the feeder 20 can be controlled, for example, by inverter control of a driving device such as a motor.
[0033] From the viewpoint of depositing the inorganic particles 2b on the filter 5 in a short time, it is advantageous to control the supply amount of the inorganic particles 2b from the feeder 20 to 0.05 g / min or more, preferably 1 g / min or more, per 1 L of the volume of the filter 5. Although there is no particular restriction on the upper limit of the supply amount of the inorganic particles 2b from the feeder 20, if it is too large, the inlet of the filter will be clogged with the inorganic particles 2b, making it difficult for the inorganic particles 2b to deposit inside the filter, so it is advantageous to control the supply amount of the inorganic particles 2b from the feeder 20 to 30 g / min or less, preferably 15 g / min or less, per 1 L of the volume of the filter.
[0034] (2.1. Air supply device) The air supply device 21 is a device for forming a gas flow 21a for transporting inorganic particles 2b. As the air supply device 21, a dry air supply device, a blower, a compressor, etc. can be suitably used, but are not limited thereto. The gas flow 21a can be an air flow. The air supply device 21 is connected to the feeder 20 and the mixing section 3 via the air supply pipe 21b. The feeder 20 supplies the inorganic particles 2b to the air supply pipe 21b. The inorganic particles 2b are added to the gas flow 21a in the air supply pipe 21b, thereby generating a particle-containing gas 2a. The air supply pipe 21b can be provided with a flow control device 21c for controlling the flow rate of the gas flow 21a. There is no particular limitation on the flow rate control device 21c as long as the purpose of controlling the flow rate of the gas flow 21a can be achieved, but examples thereof include a pressure reducing valve and a flow control valve. The flow control valve may be opened and closed manually or via a valve actuator such as an electromagnetic valve or an electric valve, such as a pneumatic, electric, hydraulic, or solenoid valve. The flow control valve may be controlled using a mass flow controller. The flow control device 21c may be one of devices such as a pressure reducing valve, or may be a combination of two or more devices.
[0035] From the viewpoint of smoothly transporting the inorganic particles 2b, the pressure of the gas flow 21a is preferably 0.05 MPaG or more, and more preferably 0.1 MPaG or more. Since the pressure of the gas flow 21a does not need to be excessively high, it is preferably 0.5 MPaG or less, and more preferably 0.3 MPaG or less.
[0036] In this embodiment, the inorganic particles 2b are pressure-fed by the gas flow 21a formed by the air supply device 21 provided upstream of the feeder 20. This embodiment is preferable from the viewpoint of simulating exhaust gas from an engine. However, a suction device may be provided downstream of the feeder 20, and the inorganic particles 2b may be transported by the gas flow formed by the suction device.
[0037] (2.2.Inorganic particles) As described above, the inorganic particles 2b are particles for simulating ash generated in an engine, particularly ash obtained in an accelerated manner using an engine during a verification test of the filter 5. Hereinafter, the ash obtained in an accelerated manner using an engine may be referred to as "engine accelerated ash". Examples of methods for obtaining engine accelerated ash include a method of burning fuel to which engine oil has been added in an engine, and a method of intentionally widening the gap between the piston ring and the cylinder of the engine to burn engine oil in the cylinder. As will be described later, by making the average particle size of the inorganic particles 2b 10 μm or more and making the angle of repose of the inorganic particles 2b 50 degrees or less, a test result closer to the test result when engine accelerated ash is used can be obtained.
[0038] When the average particle size of the inorganic particles 2b is 10 μm or more, the inorganic particles 2b easily reach the outlet end of the filter 5 due to inertia, and the inorganic particles 2b can be prevented from adhering to the partition walls on the way to the outlet end. The average particle size of the inorganic particles 2b is more preferably 25 μm or more. The inorganic particles 2b can be more reliably prevented from adhering to the partition walls on the way. The average particle size of the inorganic particles 2b is preferably 100 μm or less, more preferably 50 μm or less, and even more preferably 30 μm or less. The average particle size of the inorganic particles 2b can be the 50% particle size when the cumulative particle size distribution based on the volume is measured by a laser diffraction / scattering type particle size measuring device using the light scattering method as the measurement principle.
[0039] By making the angle of repose of the inorganic particles 2b 50 degrees or less, the fluidity of the inorganic particles 2b is ensured to a certain degree, the adhesion of the inorganic particles 2b is suppressed to a low level, and the situation in which the cells of the filter 5 are blocked by the inorganic particles 2b at the inlet side of the filter 5 can be avoided. The angle of repose of the inorganic particles 2b is more preferably 45 degrees or less. The situation in which the cells of the filter 5 are blocked by the inorganic particles 2b at the inlet side of the filter 5 can be more reliably avoided. The angle of repose of the inorganic particles 2b is preferably 30 degrees or more, and more preferably 38 degrees or more. The angle of repose of the inorganic particles 2b can be measured by an operation according to the provisions of JIS R 9301-2-2:1999. This provision is for alumina powder, but the angle of repose of other powders can also be measured by the same operation.
[0040] As the inorganic particles 2b, a powder that does not thermally decompose in the temperature range of the test using the filter test device is used. One or more types of powder can be used as the inorganic particles 2b. At least one of alumina and silicon carbide can be suitably used as the inorganic particles 2b.
[0041] (3. Mixing section) As described above, the mixing section 3 is a section for generating the mixed gas 3a by mixing the combustion gas 1a and the particle-containing gas 2a. In one embodiment, the mixing section 3 has a mixing chamber 30.
[0042] (3.0.Mixing chamber) The mixing chamber 30 is a container in which the mixed gas 3a is generated. In one embodiment, the mixing chamber 30 may have a cylindrical overall shape, typically a cylindrical shape. The material of the wall that defines the mixing chamber 30 may be, but is not limited to, stainless steel, nickel alloy, etc.
[0043] The mixing chamber 30 is provided with a mixing chamber inlet 30a, a first connection port 30b, a mixing chamber outlet 30c, and a second connection port 30d.
[0044] The mixing chamber inlet 30a is provided at one end of the mixing chamber 30 and is connected to the combustion chamber outlet 10b. The combustion gas 1a from the burner 1 is introduced into the mixing chamber 30 through the mixing chamber inlet 30a. The first connection port 30b is provided on the side of the mixing chamber 30 and is connected to the gas supply pipe 21b of the particle-containing gas generating unit 2. The particle-containing gas 2a from the particle-containing gas generating unit 2 is introduced into the mixing chamber 30 through the first connection port 30b. The mixing chamber outlet 30c is provided at the other end of the mixing chamber 30. The mixed gas 3a is discharged from the mixing chamber 30 through this mixing chamber outlet 30c.
[0045] The second connection port 30d is provided on the side of the mixing chamber 30 and is connected to the air supply pipe 11b of the burner 1. The air flow 11a from the air supply device 11 is supplied into the mixing chamber 30 through the second connection port 30d. The air flow 11a supplied into the mixing chamber 30 is mainly used for cooling the inside of the mixing chamber 30. The temperature inside the mixing chamber 30 can be adjusted by controlling the flow rate of the air flow 11a toward the mixing section 3 using the flow control device 11c. In addition, the total flow rate of gas toward the filter 5 can also be adjusted. The second connection port 30d is preferably provided at a position shifted from the position of the first connection port 30b in the flow direction of the combustion gas 1a. This is to suppress turbulence in the flow of the mixed gas 3a. In the illustrated example, the second connection port 30d is disposed upstream of the first connection port 30b in the flow direction of the combustion gas 1a.
[0046] In this embodiment, the air flow 11a from the air supply device 11 of the burner 1 is used for cooling the inside of the mixing chamber 30. However, an air flow from another air supply device may be supplied into the mixing chamber 30.
[0047] (4. Filter installation section) As described above, the filter installation section 4 is a section for installing the filter 5. The filter installation section 4 can be a container body that houses the filter 5 therein. In one embodiment, the filter installation section 4 can have a cylindrical overall shape, typically a cylindrical shape. The material of the wall that defines the filter installation section 4 can be, but is not limited to, stainless steel, nickel alloy, etc. When the combustion chamber 10, the mixing chamber 30, and the filter installation section 4 are all cylindrical, they can be arranged coaxially.
[0048] The filter installation section 4 is provided with an installation section inlet 4a and an installation section outlet 4b. The installation section inlet 4a is provided at one end of the filter installation section 4 and is connected to the mixing chamber outlet 30c of the mixing chamber 30. The mixed gas 3a is supplied into the filter installation section 4 through the installation section inlet 4a. The installation section outlet 4b is provided at the other end of the filter installation section 4.
[0049] A filter 5 is installed between the installation section inlet 4a and the installation section outlet 4b. When the filter testing device is operated to generate a mixed gas 3a after the filter 5 is installed in the filter installation section 4, the mixed gas 3a from the mixing section 3 containing inorganic particles 2b passes through the filter 5. The inorganic particles 2b in the mixed gas 3a are collected by the filter 5, and a gas purified according to the performance of the filter 5 is discharged from the outlet end of the filter 5. The gas discharged from the filter 5 is discharged to the outside through the installation section outlet 4b. An exhaust system such as a duct can be connected to the installation section outlet 4b.
[0050] The temperature of the mixed gas 3a at the inlet of the filter 5 depends on the temperature of the combustion gas 1a generated by the burner 1, but can be controlled within the range of 100 to 1100°C, for example.
[0051] (5. Filter) The filter 5 to be tested by the filter testing device according to the present invention is not particularly limited as long as it has a structure capable of collecting soot and ash. Typical filters include a gasoline particulate filter (GPF) and a diesel particulate filter (DPF) that are attached to the exhaust gas line of a combustion device and collect soot and ash.
[0052] FIG. 2 is a perspective view showing a schematic example of the filter 5. FIG. 3 is a schematic cross-sectional view of the filter 5 when the filter 5 is observed from a direction perpendicular to the cell extension direction. The filter 5 shown in the figure includes an outer peripheral wall 50, a plurality of first cells 53 arranged inside the outer peripheral wall 50, extending from a first end face 51 to a second end face 52, opening at the first end face 51 and plugged at the second end face 52, and a plurality of second cells 54 arranged inside the outer peripheral wall 50, extending from the first end face 51 to the second end face 52, plugged at the first end face 51 and opening at the second end face 52. The filter 5 shown in the figure also includes a porous partition wall 55 that partitions the first cells 53 and the second cells 54, and the first cells 53 and the second cells 54 are alternately arranged adjacent to each other with the partition wall 55 in between.
[0053] When a mixed gas 3a containing inorganic particles 2b simulating ash is supplied to the first end face 51 on the upstream side of the filter 5, the mixed gas 3a is introduced into the first cell 53 and proceeds downstream inside the first cell 53. Since the second end face 52 on the downstream side of the first cell 53 is plugged, the mixed gas 3a passes through the porous partition wall 55 that separates the first cell 53 from the second cell 54 and flows into the second cell 54. Since the inorganic particles 2b cannot pass through the partition wall 55, they are collected and deposited in the first cell 53. After the inorganic particles 2b are removed, the clean exhaust gas that has flowed into the second cell 54 proceeds downstream inside the second cell 54 and flows out from the second end face 52 on the downstream side. When the filter 5 is installed in this orientation, the end of the filter 5 on the first end face 51 side can be called the inlet end, and the end of the filter 5 on the second end face 52 side can be called the outlet end.
[0054] The material of the filter 5 is not limited, but may be porous ceramics. Examples of ceramics include cordierite, mullite, zircon, aluminum titanate, silicon carbide, zirconia, spinel, indialite, sapphirine, corundum, titania, etc. These ceramics may be contained alone or in combination of two or more kinds.
[0055] It is preferable to can the outer peripheral wall 50 of the filter 5 so that no gap occurs between the outer peripheral wall 50 of the filter 5 and the inner wall of the filter installation section 4 .
[0056] (Filter test method) The filter testing method of the present invention includes the steps of generating a combustion gas 1a by a burner 1, generating a particle-containing gas 2a containing inorganic particles 2b simulating ash, generating a mixed gas 3a by mixing the combustion gas 1a and the particle-containing gas 2a, and collecting the inorganic particles 2b in the mixed gas 3a with a filter 5 to deposit the inorganic particles 2b on the filter 5, and evaluating the performance of the filter 5. This filter testing method can be carried out in the filter testing device of Fig. 1. The average particle size, angle of repose, and material of the inorganic particles 2b are as described above. EXAMPLES
[0057] The following examples are provided to better understand the present invention and its advantages, but the present invention is not limited to these examples.
[0058] (1.Preparing the filter) A DPF with the following specifications was prepared for the test. Material: Made of SiC Shape: Cylindrical Dimensions: diameter 228.6mm x height 184.2mm (volume: 7560177mm 3 ) Cell density: 46.5 cells / cm 2 Partition thickness: 150μm Cell shape (cross-sectional shape of the cell in a cross section perpendicular to the length of the cell): Square Porosity of partition wall: 41% Average pore size of partition wall: 11μm Structure: A columnar honeycomb structure portion having a plurality of first cells extending from a first end face to a second end face, the first end face being open and the second end face being plugged, a plurality of second cells extending from the first end face to the second end face, the second end face being open and the first end face being plugged, and porous partition walls that define the first cells and the second cells. The first cells and the second cells are alternately arranged adjacent to each other with the partition walls in between, and each end face has a checkerboard pattern.
[0059] (2. Test Equipment Configuration) We created a filter test device with the structure shown in Figure 1. The specifications of each part are as follows: The combustion chamber, mixing chamber, and filter installation part were approximately cylindrical, and were arranged coaxially.
[0060] (3. Accumulation of inorganic particles in filters) After the filter was installed in the filter installation section, the main burner and particle-containing gas generation section of the filter test device were operated under the following conditions to generate a mixed gas, and the inorganic particles in the mixed gas were collected by the filter. <Main burner> The high temperature regeneration burner was operated according to the following criteria: Combustion air: Compressed air from the compressor was controlled at 7.5 Nm using a mass flow controller. 3 / min flow rate, average flow velocity 14m / sec Fuel: Propane gas from a cylinder is regulated at 0.033 Nm using a mass flow controller. 3 / min flow rate Average air excess ratio: 4.6 Combustion gas temperature at the filter inlet: 300°C <Feeder> Structure: Powder quantitative feeder (Micron Feeder TF-70-CT manufactured by Aisin Nano Technologies Co., Ltd.) Inorganic particle types: calcium carbonate, calcium sulfate, 17 types of heavy calcium carbonate, No. 4 white fused alumina, No. 5 white fused alumina, and silicon carbide (SiC) (each is a test powder specified in JIS Z 8901; see Table 1 below for the average particle size and angle of repose of each). Supply rate of inorganic particles: 1.0 g / min (per 1 L of the above filter volume) Method: Pressure feed type (inorganic particles are supplied to an air supply pipe connected to an air supply device placed upstream of the feeder) Air pressure: 0.1MPaG
[0061] Under the above conditions, inorganic particles were deposited on the filter in an amount equivalent to the volume of the engine accelerated ash. More specifically, the volume of the inorganic particles deposited on the filter was set within ±5% by volume of the volume of the ash in the engine accelerated ash test.
[0062] As described above, the initial pressure loss of the filter was measured using a test specimen in which various inorganic particles were deposited on the filter. The initial pressure loss of the filter was measured using a large wind tunnel tester. At this time, the gas temperature was 25°C and the gas flow rate was 2 Nm 3 / min, 2Nm 3 / min, change the flow rate to 10Nm 3 / min. The measurement results of the initial pressure loss are shown in Figure 4. When calcium carbonate and 17 types of heavy calcium carbonate were used as the inorganic particles, clogging occurred in the filter cells, making it difficult to measure the initial pressure loss. For this reason, the initial pressure loss when calcium carbonate and 17 types of heavy calcium carbonate were used is not shown in Figure 4. On the other hand, for comparison, Figure 4 also shows the initial pressure loss in a filter on which engine acceleration ash was deposited.
[0063] In addition, using a test specimen in which various inorganic particles were deposited on the filter as described above, the pressure loss (PM pressure loss) was measured while PM was deposited on the filter. Exhaust gas containing soot at 200°C was generated using a soot generator that generates soot using a burner fueled by diesel. This exhaust gas was passed through a filter with a pressure of 5.3 Nm3 PM was allowed to flow into the filter at a flow rate of 100 / min, and the amount of PM accumulated in the filter was gradually increased while measuring pressure loss at several points up to 8g / L. The PM pressure loss measurement results are shown in Figure 5. When calcium carbonate and 17 types of heavy calcium carbonate were used as the inorganic particles, clogging occurred in the filter cells, making it difficult to measure PM pressure loss. For this reason, the PM pressure loss when calcium carbonate and 17 types of heavy calcium carbonate were used are not shown in Figure 5. On the other hand, for comparison, Figure 5 also shows PM pressure loss in a filter on which engine acceleration ash had accumulated.
[0064] The physical properties of the inorganic particles (average particle size and angle of repose) are shown in Table 1. Table 1 also shows the results of comparing the initial pressure loss and PM pressure loss in the filter on which each inorganic particle was deposited with the initial pressure loss and PM pressure loss in the filter on which engine acceleration ash was deposited. [Table 1]
[0065] As shown in Figures 4 and 5, the measurement results of the initial pressure loss and PM pressure loss when calcium sulfate was used as the inorganic particles (Comparative Example 2) were significantly different from the measurement results of the initial pressure loss and PM pressure loss when engine acceleration ash was used. On the other hand, the measurement results of the initial pressure loss and PM pressure loss when No. 4 white fused alumina, No. 5 white fused alumina, and SiC were used as the inorganic particles (Examples 1 to 3) were closer to the measurement results of the initial pressure loss and PM pressure loss when engine acceleration ash was used than in Comparative Example 2. In particular, the measurement results of the initial pressure loss and PM pressure loss when No. 5 white fused alumina was used as the inorganic particles (Example 2) were quite close to the measurement results of the initial pressure loss and PM pressure loss when engine acceleration ash was used.
[0066] If the average particle size of the inorganic particles 2b is too small, the inertia is too small for the inorganic particles 2b to reach the outlet end of the filter 5, and the inorganic particles 2b end up adhering to the partition walls on the way to the outlet end. In addition, if the angle of repose of the inorganic particles 2b is too large, the fluidity of the inorganic particles 2b cannot be ensured, the adhesion of the inorganic particles 2b is high, and the cells of the filter 5 at the inlet side of the filter 5 are blocked by the inorganic particles 2b.
[0067] Based on No. 4 white fused alumina, which has the smallest average particle size and the largest inorganic particles 2b among Examples 1 to 3, it can be understood that it is preferable that the average particle size of the inorganic particles is 10 μm or more and that the angle of repose of the inorganic particles is 50 degrees or less. Based on Examples 2 and 3, it can be understood that it is more preferable that the angle of repose of the inorganic particles is 45 degrees or less. Based on Example 2, it can be understood that it is more preferable that the average particle size of the inorganic particles is 25 μm or more. [Explanation of symbols]
[0068] 1: Burner 1a: Combustion gas 2: Particle-containing gas generating section 2a: Particle-containing gas 2b: Inorganic particles 3: Mixing section 3a: Mixed gas 4: Filter installation section 5: Filter
Claims
1. a burner for generating combustion gas; A particle-containing gas generating unit for generating a particle-containing gas containing inorganic particles simulating ash; a mixing section for generating a mixed gas by mixing the combustion gas and the particle-containing gas; a filter installation section provided in a flow path of the mixed gas generated in the mixing section, for installing a filter that collects the inorganic particles in the mixed gas; Equipped with The inorganic particles have an average particle size of 10 μm or more, and an angle of repose of the inorganic particles is 50 degrees or less. Filter testing equipment.
2. The inorganic particles are at least one of alumina and silicon carbide.
2. The filter testing apparatus of claim 1.
3. The angle of repose of the inorganic particles is 45 degrees or less.
3. A filter testing device according to claim 1 or 2.
4. The inorganic particles have an average particle size of 25 μm or more. A filter testing device according to any one of claims 1 to 3.
5. generating combustion gases by a burner; generating a particle-containing gas containing inorganic particles simulating ash; generating a mixed gas by mixing the combustion gas and the particle-containing gas; a step of collecting the inorganic particles in the mixed gas with a filter, thereby depositing the inorganic particles on the filter, and evaluating the performance of the filter; Including, The inorganic particles have an average particle size of 10 μm or more, and an angle of repose of the inorganic particles is 50 degrees or less. Filter test methods.
6. The inorganic particles are at least one of alumina and silicon carbide.
6. The method of claim 5.
7. The angle of repose of the inorganic particles is 45 degrees or less.
7. The filter testing method according to claim 5 or 6.
8. The inorganic particles have an average particle size of 25 μm or more. The filter testing method according to any one of claims 5 to 7.
Citation Information
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