Filling tower
The packed tower with a fan system addresses the inefficiencies of existing packed columns by enhancing particle and gas removal, reducing backpressure, and improving the flow of exhaust streams in semiconductor manufacturing.
Patent Information
- Application Number
- JP2022518717
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-09-26
- Filing Date
- 2020-09-23
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2040-09-23
AI Technical Summary
Existing packed columns for treating exhaust gas streams in semiconductor and flat panel display manufacturing suffer from suboptimal performance, particularly in removing solid particles and gases, leading to backpressure and inefficient particle removal.
A packed tower equipped with a fan, such as a combined mass flow and centrifugal fan, is used to propel the exhaust stream through a packing matrix, reducing backpressure and enhancing particle removal by creating a pressure differential and using a converging structure to concentrate the flow towards the fan.
The fan-enhanced packed tower improves the flow of exhaust streams, reduces backpressure, and enhances the removal of particles and gases, improving the efficiency of the abatement process.
Smart Images

Figure 0007804571000001 
Figure 0007804571000002 
Figure 0007804571000003
Abstract
Description
[Technical Field]
[0001] The field of the invention relates to packed columns. [Background technology]
[0002] Abatement processing equipment is known. Such equipment is used, for example, to treat exhaust gas streams from manufacturing process tools used in semiconductor or flat panel display manufacturing. During such manufacturing, thermal abatement chambers often produce solid particles and gaseous by-products resulting from the processes occurring within the chamber. For example, when silane is combusted, silica (SiO2) particles are generated in large quantities. Similarly, when tungsten hexafluoride (WF6) is ablated, solid tungsten oxide particles are generated in large quantities in addition to gaseous hydrogen fluoride (HF).
[0003] Before the flue gas stream is released into the atmosphere, it is treated to remove selected gases and solid particles therefrom. Acid gases, such as HF and HCl, are typically removed from the flue gas stream using a packed tower scrubber, in which the acid gases are taken into solution by a wash liquid flowing through the scrubber. In addition, particles may be taken into suspension by the wash liquid in the packed tower scrubber. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] GB2528444B2 Summary of the Invention [Problem to be solved by the invention]
[0005] While such packed columns provide for the treatment of exhaust gas streams, they suffer from several drawbacks. It would therefore be desirable to provide an improved packed column.
[0006] It is also known from GB2528444B2 to provide a radial fan at a height below the packed tower to remove particles from the exhaust gas stream before they enter the packed tower. [Means for solving the problem]
[0007] According to a first aspect, there is provided a packed tower for treating a discharge stream comprising a fluid and particles from an abatement device, the packed tower comprising a packed tower housing having an inlet for receiving the discharge stream, an outlet for discharging the discharge stream, a packing matrix contained within the packed tower housing between the inlet and the outlet, the packing matrix configured to entrain at least a portion of the particles from the fluid as the discharge stream flows therethrough, and a fan contained within the packed tower housing, the fan configured to propel the discharge stream from the inlet towards the outlet to remove at least a portion of the particles from the fluid.
[0008] The first aspect recognizes that a problem with existing packed towers is that their performance is suboptimal. Accordingly, a packed tower is provided. The packed tower is capable of treating or processing an exhaust stream. The exhaust stream may include a fluid, such as a gas, along with particles or solid particulate matter. The exhaust stream may be provided by an abatement device. The packed tower may include a packed tower housing or chamber. The housing may have an inlet for receiving the exhaust stream. The housing may have an outlet for discharging, providing, or outputting the exhaust stream. The housing may include a packing substrate. The packing substrate may be positioned between the inlet and the outlet. The packing substrate may entrain or capture particles in the exhaust stream as the exhaust stream flows through the packing substrate. The housing may include a fan positioned within the housing. The fan may propel, convey, or push the exhaust stream through the packing substrate between the inlet and the outlet to remove or separate at least a portion of the particles from the fluid in the exhaust stream. In this way, the fan helps to generate a negative pressure to draw the exhaust stream into the packed tower and through the packing matrix, which helps to reduce backpressure experienced by, for example, a semiconductor processing tool providing the exhaust stream, improve the flow of the exhaust stream through the packed tower and upstream abatement device, and improve the removal of particles from within the exhaust stream.
[0009] In one embodiment, the fan includes a combined mass flow and centrifugal fan.
[0010] In one embodiment, the fan is configured to generate a motive force that induces a flow of the exhaust stream from the inlet to the outlet.
[0011] In one embodiment, the fan is configured to create a pressure differential between the inlet and the outlet to induce a flow of the exhaust stream from the inlet to the outlet.
[0012] In one embodiment, the fan includes an axial centrifugal fan having a centrifugal impeller.
[0013] In one embodiment, the centrifugal impeller is configured to remove at least a portion of the particles from the fluid, and thus the centrifugal impeller can assist in removing or separating a portion of the particles from the fluid in the exhaust stream.
[0014] In one embodiment, the centrifugal impeller is axially aligned with the primary direction of flow of the discharge stream from the inlet to the outlet, and thus, in a generally cylindrical packed column, the impeller can rotate circumferentially within the packed column.
[0015] In one embodiment, the centrifugal impeller is configured to propel the discharge stream along its main direction of flow from the inlet to the outlet and to propel the particles transversely to the main direction of flow. Thus, for a generally cylindrical packed column, the impeller can convey the discharge stream along the main cylindrical axis of the packed column and convey the particles generally radially toward the cylindrical wall.
[0016] In one embodiment, the fan defines at least one axial opening configured to convey the exhaust stream toward the outlet. Thus, the fan may have one or more openings that provide a fluid path from the inlet to the outlet.
[0017] In one embodiment, the fan includes an annular ring defining at least one axial opening.
[0018] In one embodiment, the fan is mechanically and / or electromagnetically and / or hydraulically driven.
[0019] In one embodiment, the fan includes circumferentially positioned magnets disposed thereon and the packed tower includes corresponding circumferentially positioned drive coils located on the packed tower housing, such that the fan can be driven as a motor with the stator components provided by the coils on the packed tower and the rotor components provided by the magnets on the fan.
[0020] In one embodiment, circumferentially positioned drive coils are located on the exterior surface of the packed tower housing.
[0021] In one embodiment, the fan includes at least one opening configured to convey the tower fluid, and the force generated from conveying the tower fluid through the at least one opening rotates the fan, such that the fluid being ejected by the fan itself can be used to rotate the fan.
[0022] In one embodiment, the packed tower includes at least one opening configured to convey tower fluid toward the fan, such that the force generated from receiving the tower fluid by the fan rotates the fan, and thus the fluid being directed onto the fan can be used to rotate the fan.
[0023] In one embodiment, the packed tower housing includes a shaft configured to couple to the fan and rotate the fan, thus providing a mechanical coupling from the motor to rotate the fan.
[0024] In one embodiment, the packed tower housing includes a converging structure configured to concentrate the flow of the exhaust stream toward the fan. The converging or conical structure can thus direct the exhaust stream toward the fan, increasing its flow rate thereto.
[0025] In one embodiment, the packed column housing includes a fluid trap structure configured to resist flow of the exhaust stream toward the inlet. The fluid trap structure provides a back pressure that resists flow of the exhaust stream and instead promotes flow toward the outlet. The fluid trap can be formed on an exterior surface of a conical structure.
[0026] In one embodiment, the converging structure comprises a conical structure configured to concentrate the flow of the exhaust stream towards the center of the fan.
[0027] In one embodiment, the converging structure is positioned upstream of the fan and downstream of the inlet.
[0028] In one embodiment, the packed tower housing includes at least one cyclone separator configured to receive the exhaust stream from the fan.
[0029] In one embodiment, at least one cyclone separator is positioned downstream of the fan and upstream of the outlet.
[0030] In one embodiment, the packed tower housing includes at least one spray nozzle configured to spray the fan with tower fluid.
[0031] Further particular and preferred aspects are set out in the accompanying independent and dependent claims. Features of the dependent claims may be combined with features of the independent claims where appropriate and in combinations other than those explicitly set out in the claims.
[0032] It will be appreciated that where a device feature is described as operable to provide a function, this includes a device feature that provides that function or that is adapted or configured to provide that function.
[0033] Embodiments of the present invention will now be further described below with reference to the accompanying drawings. [Brief explanation of the drawings]
[0034] [Figure 1] FIG. 1 is a schematic diagram of a portion of a packed tower incorporating a fan according to one embodiment. [Figure 2] FIG. 2 is a schematic view of the underside of the fan. [Figure 3] FIG. 2 is a schematic perspective view of a fan. DETAILED DESCRIPTION OF THE INVENTION
[0035] Before describing the embodiments, an overview is first provided below. The embodiments provide a packed tower apparatus having a fan that promotes flow of an incoming exhaust stream and helps remove particles from the exhaust stream. This helps relieve any backpressure that would otherwise restrict the flow of the exhaust stream and improve the particle removal performance of the packed tower. Typically, the fan is a combined mass flow and centrifugal fan, such as an axial centrifugal fan. The fan can be positioned in a variety of different locations within the packed tower, and more than one fan can be provided if desired. Operation of the fan can be achieved in a variety of different ways, such as using an electric drive, a mechanical drive, and / or by being driven by the fluid within the packed tower.
[0036] packed tower Figure 1 is a schematic diagram showing a portion of a packed tower, generally 10, incorporating a fan 20 according to one embodiment. Figure 2 is a schematic diagram showing the underside of fan 20. Figure 3 is a schematic perspective view of fan 20.
[0037] Packed tower 10 typically forms a subsequent stage of the abatement device. Packed tower 10 has an inlet 30 that receives a discharge stream 5 from an upstream stage of the abatement device, such as an abatement chamber weir. The discharge stream 5 flows upward against gravity through packing medium 40. A packed tower fluid 50, such as water, flows downward through packing medium 40 against the flow of the discharge stream due to gravity. This helps to entrain particles in the discharge stream 5 and dissolve water-soluble gases. Packed tower fluid outlet 35 is provided to allow the packed tower fluid 50 to be removed from packed tower 10. Positioned downstream of, and typically positioned at an elevation above, packing medium 40 is a nozzle 60 that delivers packed tower fluid 50. Additional nozzles may be provided elsewhere, such as downstream of fan 20, if desired. The packed column fluid 50 is either sent to a drain (once-through design) or (partially) recycled; both have advantages: the once-through approach uses fresh water which can dissolve larger amounts of water-soluble gases, while the recirculation system is more economical in terms of water use but has lower cleaning capacity (depending on the degree of recirculation) since the water already contains dissolved gases.
[0038] Also positioned downstream of the packing medium 40 and typically positioned elevated above the nozzle 60 is a conical structure 70. The conical structure 70 has a larger cross-sectional area opening 80 located near the inlet 30 and narrows downstream from the opening 80 to a smaller cross-sectional area opening 90 distal from the inlet 30. The opening 80 has a radially extending lip portion that curves outward toward the narrower opening 90 and returns to form a trough 100. A cooperating rim structure 110 is positioned to extend into the gap defined between the trough 100 and a flat surface 120 of the conical structure 70. The trough 100 forms a water trap with the rim structure 110, as described in more detail below. The opening 90 has a curved portion 130 that follows an arc extending radially outward toward the wall of the packed tower housing 200.
[0039] The fan 20 is positioned downstream of the conical structure 70 near the opening 90. The fan 20 has a housing 140 having a circular end plate 150 and a cylindrical wall 160. The end plate 150 carries fan vanes 170 and the cylindrical wall 160. As best seen in FIGS. 2 and 3 , air vents 240 are formed in the end plate 150. In this example, the air vents 240 are circular and positioned circumferentially around the end plate. However, it will be appreciated that the air vents 240 can have any suitable shape and location that allows fluid communication through the fan 20. As can be seen, the shapes of the fan vanes 170 and the curved portion 130 are compatible. The fan vanes 170 and the curved portion 130 are positioned to provide a clearance extending between them. The fan vanes 170 are shaped in the manner of an axial centrifugal fan. The cylindrical wall 160 carries magnets 180. A corresponding coil 190 is positioned around the circumference of the packed tower housing 200. Positioned along the periphery of the open end of the cylindrical wall 160 is a flotation ring 210. An annular trough 220 extends radially inward from the inner surface of the packed tower housing 200 and receives the flotation ring 210 therein. Positioned downstream of the fan 20 is an outlet 230.
[0040] During operation, the nozzle 60 sprays packed tower fluid 50 near the conical structure 70. The coil 190 is energized to rotate the fan 20. The presence of the packed tower fluid 50 in the trough 220 provides a fluid bearing for the floating ring 210 as it floats. The rotation of the fan 20 induces a mass flow of fluid within the packed tower housing 200. The shape of the conical structure 70, the presence of the curved portion 130, and the presence of the vent 240, along with the backpressure caused by the presence of the packed tower fluid 50 in the trough 100 (which acts as a fluid trap), cause the exhaust stream 5 within the packed tower housing 200 to be transported entirely from the inlet 30 through the vent 240 to the outlet 230. This mass flow helps create a reduced pressure, which helps draw the exhaust stream 5 through earlier stages of the abatement device and through the packing medium 40, reducing the backpressure experienced by upstream semiconductor processing tools.
[0041] The presence of packed tower fluid 50 helps to entrain particles and dissolve soluble compounds in the discharge stream 5. Packed tower fluid 50 also helps keep the structures within packed tower housing 200 clean and provides a fluid bearing for fan 20 and a fluid trap within trough 100 to provide back pressure to push the discharge stream through vent 240. The action of fan vanes 170 helps separate packed tower fluid 50 and any particulate matter from the discharge stream 5. The separated material is propelled generally toward packed tower housing 200 and is generally confined by cylindrical wall 160 and end plate 150, where it falls under gravity in the gap between conical structure 70 and packed tower housing 200 and enters trough 100, where it overflows back onto the packing medium 40.
[0042] An embodiment provides an arrangement in which a centrifugal impeller is mounted vertically on top of a water-washed packed tower and driven around its periphery by a magnetic coupling acting through the packed tower wall. The impeller is positioned on a hydrodynamic bearing at the outlet to a conical inlet, which accelerates the process flow radially into the center of the impeller and causes it to impact the packed tower wall. The atomized spray adds water droplets to the incoming process flow to entrain powder particles and also clean the impeller / inlet assembly. The water and process flow are then separated by cyclonic action, so that the water (and entrained particulate matter) is washed into the packed tower and gas escapes from the top of the packed tower, thereby providing the benefits of increased entrainment through the system and water and particle removal. This arrangement provides additional gas entrainment through the abatement system by mechanical means rather than using an air amplifier. Alternatively, a rotary fan is fitted to the exhaust port of the packed tower and mounted vertically inside a pipe. Positioning the fan inside the packed tower allows for the atomized spray to be used to clean the fan. The use of a centrifugal impeller allows the water / particles to be expelled towards the walls of the packed column.
[0043] An embodiment provides a centrifugal compressor rotor confined within the wall of a cylindrical tube and mounted on a hydrodynamic bearing surface. Magnetic coupling provides a means to rotate the compressor without the need for an airtight seal within the wall for a drive shaft or drive belt. A conical inlet structure directs the incoming gas stream into the center of the centrifugal compressor rotor, accelerating it outward. The gas escapes through openings in the rotor support, whereby entrained liquid separates and falls down the gap between the inlet structure and the tube wall. An additional water mist spray is provided to assist in cleaning the rotor and entrain suspended particles in the gas stream. Blades are provided on the underside, and openings allow gas to flow through the rotor near its periphery. This provides an arrangement with a vertically mounted centrifugal impeller (other embodiments have a once-through operation and a horizontal impeller) with provisions for water reclamation and recirculation. A rim drive and bearing mechanism means the rotor can be sealed within a packed tower.
[0044] An air cyclone or air cyclones may be mounted above the centrifugal rotor to remove atomized water droplets from the exhaust and prevent excess water transport to the exhaust.
[0045] In another variation, the centrifugal compressor rotor is mounted on a driven, rotating central shaft rather than being driven by a rim drive. The shaft is driven by a motor mounted on the top of the scrubbing tube, either by a direct shaft passing through a rotary seal in the packed tower lid or through a magnetic shaft coupling in the scrubbing tube lid. Magnetic couplings are advantageous in that they allow the rotor to be sealed within the packed tower. The shaft can also have a magnetic or mechanical bearing mounted in the center of the air cyclone assembly to provide support for the shaft. This configuration reduces the diameter of the system because it does not require a rim drive around the tube, but increases the height of the assembly by the height of the motor. The exhaust port is then offset from the center of the tube because the drive motor is central.
[0046] In another variation, the tower fluid is used to drive a fan. This is accomplished by directing the fluid over the fan to cause it to rotate and / or by having openings on the fan through which the fluid is emitted.
[0047] Yet another variation would be to place the drive motor below the flush tube, but this is not preferred as the drive shaft, penetrations, and bearings would pass through the unwashed exhaust stream and would therefore be exposed to more powder and acid, which can shorten the life of the parts.
[0048] Although illustrative embodiments of the present invention have been disclosed in detail herein with reference to the accompanying drawings, it is understood that the present invention is not limited to the precise embodiments, and that various changes and modifications can be effected therein by those skilled in the art without departing from the scope of the present invention as defined by the appended claims and their equivalents.
[0049] Reference sign Discharge Stream 5 Packed tower 10 Fans 20 entrance 30 exit 35 Filling medium 40 Packed tower fluid 50 Nozzle 60 Conical Structure 70 Opening 80,90 Trough 100,220 Rim structure 110 flat surface 120 Curved section 130 Housing 140 End plate 150 Cylindrical wall 160 Fan Vane 170 Magnet 180 Coil 190 Packed Tower Housing 200 Floating Ring 210 exit 230 Ventilation holes 240
Claims
1. 1. A packed tower for treating an effluent stream comprising fluids and particles from an abatement device, comprising: a packed tower housing; The packed tower housing comprises: an inlet for receiving the exhaust stream; an outlet for discharging the exhaust stream; a packing matrix contained within the packed tower housing between the inlet and the outlet, the packing matrix configured to entrain at least a portion of the particles from the fluid as the discharge stream flows therethrough; a fan contained within the packed tower housing, the fan configured to propel the exhaust stream from the inlet toward the outlet and to remove at least a portion of the particles from the fluid; the fan includes an axial centrifugal fan having a centrifugal impeller; the centrifugal impeller is configured to remove at least a portion of the particles from the fluid; the fan includes at least one opening configured to convey tower fluid, and a force generated from conveying the tower fluid through the at least one opening causes the fan to rotate. A packed tower characterized by:
2. the fan is configured to generate a motive force that induces a flow of the exhaust stream from the inlet to the outlet. The packed tower according to claim 1.
3. the centrifugal impeller is axially aligned with a primary direction of flow of the discharge stream from the inlet to the outlet; The packed tower according to claim 1.
4. the centrifugal impeller is configured to propel the discharge stream from the inlet to the outlet along the primary direction of flow of the discharge stream and to propel the particles transversely to the primary direction of flow. The packed tower according to any one of claims 1 to 3.
5. the fan defines at least one axial opening configured to convey the exhaust stream toward the outlet; the fan includes an annular ring defining the at least one axial opening. The packed tower according to any one of claims 1 to 4.
6. the fan is at least one of mechanically, electromagnetically, and fluidically driven; and / or the fan including circumferentially positioned magnets disposed thereon, and the packed tower including corresponding circumferentially positioned driver coils positioned on the packed tower housing; The packed tower according to any one of claims 1 to 5.
7. at least one opening configured to convey tower fluid toward the fan; the force generated by the fan from the tower fluid causes the fan to rotate; The packed tower according to any one of claims 1 to 6.
8. The packed tower housing includes a shaft coupled to the fan and configured to rotate the fan. The packed tower according to any one of claims 1 to 7.
9. the packed tower housing includes a converging structure configured to converge a flow of the exhaust stream toward the fan; the converging structure comprises a conical structure configured to converge the flow of the exhaust stream toward a center of the fan. The packed column according to any one of claims 1 to 8.
10. the converging structure is positioned upstream of the fan and downstream of the inlet; The packed tower according to claim 9.
11. the packed tower housing includes a fluid trap structure configured to resist the discharge stream toward the inlet. The packed tower according to any one of claims 1 to 10.
12. the packed tower housing includes at least one cyclone separator configured to receive the exhaust stream from the fan; the at least one cyclone separator is positioned downstream of the fan and upstream of the outlet; The packed column according to any one of claims 1 to 11.
13. the packed tower housing includes at least one spray nozzle configured to spray the fan with the tower fluid; The packed column according to any one of claims 1 to 12.
Citation Information
Patent Citations
Water-filtering air purifier
CN104056511A
FR03066253A1
Abatement apparatus
GB2528444A
JP1972015035U
JP1972015036U