Particulate Filter Processing

By spraying fire-resistant dry powder on the inlet surface of the automobile emission filter and using the combination of the main airflow and auxiliary airflow, the problem of low filter efficiency and large back pressure fluctuations during the initial use and regeneration of the filter is solved, achieving more efficient filtration and more stable back pressure control.

JP7674335B2Active Publication Date: 2025-05-09JOHNSON MATTHEY PLC
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2022507495
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-08-15
Filing Date
2020-08-13
Publication Date
2025-05-09
Estimated Expiration
2040-08-13

AI Technical Summary

Technical Problem

The existing automotive emissions particular matter (PM) filters have low filter efficiency during initial use, regeneration and under high load conditions, and it is difficult to effectively control the filter back pressure, affecting engine performance and fuel efficiency.

Method used

By spraying and introducing dry powder made of refractory materials on the inlet surface of the filter, the combination of the main airflow and the auxiliary airflow ensures that the dry powder is uniformly applied to the porous structure of the filter, and the spraying process is controlled by monitoring the back pressure.

Benefits of technology

Improves filter efficiency during initial use and regeneration, reduces back pressure fluctuations, extends the service life of the filter, and improves the fuel efficiency of the engine.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007674335000011
    Figure 0007674335000011
  • Figure 0007674335000012
    Figure 0007674335000012
  • Figure 0007674335000013
    Figure 0007674335000013
Patent Text Reader

Abstract

A method and apparatus (1) for treating a filter (2) for filtering particulate matter from exhaust gases is disclosed. A reservoir (3) containing a dry powder (4) is provided. A vacuum generator (6) establishes a primary gas flow through the porous structure of the filter (2) by applying a pressure drop to the outlet face of the filter (2). A spraying device (7) receives the dry powder (4) from a transport device (8) and sprays the dry powder (4) toward the inlet face of the filter (2). A controller (9) is configured to control the operation of at least the vacuum generator (6) and the spraying device (7).
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present disclosure relates to a method of treating a filter for filtering particulate matter from an exhaust gas. In particular, the present invention relates to an improved method of coating a filter comprising a porous substrate having an inlet surface and an outlet surface, the inlet surface being separated from the outlet surface by a porous structure. The filter may be a wall-flow filter. [Background technology]

[0002] There are concerns regarding emissions of particulate matter (PM), commonly referred to as soot, from internal combustion engines, particularly diesel and gasoline engines for automotive applications. The main concerns relate to potential health effects, specifically those related to very small particles with sizes in the nanometer range.

[0003] Diesel particulate filters (DPFs) and gasoline particulate filters (GPFs) have been manufactured using a variety of materials, including sintered metal, ceramic, or metal fibers, but the most common type in practical mass production is the wall-flow variety, made from porous ceramic materials fabricated in the form of a monolithic array of many small channels running along the length of the body. The alternating channels are plugged at one end, so that the exhaust gases are forced through the porous ceramic channel walls, which prevent most of the particulates from passing through, so that only the filtered gases enter the environment. Ceramic wall-flow filters in commercial production include those made from cordierite, various forms of silicon carbide, and aluminum titanate. The actual shape and dimensions of the practical filter on a vehicle, as well as characteristics such as the thickness of the channel walls and their porosity, depend on the application involved. The average size of the pores in the filter channel walls of a ceramic wall-flow filter through which the gases pass is typically in the range of 5 to 50 μm, usually about 20 μm. In sharp contrast, most diesel exhaust particulate matter from modern passenger car high speed diesel engines is very small in size, for example between 10 and 200 nm.

[0004] Some PM may be retained within the pore structure in the filter wall, which in some applications may gradually build up until the pores are bridged by a network of PM, which then readily leads to the formation of a particulate cake on the inner walls of the filter channels. The particulate cake is an excellent filter medium, and its presence results in very high filtration efficiency. In some applications, soot is continuously burned on the filter as it is deposited, which prevents the particulate cake from building up on the filter.

[0005] In some filters, for example light-duty diesel particulate filters, it is necessary periodically to remove trapped PM from the filter to prevent excessive backpressure buildup that can be detrimental to engine performance and reduce fuel economy. In diesel applications, the retained PM is removed from the filter by burning it in air during a process during which the amount of available air and the amount of excess fuel used to achieve the high temperatures required to ignite the retained PM are very carefully controlled. Towards the end of this process, usually called regeneration, removal of the last remaining particles in the filter can significantly reduce the filtration efficiency and lead to a burst release of many small particles into the environment. Thus, filters can have low filtration efficiency when they are first used, after each subsequent regeneration event, and during the latter parts of each regeneration process.

[0006] It is therefore desirable to constantly improve and / or maintain filtration efficiency, for example during the initial life of the filter when first used, and / or during and immediately thereafter regeneration, and / or when soot accumulates on the filter.

[0007] Liu, X., Szente, J., Pakko, J., Lambert, C. et al., "Using Artificial Ash to Improve GPF Performance at Zero Mileage," SAE Technical Paper 2019-01-0974, 2019, doi:10.4271 / 2019-01-0.1-0974, describes a process for loading submicron alumina particles generated by an atomizer onto a bare filter substrate to create an "artificial ash" coating for reducing soot emissions under cold start conditions. The process consists of generating aerosol particles by atomizing a liquid suspension with compressed air, drying the resulting ash-containing droplets by running them through an oven, and loading the dried ash particles into a filter via their capture by filtration. The process utilizes a high-capacity atomizer (model PLG-2100 (PALAS, Germany)) to provide a flow rate of 100 liters / min for a full-sized brick. Filter loading is monitored by the pressure drop across the filter and the PM concentrations before and after the filter recorded by a DustTrak aerosol monitor (TSI Inc, Minnesota, USA). Although the process has shown a reduction in soot emissions under cold start conditions, it is limited to materials that can be spray dried, requires an atomizer, drying oven and aerosol monitor, and artificial ash loading conditions may be constrained by the conditions necessary to achieve complete drying of the liquid aerosol before it reaches the filter substrate.

[0008] WO 2011 / 151711 describes a method for making a filter for filtering particulate matter from exhaust gases emitted from a lean-burn internal combustion engine. The filter includes a porous substrate having an inlet surface and an outlet surface, the inlet surface being separated from the outlet surface by a porous structure comprising pores of a first average pore size. The inlet surface comprises a crosslinked network comprising interconnected particles of a refractory material throughout the pores of the porous structure. The method includes contacting the inlet surface of the filter substrate with an aerosol comprising the refractory material in dry powder form. Although the process has shown a reduction in PM emissions of the filter when first used and after each subsequent regeneration event, it would be desirable to provide an improved process, particularly with respect to controllability of the parameters of the filters produced.

[0009] US Patent Application Publication No. 2019 / 0048771 describes an engine exhaust particulate filter including a porous substrate having inert nanoparticles thereon in a concentration ranging from 0.01 g / L to 60 g / L of filter volume of the substrate, a portion of the nanoparticles configured and arranged to form a regeneration resistant porous structure configured to capture particulates from the exhaust gas stream. The filter is intended to provide an improvement in the zero kinetic efficiency of the particulate filter, however it would be desirable to provide an improved process, particularly to improve process controllability and flexibility. Summary of the Invention

[0010] In a first aspect, the present disclosure provides a method of treating a filter for filtering particulate matter from an exhaust gas, the method comprising: a) containing a dry powder in a reservoir; b) placing a filter in a filter holder, the filter comprising a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure; c) establishing a primary gas flow through the porous structure of the filter by applying a pressure drop across the outlet face of the filter; d) transferring the dry powder from the reservoir to a spray device located upstream of the inlet face of the filter; e) spraying a dry powder towards the inlet surface of the filter using a spraying device such that the dry powder is entrained in the primary gas flow and passes through the inlet surface of the filter and contacts the porous structure.

[0011] Advantageously, it has been found that establishing the primary gas flow by applying a pressure drop across the outlet face of the filter can provide a more controllable process.

[0012] Preferably, the transfer of dry powder from the reservoir to the spraying device can be controlled independently of establishing and controlling the primary gas flow, and optionally the spraying of dry powder toward the inlet face of the filter can be controlled independently of establishing and controlling the primary gas flow. Advantageously, by controlling the transfer and / or spraying of dry powder from the reservoir to the spraying device independently of establishing and controlling the primary gas flow, a more controllable process can be achieved. For example, the gas flow rate and / or volumetric flow rate of the primary gas flow can be changed without changing the transfer flow rate and / or velocity and / or spraying rate of dry powder from the spraying device. This is in contrast to the method in which the primary gas flow through the filter is also used to fluidize the dry powder.

[0013] Preferably, the primary gas flow is established before the dry powder is transferred to the spraying device and sprayed towards the inlet face. Advantageously, this may allow a more uniform gas flow to be established throughout the porous structure before the start of spraying of the dry powder. This may then achieve a better dispersion of the dry powder into and through the porous structure.

[0014] Preferably, in step d), a secondary gas flow separate from the primary gas flow is used to assist the transfer of dry powder to the spray device. Preferably, the secondary gas flow is controllable independently of the primary gas flow. Beneficially, by controlling the primary gas flow independently of controlling the secondary gas flow, a more controllable process can be achieved. For example, the volumetric flow rate of the secondary gas flow can be selected to optimize the spray characteristics of the dry powder at one or more outlets of the spray device, and separately, the volumetric flow rate of the primary gas flow can be selected to optimize the deposition of the dry powder in the porous structure of the filter.

[0015] In various embodiments, the method further includes the step of f) ceasing spraying of the dry powder toward the inlet face of the filter, wherein the primary gas flow is a continuous gas flow from step c) to step f) and the secondary gas flow is applied only during a portion of the period from step c) to step f). The secondary gas flow may be applied as a single burst or multiple intermittent bursts during said portion of the period from step c) to step f).

[0016] In various embodiments, the method further comprises the step g) of maintaining a primary gas flow through the porous structure of the filter for a period of time after cessation of the spraying of the dry powder in step f).

[0017] The secondary gas stream may comprise a stream of compressed gas, preferably air.

[0018] A secondary gas flow may be used to assist in the transport of the dry powder to the spray device and to dispense the dry powder from the spray device. Advantageously, using the same gas flow to assist in the transport of the dry powder and the spraying of the dry powder may provide a more controllable and / or simplified method.

[0019] In various embodiments, the spray device can be a compressed air gun.

[0020] Preferably, the method includes using a vacuum generator to establish a primary gas flow through the porous structure of the filter. Preferably, the level of pressure drop generated by the vacuum generator can be controlled independently of the rate or mass flow rate of transfer of the dry powder from the reservoir to the spray device. Advantageously, this can provide a more controllable process.

[0021] The primary gas flow is 10 m 3 / hour ~5,000m 3 / hour, preferably 400m 3 / hour ~2,000m 3 / hour, preferably 600m 3 / hour~1000m 3 / time volume flow rate.

[0022] In various embodiments, the method further includes monitoring the backpressure of the filter during at least step e) Preferably, the method further includes using a pressure sensor, preferably a single pressure sensor, to monitor the backpressure.

[0023] A pressure sensor, preferably a single pressure sensor, may be disposed in a filter holder or other housing fluidly connected to the outlet face of the filter.

[0024] In various embodiments, the method further comprises stopping the spraying of the dry powder towards the inlet face of the filter when a predetermined back pressure of the filter is reached. The back pressure is defined as the pressure difference between the inlet face and the outlet face of the filter. The inlet face of the filter may be exposed to atmospheric pressure. As a result, in such an arrangement, the back pressure may be measured by measuring the pressure at the outlet face of the filter with a single pressure sensor. Advantageously, this may allow for a more controllable and reproducible method, which may in particular avoid undesirable large back pressure of the filter.

[0025] The predetermined back pressure may be an absolute back pressure. 3The back pressure can be measured, for example, by using a SF-1020 Probench from SuperFlow Dynamometers & Flowbench (Susense, WI, USA).

[0026] In various embodiments, the method further comprises monitoring the backpressure of the filter during at least steps c) and e), preferably at least steps c), d) and e). Preferably, the method further comprises using a pressure sensor, preferably a single pressure sensor, to monitor the backpressure. The pressure sensor, preferably a single pressure sensor, may be disposed in a filter holder or other housing fluidly connected to the outlet face of the filter. The same pressure sensor, preferably the same single pressure sensor, may be used to monitor the backpressure of the filter during at least steps c) and e).

[0027] In various embodiments, the method further comprises stopping the spraying of the dry powder towards the inlet face of the filter when a predetermined back pressure of the filter is reached. The predetermined back pressure may be a relative back pressure. A first back pressure of the filter may be measured in step c) before the dry powder is deposited in the porous structure, and a second back pressure of the filter may be measured in step e) while the dry powder is deposited in the porous structure, and the spraying of the dry powder may be stopped when the second back pressure reaches a predetermined percentage of the first back pressure. Advantageously, this may allow for a more controllable and reproducible method, which may in particular avoid undesirable large increases in the back pressure of the filter.

[0028] Preferably, the predetermined percentage is between 105% and 200%, preferably between 125% and 150%, i.e. the second backpressure may be increased from the first backpressure by 5% to 100%, preferably by 25% to 50%.

[0029] In various embodiments, the method further comprises stopping the spraying of the dry powder towards the inlet face of the filter when a predetermined total spraying time is reached, which can be between 1 and 60 seconds, preferably between 1 and 10 seconds, preferably between 1 and 5 seconds, preferably between 2 and 5 seconds, preferably 3 seconds.

[0030] In various embodiments, the method further includes ceasing spraying of the dry powder toward the inlet face of the filter when a target mass of dry powder has been sprayed toward the inlet face of the filter.

[0031] In various embodiments, the method further includes monitoring the back pressure of the filter during at least step e) and ceasing spraying of the dry powder toward the inlet face of the filter when a predetermined total spray time or a predetermined back pressure of the filter is reached. The predetermined back pressure can be an absolute back pressure.

[0032] In various embodiments, the method further includes monitoring the backpressure of the filter during at least steps c) and e), preferably during at least steps c), d) and e). The predetermined backpressure can be a relative backpressure.

[0033] In various embodiments, the method further comprises providing a maximum loading of the filter of less than 10 g / L of dry powder, preferably less than 5 g / L of dry powder, preferably less than 2 g / L of dry powder.

[0034] In various embodiments, the dry powder has a density of 0.10 g / cm 3 Less than, optionally 0.08g / cm 3 Less than, optionally 0.07g / cm 3 Less than, optionally 0.06g / cm 3 Less than, optionally 0.05g / cm 3 The tap density may be less than 1000 nm.

[0035] The dry powder preferably has a d50 (by volume) of less than 25 microns, preferably less than 20 microns, more preferably less than 10 microns.

[0036] The dry powder may include one or more refractory powders, preferably including one or more fumed refractory powders, and / or one or more aerogels. The one or more fumed refractory powders may be produced by an exothermic process, such as flame pyrolysis.

[0037] The one or more fumed refractory powders may include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides.

[0038] The one or more aerogels may include one or more of silica aerogels, alumina aerogels, carbon aerogels, titania aerogels, zirconia aerogels, ceria aerogels, metal oxide aerogels, and mixed oxide aerogels.

[0039] In various embodiments, the dry powder when aerosol deposited onto the porous substrate of the filter forms a porous coating.

[0040] In step e), the dry powder may be sprayed from one or more outlets of the spray device. The one or more outlets of the spray device may have an aperture size of 1-10 mm. The aperture may be circular, part circular, or slot shaped.

[0041] In various embodiments, the dry powder is sprayed from one or more fixed outlets of the spray device.

[0042] In various embodiments, the dry powder is sprayed from one or more movable outlets of the spray device, preferably from one or more oscillating outlets.

[0043] Preferably, the method in step e) includes channelling dry powder from a spray device to an inlet face of a filter in the flow conduit.

[0044] In various embodiments, the flow conduit provides an unobstructed flow path between the spray device and the inlet face of the filter.

[0045] In various embodiments, the flow conduit includes a flow regulator interposed between the atomizing device and the inlet face of the filter, the flow regulator acting to promote dispersion of the dry powder within the gas flow. The flow regulator may include one or more of a static mixer, a mesh, a sieve, a baffle, and an orifice plate.

[0046] The inlet face of the filter may be located 10-80 cm, preferably 15-20 cm, from the spraying device. Additionally or alternatively, the spraying device may be located at a distance from the inlet face of the filter up to 4 times the diameter of the inlet face of the filter.

[0047] In various embodiments, the method further comprises injecting the dry powder from the reservoir in step d). Injecting may include injecting by one or more of weight, volume, particle number, time. Preferably, the method comprises gravimetrically feeding the dry powder to an injection device. Injecting may use a loss-in-weight feeder. Advantageously, the use of an injection device, preferably a gravimetrically fed injection device, may make the injection of the dry powder more controllable and accurate.

[0048] In step a), the dry powder may be contained in one or more hoppers.

[0049] In step b), the filter may be placed in the holder in a vertical orientation with the inlet face uppermost. In step d), the spray device may be placed vertically above the inlet face, and preferably the spray direction of the spray device may be coaxial with the longitudinal axis of the filter, and preferably the spray direction and the longitudinal axis are coincident. Advantageously, this configuration may provide a more simplified process and better dispersion of the dry powder.

[0050] Alternatively, this configuration may be reversed and the spray device positioned vertically below the inlet face such that it sprays the dry powder upwards.

[0051] In various embodiments, the method further comprises baking the filter after step e).

[0052] In various embodiments, the method further comprises coating the filter with a washcoat, preferably a catalytic washcoat, prior to step b), after which the method may comprise the step of calcining the washcoated filter.

[0053] The porous substrate can be a wall-flow filter.

[0054] In a second aspect, the present disclosure provides an apparatus for treating a filter for filtering particulate matter from an exhaust gas, the apparatus comprising: i) a reservoir for containing a dry powder; ii) a filter holder for holding a filter, the filter being of a type including a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure; iii) a vacuum generator for establishing a primary gas flow through the porous structure of the filter in use by applying a pressure drop across the outlet face of the filter; iv) a transport device for transporting the dry powder from the reservoir towards the filter; iv) a spraying device for receiving the dry powder from the transport device and spraying the dry powder towards the inlet face of the filter; v) a controller configured to control the operation of at least the vacuum generator and the spray device.

[0055] Advantageously, it has been found that by using a vacuum generator to establish the primary gas flow, a more controllable system can be provided.

[0056] Preferably, the controller is configured to control the transfer of dry powder from the reservoir to the spraying device by the transport device independently of controlling the primary gas flow generated by the vacuum generator, and optionally, the controller is configured to control the spraying of dry powder toward the inlet face of the filter independently of controlling the primary gas flow. Advantageously, by controlling the transport device and / or the spraying device independently of controlling the vacuum generator, a more controllable device can be achieved. For example, the gas flow rate and / or volumetric flow rate of the primary gas flow can be changed without changing the transfer flow rate and / or velocity and / or spray rate of the dry powder from the spraying device. This is in contrast to a device in which a primary gas flow through a filter is also used to fluidize the dry powder.

[0057] Preferably, the controller is configured to operate the vacuum generator to establish a primary gas flow before the dry powder is transferred to the spraying device and sprayed towards the inlet face. Advantageously, this may allow a more uniform gas flow to be established throughout the porous structure before the start of spraying of the dry powder. This may then achieve a better dispersion of the dry powder into and through the porous structure.

[0058] Preferably, the transport device and / or the spray device comprises a secondary gas flow generator separate from the vacuum generator for transferring the dry powder to the spray device. Preferably, the controller is configured to control the secondary gas flow generator independently of the vacuum generator. Advantageously, by controlling the vacuum generator independently of controlling the secondary gas flow, a more controllable process may be achieved.

[0059] In various embodiments, the controller is configured to operate the vacuum generator to maintain the primary gas flow as a continuous gas flow through the porous structure and to operate the secondary gas flow generator for only a portion of the period of the primary gas flow. Preferably, the controller is configured to operate the secondary gas flow generator as a single burst or multiple intermittent bursts during the period of the primary gas flow.

[0060] The secondary gas flow generator may comprise a compressed gas generator, preferably a compressed air generator. In various embodiments, the spraying device may be a compressed air gun.

[0061] Preferably, the controller is configured to control the vacuum generator to control the level of pressure drop applied to the outlet face of the filter independently of controlling the transport device and / or the spraying device to control the rate or mass flow rate of the dry powder sprayed towards the inlet face of the filter. Advantageously, this may provide a more controllable device.

[0062] Preferably, the controller controls the gas flow to 3 / hour ~5,000m 3 / hour, preferably 400m 3 / hour ~2,000m 3 / hour, preferably 600m 3 / hour~1000m 3 The vacuum generator is configured to operate to have a volumetric flow rate of 1 / hour.

[0063] The apparatus may further comprise a pressure sensor, preferably a single pressure sensor, for monitoring the back pressure of the filter, and the controller may be configured to receive an output from the pressure sensor. The pressure sensor, preferably a single pressure sensor, may be located within the vacuum generator, preferably within a filter holder or other housing of the vacuum generator.

[0064] Preferably, the controller is configured to stop spraying the dry powder towards the inlet face of the filter when a predetermined back pressure on the filter is reached. The predetermined back pressure may be an absolute back pressure. Advantageously, this may avoid undesirably large back pressure on the filter.

[0065] The predetermined backpressure may be a relative backpressure. The controller may be configured to obtain a first backpressure of the filter from the pressure sensor before the dry powder is deposited in the porous structure and a second backpressure of the filter while the dry powder is deposited in the porous structure, and the controller may be configured to stop spraying the dry powder when the second backpressure reaches a predetermined percentage of the first backpressure. Advantageously, this may avoid undesirable large increases in the backpressure of the filter.

[0066] Preferably, the predetermined percentage is between 105% and 200%, preferably between 125% and 150%, i.e. the second backpressure may be increased from the first backpressure by 5% to 100%, preferably by 25% to 50%.

[0067] In various embodiments, the controller can be configured to stop spraying the dry powder toward the inlet face of the filter when a predetermined total spraying time is reached, which can be between 1 and 60 seconds, preferably between 1 and 10 seconds, preferably between 1 and 5 seconds, preferably between 2 and 5 seconds, preferably 3 seconds.

[0068] In various embodiments, the controller may be configured to stop spraying dry powder toward the inlet face of the filter when a target mass of dry powder has been sprayed toward the inlet face of the filter.

[0069] In various embodiments, the device includes a pressure sensor, preferably a single pressure sensor, for monitoring the back pressure of the filter, and the controller may be configured to receive an output from the pressure sensor, and the controller may be configured to stop spraying the dry powder toward the inlet face of the filter when either a predetermined total spray time or a predetermined back pressure of the filter is reached. The predetermined back pressure may be an absolute back pressure. The predetermined back pressure may be a relative back pressure.

[0070] The reservoir may contain one or more refractory powders, preferably including one or more fumed refractory powders, and / or dry powders including one or more aerogels.

[0071] The one or more fumed refractory powders may include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides.

[0072] The one or more aerogels may include one or more of silica aerogels, alumina aerogels, carbon aerogels, titania aerogels, zirconia aerogels, ceria aerogels, metal oxide aerogels, and mixed oxide aerogels.

[0073] In various embodiments, the spray device comprises one or more outlets. The one or more outlets of the spray device may comprise an aperture size of 1-10 mm. The aperture may be circular, partially circular, or slot shaped.

[0074] In various embodiments, the one or more outlets are one or more fixed outlets.

[0075] In various embodiments, the one or more outlets are one or more movable outlets, preferably one or more swingable outlets.

[0076] In various embodiments, the transport device comprises a conduit extending at least partially from the reservoir to the spraying device, the spraying device comprising a compressed air supply of a compressed air gun configured to fluidize the dry powder in at least a portion of the conduit.

[0077] Preferably, the apparatus may further comprise a flow conduit disposed between the spray device and the inlet face of the filter. The flow conduit may be empty to provide an unobstructed flow path between the spray device and the inlet face of the filter. The flow conduit may comprise a flow regulator inserted between the spray device and the inlet face of the filter, the flow regulator acting to promote dispersion of the dry powder within the gas flow. The flow regulator may comprise one or more of a static mixer, a mesh, a sieve, a baffle, and an orifice plate.

[0078] The inlet face of the filter may be located 10-80 cm, preferably 15-20 cm, from the spraying device. Additionally or alternatively, the spraying device may be located at a distance from the inlet face of the filter up to 4 times the diameter of the inlet face of the filter.

[0079] In various embodiments, the apparatus further comprises an injection device for injecting the dry powder from the reservoir. The injection device may be configured to inject by one or more of weight, volume, particle count, and time. The injection device may be a gravimetric injection device. The injection device may be a loss-in-weight feeder. Advantageously, the use of an injection device, preferably a gravimetrically fed injection device, may make the injection of the dry powder more controllable and accurate.

[0080] The reservoir may be one or more hoppers.

[0081] The filter may be placed in the holder in a vertical orientation with the inlet face uppermost. The spray device may be placed vertically above the inlet face, and preferably the spray direction of the spray device may be coaxial with the longitudinal axis of the filter, and preferably the spray direction and the longitudinal axis are coincident. Advantageously, this configuration may provide a more simplified process and better dispersion of the dry powder.

[0082] In a third aspect, the present disclosure provides a processed filter obtainable by the method of the first aspect above.

[0083] As used herein, the term "filter" refers to a porous substrate having a porous structure suitable for filtering particulate matter from exhaust gases. The porous substrate may be formed, for example, from sintered metal, ceramic, or metal fibers. The filter may be of the wall-flow variety made from a porous material, for example, a ceramic fabricated in the form of a monolithic array of many small channels running along the length of the body. For example, the filter may be formed from cordierite, various forms of silicon carbide, or aluminum titanate.

[0084] The filter may be a "bare" filter, or alternatively may have built-in catalytic functionality, such as oxidation, NOx trap, or selective catalytic reduction activity. The porous substrate may include a composition (known as a washcoat) that coats the porous structure of the filter. The washcoat may be a catalytic washcoat. The catalytic washcoat may include a catalyst selected from the group consisting of a hydrocarbon trap, a three-way catalyst (TWC), a NOx absorbent, an oxidation catalyst, a selective catalytic reduction (SCR) catalyst, a lean NOx catalyst, and combinations of any two or more thereof. The catalysts, such as the TWC, the NOx absorbent, the oxidation catalyst, the hydrocarbon trap, and the lean NOx catalyst, may contain one or more platinum group metals, particularly those selected from the group consisting of platinum, palladium, and rhodium.

[0085] As a result, the coated filter may be, for example, a catalyzed soot filter (CSF), a selective catalytic reduction filter (SCRF), a lean NOx trap filter (LNTF), a gasoline particulate filter (GPF), an ammonia slip catalyst filter (ASCF), or a combination of two or more thereof (e.g., a filter including a selective catalytic reduction (SCR) catalyst and an ammonia slip catalyst (ASC)).

[0086] The shape and dimensions of the filter, such as channel wall thickness and its porosity, and other properties, may vary depending on the intended use of the filter. The filter may be configured for use with an internal combustion engine to filter exhaust gases emitted by the internal combustion engine. The internal combustion engine may be a gasoline spark ignition engine. However, the filter finds particular application when configured for use with an internal combustion engine in the form of a diesel or gasoline engine.

[0087] As used herein, the term "dry powder" refers to a particulate composition that is not suspended or dissolved in a liquid. This does not necessarily mean that it is completely free of all water molecules. Dry powders are preferably free-flowing.

[0088] As used herein, the term "bulk density" refers to bulk density measured according to method 1 of section 2.9.34 of the European Pharmacopoeia 7.0, in which a sufficient amount of powder to complete the test is first passed through a sieve with openings of 1.0 mm or more, if necessary, to break up any agglomerates that may have formed during storage. Then, approximately 5 g (m) of the test sample, weighed to an accuracy of 0.1 percent, is introduced without compression into a dry graduated 250 mL cylinder (readable to 2 mL). If necessary, the powder is carefully leveled without compression and read in the graduated units nearest to the unsettled apparent volume (V0). g / cm 3 The bulk density of the powder is calculated using the formula m / V0.

[0089] As used herein, the term "tap density" refers to the tap density of a powder measured at 1250 taps according to Method 1 of Section 2.9.35 of the European Pharmacopoeia 7.0.

[0090] As used herein, the term "g / L" (grams per liter) refers to the mass of dry powder divided by the volume of the filter.

[0091] As used herein, the terms "loading" and "mass loading" when referring to the amount of refractory powder refer to the mass of powder added to the filter, which may be measured by weighing the filter before and after adding the powder to the filter.

[0092] As used herein, the term "envelope volume" refers to the surface volume of a filter, excluding the volume of the channels, as would be obtained by tightly shrinking a film to contain it. This includes the solid material of the filter, the open and closed pores of the porous structure of the filter, and surface defects / voids. The envelope volume of a filter can be measured by Hg intrusion porosimetry (MIP). For example, this can be performed using the following process: 1. Take six equally spaced samples from the filter. 2. Measure the envelope volume of each sample by MIP and divide by the sample mass. 3. Take the average of these and multiply by the filter mass. 4.This is the envelope volume of the filter.

[0093] As used herein, the term "d50 (by volume)" refers to d50 (by volume) measurements measured by a Malvern Mastersizer® 3000 with an Aero s dispersion unit available from Malvern Panalytics Ltd, (Malvern, UK). Dispersion conditions: air pressure = 2 barg, feed rate = 65%, hopper gap = 1.2 mm. Refractive index and absorptivity parameters are set according to the instructions provided in the Malvern Mastersizer® 3000 user manual.

[0094] As used herein, the term "filtration efficiency" refers to filtration efficiency as measured using a Cambustion® Diesel Particulate Filter Testing System available from Cambuse Ltd., Cambridge, UK, under the following test conditions: 1. Precondition the filters in a 700°C oven for 2 hours. 2. Place the filter in the test rig. a) Stabilization - 250 kg / h mass flow rate, 50°C, 5 min b) Warm-up - 250 kg / hr mass flow rate, 240°C, 5 min c) Weighing - The filter is removed from the rig and weighed. d) Warm up - Put the filter back into the rig; 250 kg / hr mass flow, 240°C, 5 min e) Loading stage - mass flow rate of 250 kg / h, 240°C, loading rate: for GPF filters 2 g / h until soot loading of 2 g / L is reached; for SCRF / CSF filters 10 g / h until soot loading of 6 g / L is reached. f) Weighing - The filter is removed from the rig and weighed.

[0095] The fuel used during the tests is Carcal RF-06-08B5.

[0096] During the test, a particle counter continuously samples downstream of the filter. Just before and just after a batch of filters is tested, an "upstream" test is run on the rig to allow the particle counter to sample the raw soot production from the rig. The upstream test is 20 minutes long and uses the same conditions as the loading phase described above. The average of the two upstream tests (pre-filter test and post-filter test) is compared with the data from the loading phase of the filter test to obtain the filtration efficiency. Filtration efficiency is quoted at a specified soot loading.

[0097] As used herein, the term "vacuum generator" refers to a device or combination of devices that function to generate a pressure drop. Non-limiting examples of suitable devices include vacuum generators that operate on the Venturi principle, vacuum pumps, such as rotary vane and liquid ring vacuum pumps, and vortex blowers.

[0098] As used herein, the term "pressure sensor" refers to a device or combination of devices that function to measure absolute and / or relative pressure. Non-limiting examples of suitable devices include pressure transducers, which may be diaphragm-type pressure transducers. For example, a Wika® P30 pressure transmitter available from WIKA Alexander Wiegand SE & Co. KG, Klingenberg, Germany, may be used.

[0099] As used herein, the term "controller" refers to functionality that may include hardware and / or software. A controller may comprise a control unit or may be a computer program running on a dedicated or shared computing resource. A controller may comprise a single unit or may be composed of multiple operatively connected sub-units. A controller may be located on one processing resource or distributed across spatially separated processing resources. A controller may include a microcontroller, one or more processors (such as one or more microprocessors), memory, configurable logic, firmware, etc. [Brief description of the drawings]

[0100] Aspects and embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings. [Figure 1] 1 is a schematic diagram of an apparatus for treating a filter for filtering particulate matter from an exhaust gas according to the present disclosure; [Diagram 2] FIG. 2 is a flow diagram illustrating a method of manufacturing a filter according to the present disclosure that incorporates a method of treating the filter using the apparatus of FIG. 1. [Diagram 3] 2 is a flow diagram illustrating a method of treating a filter for filtering particulate matter from an exhaust gas using the apparatus of FIG. 1. [Figure 4] 1 is a graph showing soot loading-backpressure response curves for various filters. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0101] Those skilled in the art will recognize that one or more features of one aspect or embodiment of the present disclosure may be combined with one or more features of any other aspect or embodiment of the present disclosure, unless the immediate context teaches otherwise.

[0102] An example of an apparatus according to the present disclosure will now be described with reference to Figure 1, which shows a schematic diagram of an apparatus 1 for treating a filter 2 for filtering particulate matter from exhaust gases. The filter 2 is of the type comprising a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure.

[0103] The apparatus 1 comprises a reservoir 3 for containing a dry powder 4. A filter holder 5 is provided for holding the filter 2. A vacuum generator 6 is provided for establishing a primary gas flow through the porous structure of the filter 2 in use by applying a pressure drop to the outlet face of the filter 2. A transport device 8 is provided for transporting the dry powder 4 from the reservoir 3 to a spraying device 7. The spraying device 7 is provided for receiving the dry powder 4 from the transport device 8 and spraying the dry powder 4 towards the inlet face of the filter 2. A controller 9 is provided configured to control the operation of the apparatus 1.

[0104] The reservoir 3 can receive the dry powder 4 from a dry powder inlet 11. The dry powder inlet 11 can be the output of an upstream bulk supply of dry powder. For example, the dry powder inlet 11 can be a conduit connected upstream of a further reservoir of dry powder 4. The dry powder inlet 11 can represent a manual, semi-automatic or automatic refill of the reservoir 3 through a lid or opening of the reservoir 3.

[0105] The reservoir 3 may comprise one or more hoppers. The reservoir 3 may comprise one hopper. In the illustrated example of FIG. 1, the reservoir 3 comprises a first hopper 12 and a second hopper 13. The second hopper 13 may be downstream of the first hopper 12 to receive the dry powder 4 output from the first hopper 12. The one or more hoppers may be provided in separate housings. Alternatively, the one or more hoppers may be provided in a single housing. The one or more hoppers may comprise one or more chambers of a single container.

[0106] The reservoir 3 may include an injection device 15. The injection device 15 may inject the dry powder 4 by one or more of weight, volume, particle number, time. The injection device 15 may be located at or near the outlet of the reservoir 3. The dosing device 15 may be located at or near the outlet of one or more hoppers of the reservoir 3. The dosing device may be located at or near the outlet of the first hopper 12.

[0107] The injection device 15 may be gravimetrically fed with dry powder 4 from a reservoir 3 .

[0108] The injection device 15 can be a loss-in-weight feeder. Non-limiting examples of suitable injection devices include the Coperion® K-Tron Type K2-ML-T35 Gravimetric Twin Screw Feeder available from Coperion GmbH, Stuttgart, Germany, and the All-Fill® Series S1 Micro-Fill available from All-Fill International Ltd, Sandy, UK.

[0109] The transport device 8 transports the dry powder 4 from the reservoir 3 to the spraying device 7. The transport device 8 may gravimetrically feed the dry powder 4 towards the spraying device 7 at least part way.

[0110] The transport device 8 may comprise one or more components. The transport device 8 may comprise one or more conduits, such as passageways, pipes, hoses, and the like.

[0111] If the reservoir 3 comprises two or more hoppers, the transport device 8 may transport the dry powder 4 between the hoppers. The transport device 8 may gravimetrically feed the dry powder 4 between the hoppers. The transport device 8 may comprise a first conduit 14 extending between the first hopper 12 and the second hopper 13. The first conduit 14 may extend from a first housing to a second housing. Alternatively, the first conduit 14 may extend from a first chamber to a second chamber of a single container. The dry powder 4 may be gravimetrically fed along the first conduit 14.

[0112] The transport device 8 may comprise a second conduit 16 extending from the second hopper 13 to the spray device 7 .

[0113] The spraying device 7 is provided for receiving the dry powder 4 from the transport device 8 and spraying the dry powder 4 towards the inlet face of the filter 2. The spraying device 7 may comprise a secondary gas flow generator for generating a secondary gas flow that may be used to spray the dry powder 4 towards the inlet face of the filter 2.

[0114] The spray device 7 may further comprise one or more outlets for discharging the dry powder 4 towards the inlet face of the filter 2. The one or more outlets of the spray device may comprise an aperture size of 1-10 mm. The aperture may be circular, part circular or slot shaped. The one or more outlets may be one or more fixed outlets. Alternatively, the one or more outlets may be one or more movable outlets, for example one or more swingable outlets.

[0115] The one or more outlets may be provided in one or more nozzles, each of which may include one or more spray outlets. In the illustrated example of Figure 1, a single nozzle 25 is provided with multiple spray outlets.

[0116] The secondary gas flow generator may comprise a compressed gas generator. In the illustrated example of Fig. 1, the secondary gas flow generator comprises a compressed air generator which may comprise a compressor 22. The compressor 22 may receive air from an air inlet 21 and supply compressed air via a supply line 23 to one or more outlets of the spraying device 7. A return line 24 may be provided. Valves and controls necessary for operation may be provided as known to those skilled in the art.

[0117] An interconnection may be provided between the transport device 8 and the spray device 7, in which the dry powder 4 is transported from the transport device 8 to the spray device 7. The interconnection may be provided at or near one or more outlets of the spray device 7. In one example, the interconnection may be provided at the nozzle 25. Alternatively, the interconnection may be provided at or near the reservoir 3, for example at or near the second hopper 13 of the reservoir 3. In one example, the interconnection is a fluid connection between the supply line 23 and the second conduit 16. For example, the secondary gas flow of the spray device 7 is fluidly connected with the second conduit 16 at or near the outlet of the second hopper 13 to fluidize the dry powder 4 and assist in the transport of the dry powder along at least a portion of the second conduit 16. For example, the secondary gas flow of the spray device 7 may entrain the dry powder 4 from the second conduit 16. For example, the secondary gas flow of the spray device 7 may create a suction force in the second conduit so as to draw the dry powder 4 into the secondary gas flow.

[0118] In one example, the spray device 7 comprises a compressed air gun. A non-limiting example of a suitable compressed air gun is the STAR Professional Gravity Feed Spray Gun 1.4 mm, part number STA 2591100C.

[0119] The filter holder 5 may function to maintain the filter 2 in a stationary position during processing. The filter holder 5 may grip the upper and / or lower ends of the filter 2. The filter holder 5 may include an inflatable upper seal bladder 31 (also referred to as an upper inflatable collar) and / or an inflatable lower seal bladder 30 (also referred to as a lower inflatable collar) that support the upper and lower ends of the filter 2, respectively. The inflatable upper seal bladder 31 and the inflatable lower seal bladder 30 may contact and / or engage with an exterior surface of the filter 2. Each may form a liquid-tight or air-tight seal around the filter 2. The inflatable upper seal bladder 31 and the inflatable lower seal bladder 30 may be supported by one or more housings (e.g., may be supported by the interior walls of one or more housings).

[0120] The apparatus 1 may be configured such that the filter 2 is disposed in the filter holder 5 in a vertical orientation with the inlet face of the filter uppermost. At least a portion of the spray device 7 may be disposed vertically above the inlet face. The spray direction of the spray device 7 may be coaxial with the longitudinal axis of the filter 2. The spray direction and the longitudinal axis of the filter 2 may coincide.

[0121] The apparatus 1 may further comprise a flow conduit 10 disposed between the spray device 7 and the inlet face of the filter 2. The flow conduit 10 may function to constrain and channel the primary gas flow towards the inlet face of the filter 2. The flow conduit 10 may function to align the primary gas flow such that the flow direction of the primary gas flow when it contacts the inlet face of the filter 2 is perpendicular to the inlet face.

[0122] The flow conduit 10 may be empty to provide an unobstructed flow path between the spray device 7 and the inlet face of the filter 2. Alternatively, the flow conduit 10 may include a flow regulator interposed between the spray device 7 and the inlet face of the filter 2, the flow regulator acting to facilitate dispersion of the dry powder 4. For example, the flow regulator may include one or more of a static mixer, a mesh, a sieve, a baffle, and an orifice plate.

[0123] The flow conduit 10 may include a tube. The flow conduit 10 may have a cross-sectional shape that matches the cross-sectional shape of the inlet face of the filter 2. The flow conduit 10 may have a size that matches the size of the inlet face of the filter 2.

[0124] The spray device 7 may extend into the flow conduit 10. One or more outlets of the spray device 7 may be disposed within the flow conduit 10. For example, the nozzle 25 may be disposed in an upper region of the flow conduit 10. The nozzle 25 may be disposed in line with the longitudinal axis of the filter 2.

[0125] The inlet face of the filter 2 may be located 10-80 cm, preferably 15-20 cm, from the spraying device, for example from the nozzle 25 of the spraying device 7. Additionally or alternatively, the spraying device may be located at a distance from the inlet face of the filter 2, for example from the nozzle 25 of the spraying device 7, that is up to four times the diameter of the inlet face 2 of the filter.

[0126] A vacuum generator 6 is provided for establishing a primary gas flow through the porous structure of the filter 2 during use by applying a pressure drop to the outlet face of the filter 2. The vacuum generator 6 may include a vacuum cone 40 which may define a funnel that engages the outlet face of the filter 2. The inflatable lower seal bladder 30 may form a seal between the outlet face of the filter 2 and the vacuum cone 40. The vacuum generator 6 may include a vacuum pump 42 connected to the flow cone by a conduit 43. The vacuum pump 42 may be controlled to control the volumetric flow rate of the primary gas stream.

[0127] The vacuum generator 6 may include a volumetric flow sensor, which may be an orifice plate 44 in combination with a pressure sensor 45 disposed along the conduit 43. The vacuum generator 6 may include a bypass conduit 46 that extends to an intake 47.

[0128] The apparatus 1 may further comprise a pressure sensor 41 for monitoring the back pressure of the filter 2. A single pressure sensor 41 may be used. The single pressure sensor 41 may be located within the vacuum generator 6, preferably within the filter holder or other housing of the vacuum generator, such as the vacuum cone 40.

[0129] The controller 9 controls the operation of at least the vacuum generator 6 and the spray device 7. In Figure 1, the operational connections between the controller 9 and the remainder of the apparatus 1 have been omitted for clarity. However, those skilled in the art will recognize that the necessary connections may be provided by any suitable means. Such connections may be wired or wireless.

[0130] The controller 9 may be configured to control the transfer of the dry powder 4 from the reservoir 3 to the spray device 7 by the transport device 8 independently of controlling the primary gas flow generated by the vacuum generator 6. For example, the controller 9 may control the operation of the injection device 15.

[0131] The controller 9 may be configured to control the spraying of the dry powder 4 toward the inlet face of the filter 2 independently of controlling the primary gas flow. The use of the term "independently" herein refers to the ability of the controller 9 to control each of the variables of the spraying of the dry powder 4 and the primary gas flow individually and without regard to the status of the other variable. For example, the controller 9 may establish the primary gas flow without simultaneously spraying the dry powder 4. For example, the controller 9 may increase or decrease the spraying rate of the dry powder 4 without changing the volumetric flow rate of the primary gas flow. For example, the controller 9 may increase or decrease the volumetric flow rate of the primary gas flow without changing the spraying rate of the dry powder 4. For example, the controller 9 may control the operation of the spraying device 7 independently of controlling the operation of the vacuum pump 42.

[0132] The controller 9 may be configured to operate the vacuum generator 6 to establish a primary gas flow before the dry powder 4 is transferred to the spraying device 7 and sprayed towards the inlet face of the filter 2.

[0133] The controller 9 may be configured to control the secondary gas flow generator, e.g., compressor 22, independently of the vacuum generator 6. The controller 9 may be configured to operate the vacuum generator 6 to maintain the primary gas flow as a continuous gas flow through the porous structure, and to operate the secondary gas flow generator, e.g., compressor 22, for only a portion of the period of the primary gas flow.

[0134] The controller 9 may be configured to control the vacuum generator 6 to control the level of pressure drop applied to the outlet face of the filter 2 independently of controlling the transport device 8 and / or the spraying device 7 in order to control the velocity or mass flow rate of the dry powder 4 sprayed towards the inlet face of the filter 2.

[0135] The controller 9 may be configured to stop spraying of the dry powder 4 towards the inlet face of the filter 2 when a predetermined backpressure of the filter 2 is reached, for example as detected by the pressure sensor 41. The predetermined backpressure may be an absolute backpressure or a relative backpressure.

[0136] The controller 9 may be configured to stop spraying of the dry powder 4 towards the inlet face of the filter 2 when a predetermined total spraying time is reached.

[0137] The apparatus 1 may be used to treat a filter with one or more refractory powders, preferably including one or more fumed refractory powders, and / or a dry powder 4 including one or more aerogels. The one or more fumed refractory powders may include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides. The one or more aerogels may include one or more of silica aerogels, alumina aerogels, carbon aerogels, titania aerogels, zirconia aerogels, ceria aerogels, metal oxide aerogels, and mixed oxide aerogels.

[0138] Dry powder 4 is 0.10 g / cm 3 Less than, optionally 0.08g / cm 3 Less than, optionally 0.07g / cm 3 Less than, optionally 0.06g / cm 3 Less than, optionally 0.05g / cm 3 The dry powder 4 preferably has a d50 (by volume) of less than 25 microns, preferably less than 20 microns, more preferably less than 10 microns.

[0139] An example of a method for treating a filter according to the present disclosure will now be described with reference to Figure 2, which shows a flow diagram illustrating a method for manufacturing a filter 2 incorporating the use of an apparatus 1. By way of example, the method will be described with reference to a filter 2 provided with a catalytic coating.

[0140] In step S21, a catalyst slurry is prepared by methods known in the art.

[0141] In step S22, a washcoat is prepared from the catalyst slurry by methods known in the art. The washcoat can be, for example, a hydrocarbon trap, a three-way catalyst (TWC), a NOx absorbent, an oxidation catalyst, a selective catalytic reduction (SCR) catalyst, a lean NOx catalyst, and combinations of any two or more thereof.

[0142] In step S23, the washcoat is poured and applied to the bare filter 2 by methods known in the art. For example, the washcoat may be applied to a first side (e.g., top side) of the filter 2, and an opposite second side (e.g., bottom side) of the filter 2 may be subjected to at least a partial vacuum to effect migration of the washcoat through the porous structure of the filter 2. The filter 2 may be coated in one pour, where the washcoat may be applied to the filter 2 in a single step, leaving the filter 2 in a single orientation. Alternatively, the filter 2 may be coated in two pours. For example, in the first pour, the filter 2 may be in a first orientation with the first side uppermost and the second side lowermost. The coating may be applied to the first side, coating a portion of the length of the filter 2. The filter 2 may then be flipped so that the second side is uppermost. A coating may then be applied to the second side to coat the portions of the filter 2 that were not coated in the first pour. Advantageously, the two-injection process allows for different coatings to be applied to each end of the filter 2 .

[0143] In step S24, the filter 2 may be dried.

[0144] In step S25, the filter 2 may be fired by methods known in the art.

[0145] In optional step S26, the backpressure of the filter 2 before treatment may be measured.

[0146] In optional step S27, filter 2 may be placed in stock to await processing. Then, in step S28, filter 2 may be removed from stock and sent for processing. Alternatively, filter 2 may be processed immediately, i.e., by proceeding directly to step S29.

[0147] In step S29, Filter 2 is processed in accordance with the present disclosure, as described in further detail below with reference to FIG.

[0148] In step S30, after treatment, the filter 2 may be baked by methods known in the art.

[0149] In optional step S31, the backpressure of the filter 2 after treatment may be measured.

[0150] In step S32, the completed filter 2 may be prepared for shipment to a customer.

[0151] FIG. 3 is a flow diagram showing the process of step S29 in FIG.

[0152] In step S29-1, a filter may be loaded into a filter holder 5. The filter 2 may be held in a stationary position during processing. The filter 2 may be gripped at its upper and / or lower ends by the filter holder 5. The inflatable upper seal bladder 31 and the inflatable lower seal bladder 30 may be inflated to contact and / or engage an exterior surface of the filter 2. The filter 2 may be held in a vertical orientation with the inlet face of the filter uppermost. Operation of the filter holder 5, such as the inflation of the inflatable upper seal bladder 31 and the inflatable lower seal bladder 30, may be controlled by the controller 9.

[0153] In step S29-2, the vacuum generator 6 may be activated by the controller 9 to establish a primary gas flow through the filter 2. Preferably, the primary gas flow is established before the dry powder 4 is transferred to the spraying device 7 and sprayed towards the inlet face of the filter 2. The level of pressure drop generated by the vacuum generator 6 may be controlled by the controller 9 independently of the rate or mass flow rate of transfer of the dry powder 4 from the reservoir 3 to the spraying device 7. The primary gas flow may be greater than 10 m 3 / hour ~5,000m 3 / hour, preferably 400m 3 / hour ~2,000m 3 / hour, preferably 600m 3 / hour~1000m 3 / time volume flow rate.

[0154] In step S29-3, the backpressure of filter 2 may be measured while the primary gas flow is established but before the secondary gas flow is established. The backpressure may be measured through the use of pressure sensor 41. The backpressure measurement in step S29-3 may be in addition to or in place of the backpressure measurement of step S26. Alternatively, the backpressure measurement of step S26 may be used in place of the backpressure measurement of step S29-3. The backpressure measurement of step S26 and / or the backpressure measurement of step S29-3 may be used by controller 9 as a measure of the first backpressure of filter 2 before processing.

[0155] In step S29-4, the dry powder 4 is sprayed by the spraying device 7 onto the inlet face of the filter 2. During spraying of the dry powder 4, the dry powder 4 may be fed to the spraying device 7 by a transport device 8.

[0156] The spraying of dry powder 4 towards the inlet face of the filter 2 is preferably controllable by a controller 9 independently from establishing and controlling the primary gas flow.

[0157] During step S29-4, for example, a secondary gas flow provided by the compressor 22, separate from the primary gas flow, may be used to transport the dry powder 4 from the reservoir 3 to the spraying device 7. Preferably, the secondary gas flow is controllable by the controller 9 independently of the primary gas flow. For example, the controller 9 may control the operation of the compressor 22 and / or the valves and / or the nozzles 25 of the spraying device 7 independently of controlling the operation of the vacuum pump 42. The dry powder 4 may be sprayed towards the inlet face of the filter 2 by using the secondary gas flow. The secondary gas flow may comprise a flow of compressed gas, preferably air.

[0158] During step S29-4, the primary gas flow is preferably maintained as a continuous flow. During step S29-4, the secondary gas flow may be applied as a single burst or multiple intermittent bursts.

[0159] In step S29-5, the back pressure of the filter 2 may be monitored. The back pressure may be monitored by use of pressure sensor 41. The controller 9 may be configured to stop spraying of the dry powder 4 towards the inlet face of the filter 2 when a predetermined back pressure is reached. If the predetermined back pressure has not yet been reached, the controller 9 is configured to return to step S29-4 and continue spraying of the dry powder 4. This feedback may be continuous and need not involve any pause in the spraying of the dry powder 4, i.e., the controller 9 may continuously monitor the back pressure of the filter 2 as the spraying of the dry powder 4 is in progress.

[0160] The predetermined back pressure may be an absolute back pressure. The absolute back pressure may be 600 m 3 The flow rate can be 20-180 mbar / hour.

[0161] Alternatively, the predetermined backpressure may be a relative backpressure. For example, the backpressure relative to the first backpressure of the filter 2 before processing measured in step S26 and / or step S29-3 may be used. The backpressure may be measured as a percentage of the first backpressure. The predetermined backpressure when the spraying of the dry powder 4 is stopped may be 105% to 200%, preferably 125% to 150%, of the first backpressure.

[0162] Additionally or alternatively, spraying of the dry powder 4 towards the inlet face of the filter 2 may be stopped when a predetermined total spraying time is reached. The predetermined total spraying time may be between 1 and 60 seconds, preferably between 1 and 10 seconds, preferably between 1 and 5 seconds, preferably between 2 and 5 seconds, preferably 3 seconds.

[0163] The controller 9 can be configured to stop spraying the dry powder 4 towards the inlet face of the filter 2 when either a predetermined total spray time or a predetermined back pressure on the filter is first reached or a target mass of dry powder has been sprayed towards the inlet face of the filter.

[0164] In step S29-6, the spraying of the dry powder 4 is stopped. For example, this may be achieved by the controller 9 stopping the transfer of the dry powder by the transport device 8 and / or stopping the secondary gas flow of the spraying device 7. Preferably, in step S29-6, the primary gas flow through the porous structure of the filter 2 is maintained for a period of time after the spraying of the dry powder 4 has stopped. The controller 9 may be configured to operate the vacuum generator 6 for a period of time after the spraying of the dry powder 4 has stopped.

[0165] Optionally, in step S29-6, the amount of dry powder 4 delivered towards the inlet face of the filter 2 may be measured. The controller 9 is configured to determine the amount of dry powder 4 delivered, for example, from a signal output from the injection device 15, for example from an output from a loss-in-weight feeder.

[0166] The method may be configured to deliver a maximum loading of dry powder 4 of the filter 2 of less than 10 g / L, preferably less than 5 g / L, preferably less than 2 g / L of dry powder 4.

[0167] In step S29-7, the primary gas flow through filter 2 is stopped. This may be accomplished by the controller 9 shutting down the vacuum generator 6, i.e., shutting down the vacuum pump 42. Alternatively, this may be accomplished by the controller manipulating a valve on the vacuum generator 6 to redirect suction through the bypass conduit 46 to draw air through the intake 47. This may avoid the need to shut down the vacuum pump 42 between processing of successive filters 2, which may result in faster cycle times.

[0168] In step S29-8, the filter 2 is removed from the filter holder 5, for example, by deflating the inflatable upper seal bladder 31 and the inflatable lower seal bladder 30. The filter 2 may then be removed and proceed to step S30 as described above.

[0169] FIG. 4 is a graph showing the soot loading-backpressure response curves of a reference filter that is not treated with fireproofing and two exemplary filters (Example A and Example B) that are treated with fireproofing powder. The reference filter shows a backpressure response that increases sharply from the beginning up to about 0.4 g / L of soot loading. The response curve then becomes a substantially linear loading-backpressure response for soot loadings above about 0.4 g / L. In comparison, the Example A and Example B filters show a substantially linear loading-backpressure response for soot loadings only above 0.1 g / L. Furthermore, the absolute backpressure at a particular soot loading level is significantly less than the reference filter. As a result, the treated filters of Examples A and B have a substantially linear backpressure-soot loading response, except for very small initial soot loadings of about 0.05 g / L.

[0170] In accordance with the present disclosure, a treated filter may be provided that has one or more advantages over prior art filters. Preferably, but not exclusively, the treated filter may be treated in accordance with the present disclosure and / or may be treated using an apparatus in accordance with the present disclosure. EXAMPLES

[0171] Standard Filling Process In the following examples, unless otherwise specified, treated filters were loaded with refractory powder using the following "standard" loading process using equipment of the type shown in FIG.

[0172] 1 The diameter of the flow conduit was the same as the inlet face of the filter. 2 550m 3 The primary gas flow of 1000 s / hr of air was filtered using a downstream vortex blower. 3 Backpressure was monitored by a Wika® P30 pressure transmitter placed below the filter. 4 The refractory powder was dispersed into the primary gas stream using a STAR Professional gravity feed spray gun 1.4 mm, part number STA2591100C. The STAR Professional gravity feed spray gun was mounted 100 mm from the inlet face of the filter. 5 After loading was complete, the filter was baked at 500° C. for 1 hour.

[0173] When the back pressure parameter was used to determine the stop point of the refractory powder spray, the back pressure was monitored using the pressure transmitter described above.When the mass of the refractory powder sprayed was used to determine the stop point of the refractory powder spray, the mass was monitored by periodically removing the spray gun hopper for weighing.

[0174] In the following examples, "CFBP" is 600m 3 All filtration efficiencies are quoted at a soot loading of 0.02 g / L.

[0175] refractory powder In the examples below, the following refractory powders were used: 1 Aeroxide® Alu 130 fumed aluminum oxide available from Evonik Industries AG, Essen, Germany. Tap density was 0.05 g / L and d50 was 5.97 microns. 2 Silica aerogel. The tap density was less than 0.10 g / L and the d50 was less than 10 microns. Silica aerogel is available, for example, from Dow Chemical Company (Midland, MI, USA), Enersens SAS (Bourgoin Jalidery, France), and JIOS Aerogel Corporation (Geyonggi-do, Korea). 3 AEI zeolite. Tap density was 0.30 g / L and d50 was 0.9 microns.

[0176] Examples 1 and 2 Three SCRF filters were prepared from the same substrate types: SiC, 300 / 12, and 3.76L. Each filter was loaded with 1.93 g / in 3 The filters of Example 1 and Example 2 were washcoated with the same small pore Cu-exchanged zeolite SCR catalyst at a washcoat loading of 1000 g / m2. The filters of Example 1 and Example 2 were loaded with Aeroxide® Alu130 as described above using the standard loading process described above, using back pressure to determine the stop point of the refractory powder spray. The filter of Comparative Example 1 was not loaded with any refractory powder. The following results were obtained:

[0177] [Table 1]

[0178] As can be seen from the results, the treatment of the filter according to the present disclosure resulted in a substantial improvement in the initial filtration efficiency of the filter. In particular, the inventors have found that the treatment of the filter with a refractory powder having a tap density of less than 0.10 g / L allows a substantial improvement in filtration efficiency, even at very low loading levels of less than 3 g / L. Without wishing to be bound by theory, it is believed that the preferably aerosol-deposited refractory powder provides a highly efficient filtration medium for the filter during initial use, and, where appropriate, after regeneration at very low soot loadings, where no soot particle cake has yet accumulated.

[0179] Examples 3 and 4 Three GPF filters were prepared from the same cordierite, 300 / 8, 1.26L substrate type. Each filter was 14.8 g / ft 3 PGM loading of 1.1 g / in 3The filters of Example 3 and Example 4 were washcoated with the same TWC catalyst having a PGM ratio (Pt:Pd:Rh) of 0:10:1 at a washcoat loading of 1000 g / m2. The filters of Example 3 and Example 4 were loaded with the above Silica Aerogel using the standard loading process described above, with the back pressure used to determine the stop point of the spraying of the refractory powder. The filter of Comparative Example 2 was not loaded with any refractory powder. The following results were obtained:

[0180] [Table 2]

[0181] As can be seen from the results, treatment of the filter according to the present disclosure resulted in a substantial improvement in the initial filtration efficiency of the filter. In particular, the inventors found that treatment of the filter with a refractory powder having a tap density of less than 0.10 g / L allows for a substantial improvement in filtration efficiency, even at very low loading levels of less than 2 g / L.

[0182] Example 5 Two SCRF filters were prepared from the same substrate type, SiC, 300 / 12, 3.00L. Each filter was loaded with 1.52 g / in 3 The filter of Example 5 was loaded with the AEI zeolite described above using the standard loading process described above, with the mass of refractory powder used to determine the stop point of the refractory powder spray. The filter of Comparative Example 3 was not loaded with any refractory powder. The following results were obtained:

[0183] [Table 3]

[0184] As can be seen from the results, using a refractory powder with a relatively high tap density of 0.30 g / L (outside the scope of this disclosure) in the filter in Example 5 does not achieve the same substantial increase in filtration efficiency shown by Examples 1-4. The inventors theorize that using a refractory powder with a very low tap density of less than 0.10 g / L is particularly beneficial. This is especially true when the powder is pulled through the filter using the primary gas flow. It is theorized that the very low tap density of the refractory powder, and therefore the very low momentum of the refractory powder particles, is beneficial in facilitating better dispersion of the powder in the primary gas flow and the porous substrate, particularly allowing a greater proportion of the refractory powder to be deposited within the porous structure of the multiple filter walls.

[0185] Example 6 SCRF filters were prepared from the same SiC, 300 / 12, 3.76L substrate type as in Examples 1 and 2. The filters were loaded with 1.93 g / in 3 The filter of Example 6 was washcoated with the same small pore Cu-exchanged zeolite SCR catalyst as in Examples 1 and 2 at a washcoat loading of 1000 ml. The filter of Example 6 was loaded with Aeroxide® Alu130 as described above using a modified loading process. The modified loading process was the same as the standard loading process described above, except that no primary gas flow was used to draw the powder into the filter. Instead, only a secondary gas flow from the spray gun was used to blow the powder into the filter. This secondary gas flow was approximately 3.5 m 3 / hour. The mass of the refractory powder was used to determine the stopping point of the spraying of the refractory powder. The following results were obtained:

[0186] [Table 4]

[0187] During the powder loading of Example 6, significant backflow / turbulence was observed visible above the inlet face of the filter (which can be seen from the movement of the powder in the gas flow). At the end of loading, it was further observed that powder had accumulated on the inlet face of the filter. When split in half, a significant accumulation of powder was observed filling the inlet channel at the outlet end of the filter. It is theorized that the primary gas flow in Examples 1 and 2, combined with the very low tap density of the refractory powder, is beneficial in promoting better dispersion of the powder in the primary gas flow and the porous substrate, in particular allowing a greater proportion of the refractory powder to be deposited within the porous structure of the multiple filter walls. In the absence of a primary gas flow, the powder has a deleterious tendency to accumulate on the inlet face and at the outlet end of the blocked inlet channel, as in Example 6. As a result, entraining the refractory powder in the primary gas flow that is pulled through the filter promotes better powder distribution in the porous structure of the multiple filter walls.

[0188] Example 7 Two filters were prepared from the same substrate type, Cordierite, 200 / 8, 3.2L each. Neither filter was coated with a washcoat, i.e., the substrate was not exposed. The filter of Example 7 was filled with the Silica Aerogel described above using a modified filling process. The modified filling process was the same as the standard filling process described above, except that the refractory powder was dispersed into the primary gas stream using a mesh sieve rather than through a spray gun. The mass of the refractory powder was used to determine the stopping point of the spray of the refractory powder. The filter of Comparative Example 4 was not filled with any refractory powder. The following results were obtained:

[0189] [Table 5]

[0190] As can be seen from the results, treatment of the filters according to the present disclosure resulted in a substantial improvement in the initial filtration efficiency of the filters, even when bare, uncoated filters were used.

[0191] Examples 8 and 9 SCRF filters were prepared from the same SiC, 300 / 12, 3.76L substrate type as in Examples 1 and 2. The filters were loaded with 1.93 g / in 3 The filter of Example 8 was washcoated with the same small pore Cu-exchanged zeolite SCR catalyst as in Examples 1 and 2 at a washcoat loading of 1000 g / L. The filter of Example 8 was loaded with Aeroxide® Alu 130 as above using the standard loading process described above. Back pressure was used to determine the stop point of the refractory powder spray.

[0192] GPF filters were prepared from the same substrate type of SiC, 300 / 8, 1.26L as in Examples 3 and 4. The filters had a 14.8 g / ft 3 PGM loading of 1.1 g / in 3 The filter of Example 9 was washcoated with the same TWC catalyst having a PGM ratio (Pt:Pd:Rh) of 0:10:1 at a washcoat loading of 1000 g / m2. The filter of Example 9 was loaded with Aeroxide® Alu130 as above using the standard loading process described above. Back pressure was used to determine the stop point of the spraying of the refractory powder.

[0193] The following results were obtained.

[0194] [Table 6]

[0195] The envelope volume was calculated using Hg intrusion porosimetry (MIP), with the following results:

[0196] [Table 7]

[0197] Then, % powder 壁内 was calculated using the following formula:

[0198]

number

[0199] The results show that % powder 壁内 was 50.6% for Example 8 and 70.1% for Example 9, proving that the method and apparatus of the present disclosure is effective in obtaining a filter having more than 40% refractory powder disposed within the porous structure of the filter walls.

[0200] Examples 10 to 13 Six GPF filters were prepared from substrate types of cordierite, 300 / 8, and 1.68L, respectively. Three filters had low average pore size and three had high average pore size. As used herein, "high average pore size" refers to a filter average pore size that is 2 microns above the nominal or average pore size of the substrate type (as cited by the substrate manufacturer). Similarly, as used herein, "low average pore size" refers to a filter average pore size that is 2 microns below the nominal or average pore size of the substrate type (as cited by the substrate manufacturer).

[0201] Each filter was packed in the same 22g / ft 3 and 0.8 g / in 3 The exemplary filters 10-13 were loaded with the above-mentioned Silica Aerogel using the standard loading process described above. Back pressure was used to determine the stop point of the refractory powder spray for exemplary filters 10 and 12. The mass of the refractory powder was used to determine the stop point of the refractory powder spray for exemplary filters 11 and 13. The filters of Comparative Examples 5 and 6 were not loaded with any refractory powder. The following results were obtained:

[0202] [Table 8]

[0203] As can be seen from the results, the treatment of the filter according to the present disclosure results in a substantial improvement in initial filtration efficiency. In addition, this treatment can reduce the variability of filter backpressure, thus reducing the impact of varying average pore size on filter backpressure. For example, it can be seen that the CFBP of comparative filters 5 and 6 varies by as much as 27%. In comparison, the CFBP of example filters 10 and 12 varies by only 7%, while still achieving the same enhanced filtration efficiency of 96.8%. Thus, these results demonstrate that the method and device of the present disclosure are effective in obtaining a reduction in the relative standard deviation of filter backpressure, even when the filter has a dispersion of average pore size.

[0204] Further aspects and embodiments of the present disclosure are described in the following sections. Item A1. A method for treating a filter for filtering particulate matter from an exhaust gas, comprising: a) containing a dry powder in a reservoir; b) placing a filter in a filter holder, the filter comprising a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure; c) establishing a primary gas flow through the porous structure of the filter by applying a pressure drop across the outlet face of the filter; d) transferring the dry powder from the reservoir to a spray device located upstream of the inlet face of the filter; e) spraying a dry powder towards the inlet face of the filter using a spraying device such that the dry powder is entrained in the primary gas flow and passes through the inlet face of the filter and contacts the porous structure.

[0205] Item A2. The method of item A1, wherein the transfer of dry powder from the reservoir to the spraying device is controllable independently of establishing and controlling the primary gas flow, and optionally, the spraying of dry powder toward the inlet face of the filter is controllable independently of establishing and controlling the primary gas flow.

[0206] Item A3. The method of item A1 or item A2, wherein a primary gas flow is established before the dry powder is transferred to the spray device and sprayed toward the inlet surface.

[0207] Item A4. The method of any of items A1 to A3, wherein in step d), a secondary gas flow separate from the primary gas flow is used to transport the dry powder from the reservoir to the spray device.

[0208] Item A5. The method of item A4, wherein the secondary gas flow is controllable independently of the primary gas flow.

[0209] The method according to paragraph A4 or A5, further comprising the step of: A6.f) stopping the spraying of the dry powder towards the inlet face of the filter, wherein the primary gas flow is a continuous gas flow from step c) to step f), and the secondary gas flow is applied only for a portion of the period from step c) to step f).

[0210] Paragraph A7. The method of paragraph A6, wherein the secondary gas flow is applied as a single burst or multiple intermittent bursts during the portion of the period from step c) to step f).

[0211] Item A8. The method of item A6 or A7, further comprising step g) of maintaining a primary gas flow through the porous structure of the filter for a period of time after cessation of spraying of the dry powder in step f).

[0212] Paragraph A9. The method of any one of paragraphs A4-A8, wherein the secondary gas stream comprises a stream of compressed gas, preferably air.

[0213] Paragraph A10. The method of any one of paragraphs A4-A9, wherein a secondary gas flow is used to transport the dry powder from the reservoir to the spray device and to dispense the dry powder from the spray device.

[0214] Item A11. The method according to any one of items A4 to A10, wherein the spray device is a compressed air gun.

[0215] Item A12. The method of any one of items A1-A11, including using a vacuum generator to establish a primary gas flow through the porous structure of the filter.

[0216] Paragraph A13. The method of paragraph A12, wherein the level of pressure drop generated by the vacuum generator is controllable independently of the rate or mass flow rate of transfer of the dry powder from the reservoir to the spray device.

[0217] Item A14. Primary gas flow is 10 m 3 / hour ~5,000m 3 / hour, preferably 400m 3 / hour ~2,000m 3 / hour, preferably 600m 3 / hour~1000m 3 The method according to any one of paragraphs A1 to A13, having a volumetric flow rate of 1 / hour.

[0218] Paragraph A15. The method of any one of paragraphs A1-A14, further comprising monitoring the back pressure of the filter during at least step e).

[0219] Paragraph A16. The method of paragraph A15, further comprising using a pressure sensor, preferably a single pressure sensor, to monitor the backpressure.

[0220] Paragraph A17. The method of paragraph A16, wherein a pressure sensor, preferably a single pressure sensor, is disposed within a filter holder or other housing that is fluidly connected to the outlet face of the filter.

[0221] Item A18. The method of any one of items A15-A17, further comprising stopping spraying of the dry powder toward the inlet face of the filter when a predetermined back pressure on the filter is reached.

[0222] Item A19. The method of item A18, wherein the predetermined backpressure is an absolute backpressure.

[0223] Paragraph A20. The method of any one of paragraphs A15-A19, further comprising monitoring the back pressure of the filter during at least step c) and step e), preferably during at least steps c), d) and e).

[0224] Paragraph A21. The method of paragraph A20, further comprising using a pressure sensor, preferably a single pressure sensor, to monitor the backpressure.

[0225] Paragraph A22. The method of paragraph A21, wherein a pressure sensor, preferably a single pressure sensor, is disposed within a filter holder or other housing that is fluidly connected to the outlet face of the filter.

[0226] Paragraph A23. The method of paragraph A21 or paragraph A22, wherein the same pressure sensor, preferably the same single pressure sensor, is used to monitor the backpressure of the filter during at least steps c) and e).

[0227] Paragraph A24. The method of any one of paragraphs A20 to A23, further comprising the step of ceasing spraying of the dry powder toward the inlet face of the filter when a predetermined back pressure on the filter is reached.

[0228] Item A25. The method of item A24, wherein the predetermined backpressure is a relative backpressure.

[0229] Paragraph A26. The method of paragraph A25, wherein a first backpressure of the filter is measured in step c) before the dry powder is deposited in the porous structure, and a second backpressure of the filter is measured in step e) while the dry powder is deposited in the porous structure, and spraying of the dry powder is stopped when the second backpressure reaches a predetermined percentage of the first backpressure.

[0230] Item A27. The method according to item A26, wherein the predetermined percentage is 105% to 200%, preferably 125% to 150%.

[0231] Item A28. The method according to any one of items A1 to A14, further comprising the step of stopping spraying of the dry powder towards the inlet face of the filter when a predetermined total spraying time is reached.

[0232] Item A29. The method according to item A28, wherein the predetermined total spraying time is 1 to 60 seconds, preferably 1 to 10 seconds, preferably 1 to 5 seconds, preferably 2 to 5 seconds, preferably 3 seconds.

[0233] Item A30. The method according to any one of items A1 to A29, further comprising stopping spraying of dry powder toward the inlet surface of the filter when a target mass of dry powder has been sprayed toward the inlet surface of the filter.

[0234] Item A31. The method according to any one of items A1 to A14, further comprising the steps of monitoring the back pressure of the filter during at least step e) and stopping the spraying of the dry powder towards the inlet face of the filter when a predetermined total spraying time or a predetermined back pressure of the filter is reached.

[0235] Item A32. The method of item A31, wherein the predetermined backpressure is an absolute backpressure.

[0236] Paragraph A33. The method of paragraph A31 or paragraph A32, further comprising monitoring the back pressure of the filter during at least step c) and step e), preferably during at least steps c), d) and e).

[0237] Item A34. The method of item A33, wherein the predetermined backpressure is a relative backpressure.

[0238] Item A35. The method according to any one of items A1 to A34, comprising providing a maximum loading of dry powder of less than 10 g / L of the filter, preferably less than 5 g / L of dry powder, preferably less than 2 g / L of dry powder.

[0239] Item A36. Dry powder is 0.10 g / cm 3 Less than, optionally 0.08g / cm 3 Less than, optionally 0.07g / cm 3 Less than, optionally 0.06g / cm 3 Less than, optionally 0.05g / cm 3 The method of any one of paragraphs A1-A35, wherein the dry powder has a tap density of less than 25 microns, preferably less than 20 microns, more preferably less than 10 microns.

[0240] Paragraph A37. The method of any one of paragraphs A1-A36, wherein the dry powder comprises one or more refractory powders, preferably including one or more fumed refractory powders, and / or one or more aerogels.

[0241] Paragraph A38. The method of paragraph A37, wherein the one or more fumed refractory powders include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides.

[0242] Paragraph A39. The method of paragraph A37, wherein the one or more aerogels include one or more of silica aerogel, alumina aerogel, carbon aerogel, titania aerogel, zirconia aerogel, ceria aerogel, metal oxide aerogel, and mixed oxide aerogel.

[0243] Item A40. The method according to any one of items A1 to A39, wherein in step e), the dry powder is sprayed from one or more outlets of the spray device.

[0244] Item A41. The method of item A40, wherein one or more outlets of the spray device have an aperture size of 1 to 10 mm.

[0245] Item A42. The method according to item A40 or A41, wherein the dry powder is sprayed from one or more fixed outlets of a spray device.

[0246] Paragraph A43. The method of paragraph A40 or paragraph A41, wherein the dry powder is sprayed from one or more movable outlets of the spray device, preferably from one or more oscillating outlets.

[0247] Paragraph A44. The method of any one of paragraphs A1-A43, further comprising channeling dry powder from the spray device to an inlet face of a filter in the flow conduit in step e).

[0248] Paragraph A45. The method of paragraph A44, wherein the flow conduit provides an unobstructed flow path between the spray device and the inlet face of the filter.

[0249] Paragraph A46. The method of paragraph A44, wherein the flow conduit includes a flow regulator inserted between the spray device and the inlet face of the filter, the flow regulator acting to promote dispersion of the dry powder within the gas flow.

[0250] Paragraph A47. The method of paragraph A46, wherein the flow regulator comprises one or more of a static mixer, a mesh, a sieve, a baffle, and an orifice plate.

[0251] Paragraph A48. The method according to any one of paragraphs A1 to A47, wherein the inlet face of the filter is located 10 to 80 cm, preferably 15 to 20 cm, from the spraying device, and / or the spraying device is located at a distance from the inlet face of the filter, the distance being up to 4 times the diameter of the inlet face of the filter.

[0252] Item A49. The method of any one of items A1 to A48, further comprising injecting dry powder from a reservoir in step d).

[0253] Paragraph A50. The method of paragraph A49, wherein injecting includes injecting by one or more of weight, volume, number of particles, and time.

[0254] Item A51. The method of item A49 or item A50, comprising gravimetrically feeding the dry powder into the injection device.

[0255] Item A52. The method according to any one of items 49 to A52, wherein the injecting uses a loss-in-weight feeder.

[0256] Item A53. The method according to any one of items A1 to A52, wherein in step a), the dry powder is contained in one or more hoppers.

[0257] Paragraph A54. The method of any one of paragraphs A1 to A53, wherein in step b), the filter is placed in the holder in a vertical orientation with the inlet surface uppermost.

[0258] The method according to paragraph A54, wherein in step d) the spraying device is arranged vertically above the inlet surface, and preferably the spraying direction of the spraying device is coaxial with the longitudinal axis of the filter, and preferably the spraying direction and the longitudinal axis coincide with each other.

[0259] Item A56. The method of any one of items A1 to A55, further comprising firing the filter after step e).

[0260] Paragraph A57. The method of any one of paragraphs A1-A56, further comprising coating the filter with a washcoat, preferably a catalytic washcoat, before step b).

[0261] Item A58. The method according to any one of items A1 to A57, wherein the porous substrate is a wall-flow filter.

[0262] Item B1. A device for treating a filter for filtering particulate matter from exhaust gas, i) a reservoir for containing a dry powder; ii) a filter holder for holding a filter, the filter being of a type including a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure; iii) a vacuum generator for establishing a primary gas flow through the porous structure of the filter in use by applying a pressure drop across the outlet face of the filter; iv) a transport device for transporting the dry powder from the reservoir towards the filter; iv) a spraying device for receiving the dry powder from the transport device and spraying the dry powder towards the inlet face of the filter; v) a controller configured to control operation of at least the vacuum generator and the spray device.

[0263] Clause B2. The apparatus of clause B1, wherein the controller is configured to control the transfer of dry powder from the reservoir to the spraying device by the transport device independently of controlling the primary gas flow generated by the vacuum generator, and optionally, the controller is configured to control spraying of the dry powder toward the inlet face of the filter independently of controlling the primary gas flow.

[0264] Clause B3. The method of clause B1 or clause B2, wherein the controller is configured to operate the vacuum generator to establish a primary gas flow before the dry powder is transferred to the spray device and sprayed toward the inlet surface.

[0265] Clause B4. An apparatus according to any one of clauses B1 to B3, wherein the transport device and / or the spray device comprises a secondary gas flow generator separate from the vacuum generator, thereby assisting in the transfer of the dry powder to the spray device.

[0266] Paragraph B5. The apparatus of paragraph B4, wherein the controller is configured to control the secondary gas flow generator independently of the vacuum generator.

[0267] Clause B6. The apparatus of clause B4 or clause B5, wherein the controller is configured to operate the vacuum generator to maintain the primary gas flow as a continuous gas flow through the porous structure and to operate the secondary gas flow generator for only a portion of the period of the primary gas flow.

[0268] Clause B7. The apparatus of clause B6, wherein the controller is configured to operate the secondary gas flow generator as a single burst or multiple intermittent bursts during the period of the primary gas flow.

[0269] Paragraph B7. The apparatus of any one of paragraphs B4-B6, wherein the secondary gas flow generator comprises a compressed gas generator, preferably a compressed air generator.

[0270] Item B8. The apparatus according to any one of items B4 to B7, wherein the spray device is a compressed air gun.

[0271] Clause B9. The apparatus of any one of clauses B1 to B8, wherein the controller is configured to control the vacuum generator to control the level of pressure drop applied to the outlet face of the filter, independently of controlling the transport device and / or the spray device, in order to control the velocity or mass flow rate of the dry powder sprayed toward the inlet face of the filter.

[0272] Item B10. The controller is configured to have a gas flow of 10m 3 / hour ~5,000m 3 / hour, preferably 400m 3 / hour ~2,000m 3 / hour, preferably 600m 3 / hour~1000m 3 The apparatus of any one of paragraphs B1 to B9, configured to operate the vacuum generator to have a volumetric flow rate of 1 / hour.

[0273] Clause B11. The apparatus of any one of clauses B1-B10, further comprising a pressure sensor, preferably a single pressure sensor, for monitoring back pressure of the filter, wherein the controller is configured to receive an output from the pressure sensor.

[0274] Paragraph B12. The apparatus of paragraph B11, wherein the pressure sensor, preferably a single pressure sensor, is disposed within the vacuum generator, preferably within a vacuum cone of the vacuum generator.

[0275] Paragraph B13. The apparatus of paragraph B11 or B12, wherein the controller is configured to stop spraying the dry powder toward the inlet face of the filter when a predetermined back pressure on the filter is reached.

[0276] Paragraph B14. The apparatus of paragraph B13, wherein the predetermined backpressure is an absolute backpressure.

[0277] Paragraph B15. The apparatus of paragraph B13, wherein the predetermined backpressure is a relative backpressure.

[0278] Clause B16. The apparatus of clause B15, wherein the controller is configured to acquire a first backpressure of the filter from the pressure sensor before the dry powder is deposited into the porous structure and a second backpressure of the filter while the dry powder is deposited into the porous structure, and the controller is configured to stop spraying of the dry powder when the second backpressure reaches a predetermined percentage of the first backpressure.

[0279] Item B17. The device according to item B16, wherein the predetermined percentage is 105% to 200%, preferably 125% to 150%.

[0280] Clause B18. The device of any one of clauses B1 to B17, wherein the controller is configured to stop spraying the dry powder toward the inlet face of the filter when a predetermined total spraying time is reached.

[0281] Item B19. The device according to item B18, wherein the predetermined total spray time is 1 to 60 seconds, preferably 1 to 10 seconds, preferably 1 to 5 seconds, preferably 2 to 5 seconds, preferably 3 seconds.

[0282] Clause B20. The device described in any one of clauses B1 to B19, wherein the controller is configured to stop spraying the dry powder toward the inlet surface of the filter when a target mass of dry powder has been sprayed toward the inlet surface of the filter.

[0283] Paragraph B21. The device of any one of paragraphs B1 to B20, further comprising a pressure sensor, preferably a single pressure sensor, for monitoring the back pressure of the filter, the controller configured to receive an output from the pressure sensor, and the controller configured to stop spraying of the dry powder toward the inlet face of the filter when either a predetermined total spraying time or a predetermined back pressure of the filter is reached.

[0284] Paragraph B22. The apparatus of paragraph B21, wherein the predetermined backpressure is an absolute backpressure.

[0285] Paragraph B23. The apparatus according to paragraph B21, wherein the predetermined backpressure is a relative backpressure.

[0286] Paragraph B24. The apparatus of any one of paragraphs B1-B23, wherein the reservoir contains a dry powder, preferably including one or more refractory powders, including one or more fumed refractory powders, and / or one or more aerogels.

[0287] Paragraph B25. The apparatus of paragraph B24, wherein the one or more fumed refractory powders include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides.

[0288] Paragraph B26. The apparatus of paragraph B25, wherein the one or more aerogels include one or more of silica aerogel, alumina aerogel, carbon aerogel, titania aerogel, zirconia aerogel, ceria aerogel, metal oxide aerogel, and mixed oxide aerogel.

[0289] Paragraph B27. The apparatus according to any one of paragraphs B1 to B26, wherein the spray device comprises one or more outlets.

[0290] Paragraph B28. The apparatus according to paragraph B27, wherein one or more outlets of the spray device have an aperture size of 1 to 10 mm.

[0291] Paragraph B29. The apparatus of paragraph B27 or paragraph B28, wherein the one or more outlets are one or more fixed outlets.

[0292] Paragraph B30. The apparatus of paragraph B27 or B28, wherein the one or more outlets are one or more movable outlets, preferably one or more swinging outlets.

[0293] Clause B31. An apparatus according to any one of clauses B1 to B30, wherein the transport device comprises a conduit extending at least partially from the reservoir to the spraying device, the spraying device comprising a compressed air supply of a compressed air gun configured to fluidize the dry powder in at least a portion of the conduit.

[0294] Paragraph B32. The apparatus according to any one of paragraphs B1 to B31, which may further comprise a flow conduit disposed between the spray device and the inlet face of the filter.

[0295] Paragraph B33. The apparatus of paragraph B32, wherein the flow conduit is empty to provide an unobstructed flow path between the spray device and the inlet face of the filter.

[0296] Paragraph B34. The apparatus of paragraph B32, wherein the flow conduit includes a flow regulator interposed between the spray device and the inlet face of the filter, the flow regulator acting to promote dispersion of the dry powder within the gas flow.

[0297] Paragraph B35. The apparatus of paragraph B34, wherein the flow regulator comprises one or more of a static mixer, a mesh, a sieve, a baffle, and an orifice plate.

[0298] Clause B36. The device according to any one of clauses B1 to B35, wherein the inlet face of the filter is located 10 to 80 cm, preferably 15 to 20 cm, from the spraying device, and / or the spraying device is located at a distance from the inlet face of the filter, the distance being up to 4 times the diameter of the inlet face of the filter.

[0299] Item B37. The apparatus according to any one of items B1 to B36, further comprising an injection device for injecting dry powder from the reservoir.

[0300] Clause B38. The apparatus of clause B37, wherein the injection device is configured to inject by one or more of weight, volume, number of particles, and time.

[0301] Item B39. The apparatus according to any one of items B37 or 38, wherein the injection device is a gravimetric injection device.

[0302] Item B40. The apparatus according to any one of items B37 to B39, wherein the injection device is a loss-in-weight feeder.

[0303] Paragraph B41. The apparatus according to any one of paragraphs B1 to B40, wherein the reservoir comprises one or more hoppers.

[0304] Paragraph B42. The device according to any one of paragraphs B1 to B41, wherein the filter is disposed in the holder in a vertical orientation with the inlet surface uppermost.

[0305] Clause B43. The apparatus according to clause B42, wherein the spray device is arranged vertically above the inlet face, and preferably the spray direction of the spray device is coaxial with the longitudinal axis of the filter, and preferably the spray direction and the longitudinal axis coincide with each other.

[0306] Item C1. A processed filter obtained by the method according to any one of items A1 to A58.

[0307] Item C2. The treated filter of item C1, which is one or more of a catalyzed soot filter (CSF), a selective catalytic reduction filter (SCRF), a lean NOx trap filter (LNTF), and a gasoline particulate filter (GPF).

[0308] Item D1. A vehicle exhaust filter comprising a porous substrate having an inlet surface and an outlet surface, the porous substrate comprising an inlet channel extending from the inlet surface and an outlet channel extending from the outlet surface, the inlet channel and the outlet channel being separated by a plurality of filter walls having a porous structure; Vehicle exhaust filters are 0.10g / cm 3 and filled with a refractory powder having a tap density before filling of less than The vehicle exhaust filter has a mass loading of fire-resistant powder of less than 10 g / L; 1. An exhaust filter for a vehicle, wherein greater than 40% of the refractory powder is disposed within a porous structure of the plurality of filter walls, and less than 60% of the refractory powder is coated on an exterior surface of the plurality of filter walls.

[0309] Item D2. The vehicle exhaust filter of item D1, wherein more than 50% of the refractory powder, optionally more than 65% of the refractory powder, optionally more than 75% of the refractory powder, and optionally up to 100% of the refractory powder are disposed within the porous structure of the plurality of filter walls.

[0310] Item D3. The percentage of refractory powder disposed within the porous structure of the plurality of filter walls is determined by the following formula:

[0311]

number

[0312] Item D4. Refractory powder is 0.08g / cm 3 Less than, optionally 0.07g / cm 3 Less than, optionally 0.06g / cm 3 Less than, optionally 0.05g / cm3 The vehicle exhaust filter according to any one of items D1 to D3, having a tap density before filling of less than 1000 nm.

[0313] Item D5. The mass loading of the refractory powder is less than 7 g / L, optionally less than 5 g / L, optionally less than 3 g / L, optionally less than 1 g / L. The vehicle exhaust filter according to any one of items D1 to D4.

[0314] Item D6. The vehicle exhaust filter according to any one of items D1 to D5, wherein more than 0.5 g / L of the refractory powder is disposed within the porous structure of the filter walls.

[0315] Item E1. A vehicle exhaust filter comprising a porous substrate having an inlet surface and an outlet surface, the porous substrate comprising an inlet channel extending from the inlet surface and an outlet channel extending from the outlet surface, the inlet channel and the outlet channel being separated by a plurality of filter walls having a porous structure; Vehicle exhaust filters are 0.10g / cm 3 and filled with a refractory powder having a tap density before filling of less than The vehicle exhaust filter has a mass loading of fire-resistant powder of less than 10 g / L; 1. A vehicle exhaust filter, comprising: a refractory powder having greater than 0.5 g / L disposed within a porous structure of a plurality of filter walls.

[0316] Item E2.Refractory powder is 0.08g / cm 3 Less than, optionally 0.07g / cm 3 Less than, optionally 0.06g / cm 3 Less than, optionally 0.05g / cm 3 The vehicle exhaust filter according to claim E1, having a tap density before filling of less than 1000 g / m2.

[0317] Item E3. The vehicle exhaust filter according to item E1 or E2, wherein the mass loading of the refractory powder is greater than 1 g / L, optionally greater than 3 g / L, optionally greater than 5 g / L, optionally greater than 7 g / L.

[0318] Paragraph F1. The vehicle exhaust filter of any one of paragraphs D1-D6 or E1-E3, wherein the fire-resistant powder comprises one or more fumed fire-resistant powders and / or one or more aerogels.

[0319] F2. The vehicle exhaust filter of paragraph F1, wherein the one or more fumed refractory powders include one or more of fumed alumina, fumed silica, fumed titania, other fumed metal oxides, and fumed mixed oxides.

[0320] F3. The vehicle exhaust filter of paragraph F1, wherein the one or more aerogels include one or more of silica aerogel, alumina aerogel, carbon aerogel, titania aerogel, zirconia aerogel, ceria aerogel, metal oxide aerogel, and mixed oxide aerogel.

[0321] Item G1. A vehicle exhaust filter comprising a porous substrate having an inlet surface and an outlet surface, the porous substrate comprising an inlet channel extending from the inlet surface and an outlet channel extending from the outlet surface, the inlet channel and the outlet channel being separated by a plurality of filter walls having a porous structure; Vehicle exhaust filters are 0.10g / cm 3 and filled with a refractory powder having a tap density before filling of less than 1. An exhaust filter for a vehicle, wherein the fire-resistant powder comprises one or more aerogels.

[0322] G2. The vehicle exhaust filter of paragraph G1, wherein the one or more aerogels include one or more of silica aerogel, alumina aerogel, carbon aerogel, titania aerogel, zirconia aerogel, ceria aerogel, metal oxide aerogel, and mixed oxide aerogel.

[0323] Clause H1. A vehicle exhaust filter comprising a porous substrate having an inlet surface and an outlet surface, the porous substrate comprising an inlet channel extending from the inlet surface and an outlet channel extending from the outlet surface, the inlet channel and the outlet channel being separated by a plurality of filter walls having a porous structure; Vehicle exhaust filters are 0.10g / cm 3 and filled with a refractory powder having a tap density before filling of less than The vehicle exhaust filter has a mass loading of fire-resistant powder of less than 10 g / L; The vehicle exhaust filter exhibits a substantially linear load-backpressure response for soot loadings greater than 0.1 g / L, preferably greater than 0.05 g / L.

[0324] Item J1. The vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or item H1, having a filtration efficiency at a soot loading of 0.02 g / L of more than 90%, preferably more than 95%, preferably more than 98%, preferably more than 99%.

[0325] Term J2.600m 3 The vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or item J1, having a back pressure of 20 to 180 mbar at a flow rate of 1000 g / h.

[0326] Item J3. The vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or items J1 to J2, wherein the refractory powder is an aerosol-deposited refractory powder, preferably an aerosol-deposited dry refractory powder.

[0327] Item J4. The vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or items J1 to J3, wherein the fire-resistant powder has a d50 (by volume) of less than 25 microns, preferably less than 20 microns, more preferably less than 10 microns.

[0328] Item J5. The vehicle exhaust filter according to any one of Items D1 to D6, or Items E1 to E3, or Items F1 to F3, or Items G1 to G2, or Items H1, or Items J1 to J4, which is a wall-flow filter.

[0329] Item J6: The vehicle exhaust filter according to any one of Items D1 to D6, or Items E1 to E3, or Items F1 to F3, or Items G1 to G2, or Items H1, or Items J1 to J5, which is a fired filter.

[0330] Item J7. The vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or items J1 to J6, wherein the porous substrate includes one or more wash coats.

[0331] Item J8. The porous substrate includes an adhesion promoter and / or a binder, any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or items J1 to J7. Vehicle exhaust filter according to any one of items D1 to D6, or items E1 to E3, or items F1 to F3, or items G1 to G2, or items H1, or items J1 to J7.

[0332] Item J9. An exhaust system including the vehicle exhaust filter according to any one of items D1 to D6, E1 to E3, F1 to F3, G1 to G2, H1, or J1 to J8.

[0333] Item J10: A vehicle comprising the vehicle exhaust filter according to any one of items D1 to D6, E1 to E3, F1 to F3, G1 to G2, H1, or J1 to J8.

[0334] Clause K1. A plurality of vehicle exhaust filters, each of which comprises a porous substrate having an inlet surface and an outlet surface, the porous substrate comprising an inlet channel extending from the inlet surface and an outlet channel extending from the outlet surface, the inlet channel and the outlet channel being separated by a plurality of filter walls having a porous structure; Each vehicle exhaust filter is 0.10g / cm 3 and filled with a refractory powder having a tap density before filling of less than Each vehicle exhaust filter has a mass loading of fire-resistant powder of less than 10 g / L; Each vehicle exhaust filter is 600m 3a backpressure of 20 to 180 mbar at a flow rate of 100 s / hr, and a relative standard deviation of the backpressure of the plurality of vehicle exhaust filters is less than 0.04, preferably less than 0.025.

[0335] K2. A plurality of vehicle exhaust filters according to paragraph K1, wherein for each vehicle exhaust filter, more than 40% of the fire-resistant powder is disposed within the porous structure of the plurality of filter walls, and less than 60% of the fire-resistant powder is coated on the exterior surface of the plurality of filter walls.

[0336] Item K3. A vehicle exhaust filter according to item K1 or K2, wherein the fire-resistant powder is an aerosol-deposited fire-resistant powder, preferably an aerosol-deposited dry fire-resistant powder.

Claims

1. 1. A method for treating a filter for filtering particulate matter from an exhaust gas, comprising the steps of: a) containing a dry powder in a reservoir; b) placing a filter in a filter holder, the filter comprising a porous substrate having an inlet face and an outlet face, the inlet face and the outlet face being separated by a porous structure; c) establishing a primary gas flow through the porous structure of the filter by applying a pressure drop across the outlet face of the filter; d) transferring the dry powder from the reservoir to a spraying device arranged upstream of the inlet face of the filter, wherein a secondary gas flow separate from the primary gas flow is used to transfer the dry powder from the reservoir to the spraying device; e) spraying the dry powder towards the inlet surface of the filter using the spraying device such that the dry powder is entrained in the primary gas flow and passes through the inlet surface of the filter and contacts the porous structure, the method further comprising monitoring the back pressure of the filter at least during step e); f) stopping the spraying of the dry powder towards the inlet face of the filter when a predetermined back pressure of the filter is reached, wherein the secondary gas flow is applied only for a portion of the period of steps c) to f); g) maintaining the primary gas flow through the porous structure of the filter for a period of time after cessation of the atomization of the dry powder in step f); A method comprising:

2. 10. The method of claim 1, wherein the transfer of the dry powder from the reservoir to the atomization device is controllable independently from establishing and controlling the primary gas flow.

3. 3. The method of claim 1 or 2, wherein the primary gas flow is established before the dry powder is transferred to the atomizing device and sprayed towards the inlet surface.

4. The method of claim 3 , wherein the secondary gas flow comprises a compressed gas flow.

5. The method of any one of claims 1 to 4, comprising using a vacuum generator to establish the primary gas flow through the porous structure of the filter.

6. 6. The method of claim 5, wherein the level of the pressure drop generated by the vacuum generator is controllable independently of the rate or mass flow rate of the transfer of the dry powder from the reservoir to the spray device.

7. The predetermined back pressure is 600 m 3 2. The process of claim 1, wherein the back pressure is between 20 and 180 mbar absolute at a flow rate of 1 / hr.

8. 2. The method of claim 1, wherein the predetermined backpressure is a relative backpressure, a first backpressure of a filter is measured in step c) before dry powder is deposited in a porous structure, a second backpressure of a filter is measured in step e) while dry powder is deposited in a porous structure, and the atomization of the dry powder is stopped when the second backpressure reaches 105%-200% of the first backpressure.

9. 9. The method of claim 1, further comprising injecting the dry powder from the reservoir in step d).

10. 1. An apparatus for treating a filter for filtering particulate matter from an exhaust gas, comprising: i) a reservoir for containing a dry powder; ii) a filter holder for holding a filter, said filter being of a type including a porous substrate having an inlet face and an outlet face, said inlet face and said outlet face being separated by a porous structure; iii) a vacuum generator for establishing a primary gas flow through the porous structure of the filter in use by applying a pressure drop to the outlet face of the filter; iv) a transport device for transporting the dry powder from the reservoir towards the filter; v) a spraying device for receiving the dry powder from the transport device and spraying the dry powder towards the inlet face of the filter; vi) a controller configured to control operation of at least the vacuum generator and the spray device; vii) a pressure sensor for monitoring a back pressure of the filter, the controller configured to receive an output from the pressure sensor, the controller configured to stop spraying of the dry powder towards the inlet face of the filter when a predetermined back pressure of the filter is reached, and the controller configured to operate a vacuum generator for a period of time after the spraying of the dry powder has stopped to maintain the primary gas flow through a porous structure of the filter for a period of time after the spraying of the dry powder has stopped; An apparatus comprising:

11. 11. The apparatus of claim 10, wherein the controller is configured to control the transfer of the dry powder from the reservoir to the spray device by the transport device independently of controlling the primary gas flow generated by the vacuum generator.

12. 12. The apparatus of claim 10 or 11, wherein the controller is configured to operate the vacuum generator to establish the primary gas flow before the dry powder is transferred to the spraying device and sprayed towards the inlet surface.

13. 13. The apparatus of any one of claims 10 to 12, wherein the transport device and / or the spraying device comprises a secondary gas flow generator separate from the vacuum generator for transferring the dry powder from the reservoir to the spraying device.

14. The apparatus of claim 13 , wherein the secondary gas flow generator comprises a compressed gas generator.

15. 15. The apparatus of claim 10, wherein the controller is configured to control the vacuum generator to control the level of the pressure drop applied to the outlet face of the filter independently of controlling the transport device and / or the spraying device in order to control the velocity or mass flow rate of the dry powder sprayed towards the inlet face of the filter.

16. 16. The apparatus of any one of claims 10 to 15, wherein the transport device comprises a conduit extending at least partially from the reservoir to the spraying device, the spraying device comprising a compressed air supply of a compressed air gun configured to fluidize the dry powder in at least a portion of the conduit.

17. The apparatus of any one of claims 10 to 16, further comprising an injection device for injecting the dry powder from the reservoir.

18. An apparatus according to any one of claims 10 to 17, wherein the filter is arranged in the filter holder in a vertical orientation, with the inlet face uppermost.

Citation Information

Patent Citations

  • Method and apparatus for coating small solids

    JP1993504600A

  • Manufacture of dust collecting filter element

    JP1998249124A

  • Production of ceramic filter element and device therefore

    JP1998263340A

  • Manufacturing apparatus for honeycomb filter

    JP2012157855A

  • Method For Reducing Pressure Drop Through Filters, And Filter Exhibiting Reduced Pressure Drop

    US20100266461A1