The present invention relates to a method of partially replacing a shell plate of a tower or a vessel.
With a tower or a vessel such as an atmospheric distillation device of a petroleum refining apparatus and a main distillation tower of a reduced-pressure distillation apparatus, in a case where one portion of a shell plate is reduced due to corrosion as a result of long-term use, there is a need for replacement and repair.
In a case where a shell plate of a tower or a vessel having large size such as the main distillation tower is replaced, there is a method of entirely taking away the tower or the vessel collectively or separately with using a large-sized crane, and entirely replacing the tower or the vessel with a new one.
There is also a method of replacing only a corroded cylindrical shell plate portion of the shell plate. With this method, for example, in a case where the cylindrical shell plate portion to be replaced is an intermediate portion of the shell plate, an upper shell is taken away with using the large-sized crane and then the cylindrical shell plate portion to be replaced is integrally taken away, a new integral cylindrical shell plate portion is attached, and then the taken upper shell is restored.
There is also a stainless plate lining method of adhering, for example, a stainless steel thin plate of 2 to 3 mm to the entire circumference of an inner surface in a corroded and reduced portion of the shell plate by welding.
There is also a metal spraying method of spraying melted anti-corrosion metal particles such as HASTELLOY and INCONEL to the inner surface in the corroded and reduced portion of the shell plate so as to form a porous anti-corrosion film.
However, with the method of entirely replacing the tower or the vessel, since a long construction period of about several months is required, there is a problem that an operation is stopped for a long period. Alternatively, since very large space is required for installation of a large-sized crane, temporary storage of devices, and the like, there is a need for temporarily taking away peripheral devices, or the like. Moreover, there is a need for entirely replacing the tower or the vessel, taking away the peripheral devices, or the like, construction cost is increased. Furthermore, a great risk is caused in construction.
With the method of integrally taking away the corroded cylindrical shell plate portion of the shell plate and attaching the new integral cylindrical shell plate portion, there is a problem that the construction period of about three to four months is required. Alternatively, there is a problem that very large space is required for the installation of the large-sized crane, the temporary storage of the devices, or the like, the construction cost is increased, or the great risk is caused in the construction.
With the stainless plate lining method, the shell plate is not replaced. Therefore, there is a problem that work reliability is low, or repair is required in the future. Alternatively, there is a problem that a cost-effectiveness performance is low, no measure can be taken against an excessively thin shell plate due to progress of corrosion, or the like.
With the metal spraying method, there is a problem that the method only serves as an emergency process, the method is not suitable for a large work range, the sprayed film occasionally comes off in accordance with a corrosion environment, or the like.
The present invention is achieved in consideration of the above situations, and an object thereof is to provide a method of partially replacing a shell plate of a tower or a vessel, capable of partially replacing the shell plate of the tower or the vessel in a short construction period at low construction cost.
In order to achieve the above object, a method of partially replacing a shell plate of a tower or a vessel according to claim 1 is a method for replacing a cylindrical shell plate portion serving as one portion of the shell plate of the tower or the vessel, wherein the cylindrical shell plate portion to be replaced is partially cut off and removed in the circumferential direction, a new partial shell plate is attached to an opening generated by the removal, and the removal and the attachment are repeated, so that the cylindrical shell plate portion is replaced.
In the invention according to claim 1, the cylindrical shell plate portion to be replaced is partially cut off and removed in the circumferential direction, the new partial shell plate is attached to the opening generated by the removal, and the removal and the attachment are repeated, so that the cylindrical shell plate portion is replaced. Therefore, it is possible to replace the cylindrical shell plate portion in a short construction period at low construction cost. That is, the cylindrical shell plate portion to be replaced is partially and successively changed with the new partial shell plate in the circumferential direction so as to be made a new cylindrical shell plate portion. Therefore, since there is no need for entirely taking away the tower or the vessel or an upper portion, a replacement task can be performed in a state that the tower or the vessel remains standing at a site. Thus, it is possible to shorten the construction period and reduce the construction cost. Particularly, due to the shortened construction period, it is possible to shorten an operation stoppage period of the whole facilities and hence reduce a loss in accordance with the operation stoppage. Since the cylindrical shell plate portion is replaced by the removal of one part of the cylindrical shell plate portion and the attachment of the new partial shell plate, members to be handled are not large-sized. Therefore, handling is easily performed, construction space is small, and the number of required workers can be reduced, so that it is possible to improve work safety. Unlike the repair with the lining method, the metal spraying method, and the like, the method is to replace the corroded and reduced portion of the shell plate with a new member. Therefore, it is possible to recover mechanical strength of the tower or vessel, and largely extend the life thereof.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 2, in the invention according to claim 1, the new partial shell plate is obtained in a case where the cylindrical shell plate portion is substantially equally split into a plurality of sections in the circumferential direction.
The new partial shell plate is obtained in a case where the cylindrical shell plate portion is basically equally split in the circumferential direction. However, in a case where a member such as a nozzle is placed at a split position, and the like, split parts (split lines) are required to be slightly moved in the circumferential direction. Therefore, the cylindrical shell plate portion is substantially equally split.
In the invention according to claim 2, since the new partial shell plate can be formed into the substantially same shape, it is possible to efficiently perform manufacture and attachment tasks of the new partial shall plate.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 3, in the invention according to claim 1 or 2, two facing parts located in the circumferential direction of the cylindrical shell plate portion are partially cut off and removed, the new partial shell plates are attached to openings generated by the removal, and the removal and the attachment are repeated.
In the invention according to claim 3, the two facing parts located in the circumferential direction of the cylindrical shell plate portion are cut off and removed, the new partial shell plates are respectively attached to the openings generated by the removal, and the removal and the attachment are repeated. Therefore, in a state that both the openings are generated, balance of a section modulus in the circumferential direction of the cylindrical shell plate portion is favorable, and strength can be stabilized.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 4, in the invention according to any of claims 1 to 3, size in the circumferential direction of the opening is larger than size in the circumferential direction of the new partial shell plate to be attached.
In the invention according to claim 4, a gap can be provided in the circumferential direction of the cylindrical shell plate portion between the opening generated by removing one part in the circumferential direction of the cylindrical shell plate portion and the new partial shell plate. Therefore, with using this gap, a tool such as a cord is inserted, tasks are performed, or the workers can get in and out of an interior of the shell plate through the gap. Thus, it is possible to increase workability.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 5, in the invention according to any of claims 1 to 4, before forming the opening, a deformation preventing reinforcing member is attached over the entire circumference of the shell plate in the vicinity of the cylindrical shell plate portion.
In the invention according to claim 5, the deformation preventing reinforcing member is attached over the entire circumference of the shell plate in the vicinity of the cylindrical shell plate portion. Therefore, during the replacement task of the cylindrical shell plate portion, it is possible to prevent deformation in a cross section of a portion of the shell plate in the vicinity of this cylindrical shell plate portion.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 6, in the invention according to any of claims 1 to 5, before forming the opening, a replaced portion reinforcing member is attached to the cylindrical shell plate portion.
In the invention according to claim 6, the replaced portion reinforcing member is attached to the cylindrical shell plate portion. Therefore, even in a case where the strength is largely reduced due to corrosion and the like in the cylindrical shell plate portion, enough strength is kept, and one part in the circumferential direction of the cylindrical shell plate portion can be removed.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 7, in the invention according to any of claims 1 to 6, a hole is formed to pass through from the inner side to the outer side of the cylindrical shell plate portion, the hole serving as a mark to determine a cut-off position for forming the opening.
In the invention according to claim 7, after a marking line is drawn corresponding to a position of an internal component or the like on the inner side of the cylindrical shell plate portion, it is possible to easily and precisely draw a marking line for cut-off for forming the opening on the outer side of the cylindrical shell plate portion with the hole serving as the mark.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 8, in the invention according to any of claims 1 to 7, after the new partial shell plates are manufactured and temporarily assembled to a new cylindrical shell plate portion in a plant for confirmation, the new partial shell plates are conveyed to a site where a replacement task is performed.
In the invention according to claim 8, labor of the replacement task at the site is reduced, so that it is possible to shorten the construction period.
With regard to the method of partially replacing the shell plate of the tower or the vessel according to claim 9, in the invention according to any of claims 1 to 8, a trolley beam is provided along the circumferential direction of the cylindrical shell plate portion, and a member such as the new partial shell plate is moved in the circumferential direction of the cylindrical shell plate portion with using this trolley beam.
In the invention according to claim 9, even in a case where there is a range in the circumferential direction in which a crane or the like cannot be used, such as a case where other devices come close to a periphery of the cylindrical shell plate portion, it is possible to safely and easily move the member such as the new partial shell plate to the range in the circumferential direction with using the trolley beam.
According to the method of partially replacing the shell plate of the tower or the vessel of the present invention, it is possible to partially replace the shell plate of the tower or the vessel in a short construction period at low construction cost.
Hereinafter, an embodiment of the present invention will be described with reference to the drawings.
In this embodiment, the present invention is applied to a case where a shell plate of an atmospheric distillation device of a petroleum refining apparatus or a main distillation tower of a reduced-pressure distillation apparatus is partially replaced.
In a method of partially replacing a shell plate of a main distillation tower according to this embodiment, firstly, a portion of the shell plate which is reduced due to corrosion or the like is examined so as to determine a range to be replaced. The main distillation tower of the present embodiment is a large-sized tower (distillation tower) having a cylindrical cross section, and a diameter of the shell plate in a trunk thereof is about 4 to 10 m. As shown in
In this method of partially replacing the shell plate of the main distillation tower, split plates formed into a shape obtained in a case where this cylindrical shell plate portion 2 is equally split into a plurality of sections in the circumferential direction are newly manufactured. The new split plates are repeatedly fitted and welded to openings generated by partially cutting out the cylindrical shell plate portion 2 in the circumferential direction, so that the cylindrical shell plate portion 2 is changed with a new cylindrical shell plate portion.
The new split plates are preliminarily manufactured in a plant, and then conveyed to a site.
A manufacturing method of the new split plate will now be described.
It should be noted that before this manufacturing task in the plant, size, situations, and the like of parts of the main distillation tower including the cylindrical shell plate portion 2 for manufacturing the new split plate and the like are obtained, as a matter of course.
Firstly, as shown in
Next, as shown in
Then, as shown in
Next, as shown in
When the attachment of the internal and external components is finished, as shown in
Next, a method of replacing the cylindrical shell plate portion 2 at the site will be described.
Firstly, a foothold and a trolley station are temporarily provided in the vicinity of the cylindrical shell plate portion 2.
Then, a lagging material around the cylindrical shell plate portion 2 is disassembled.
Then, piping and the external components which disturb a replacement task are temporarily detached.
Then, as shown in
Next, as shown in
Next, as shown in
Next, the openings for attaching the new split plates 3 are formed. The openings are provided at two facing parts located in the circumferential direction of the cylindrical shell plate portion 2 (positioned to be symmetrical with respect to a point in a plan view). That is, as shown in
Next, as shown in
After that, similarly and repeatedly, the openings 6 are formed at two facing parts located in the circumferential direction of the cylindrical shell plate portion 2, and the new split plates 3 are attached to the openings 6. The adjacent new split plates 3 are butt jointed to each other by welding. The formation of the openings 6 and the attachment of the new split plates 3 are performed in the order shown by arrows and the numbers in
It should be noted that when the formation of the openings 6 and the attachment of the new split plates 3 are performed so that portions to which the conventional (old) major beams 12 are attached are left to the end, the conventional major beams 12 preferably function as reinforcing members at the time of the replacement task of the cylindrical shell plate portion 2. Alternatively, when the formation of the openings 6 and the attachment of the new split plates 3 are firstly performed at the portions to which the conventional major beams 12 are attached, new major beams 12 are attached in place of the conventional major beams 12, and then the formation of the openings 6 and the attachment of the new split plates 3 are performed at the other parts, the new major beams 12 preferably function as the reinforcing members at the time of the replacement task.
An attachment method of the new split plates 3 with utilizing the trolley beam 45 will now be described in detail.
As shown in
Temporary welding tools 54 and 55 of a square plate shape are provided in the new split plate 3. The temporary welding tools 54 are provided in upper and lower ends on the outer surface of new split plate 3 and side ends on the side of the already-attached new split plate 3. When the new split plate 3 is fitted into the opening 6, the temporary welding tools are abutted with the outer surface of the shell plate 1 and the outer surface of the already-attached new split plate 3 so as to position the new split plate relative to the opening 6 in the inside and outside direction of the opening 6. The temporary welding tools 55 are provided in lower ends on an inner surface of the new split plate 3. When the new split plate 3 is fitted into the opening 6, the temporary welding tools are abutted with an end surface of the shell plate 1 forming a lower side (the lower side) of the opening 6 so as to position the new split plate relative to the opening 6 in the up and down direction of the opening 6.
As shown in
After the entire cylindrical shell plate portion 2 is made the new cylindrical shell plate portion with the new split plates 3, the trolley beam 45 and the cutter guides 46 are detached, and then the trolley beam clips 42 and the cutter guide clips 41 are detached. Alternatively, the movement lift lugs 27 and the nozzle deformation preventing members 29 attached to the new split plates 3 are taken away.
Next, as shown in
As described above, after the cylindrical shell plate portion 2 is made the new cylindrical shell plate portion, the trays are assembled.
Next, the temporarily taken-away obstructive piping and the external components are restored to the original positions.
Then, the lagging material is provided around the new cylindrical shell plate portion.
Then, the foothold and the trolley station are taken away.
In such a method of partially replacing the shell plate of the main distillation tower, the cylindrical shell plate portion 2 to be replaced is partially cut off and removed in the circumferential direction, the new split plates 3 are attached to the openings 6 generated by the removal, and the removal and the attachment are repeated, so that the cylindrical shell plate portion 2 is replaced. That is, the cylindrical shell plate portion 2 to be replaced is partially and successively changed with the new split plates 3 in the circumferential direction so as to be made the new cylindrical shell plate portion 2. Therefore, since there is no need for entirely taking away the main distillation tower or the upper portion of the upper side of the cylindrical shell plate portion 2 to be replaced, the replacement task can be performed in a state that the main distillation tower remains standing at the site. Thus, it is possible to shorten the construction period and reduce the construction cost. Particularly, due to the shortened construction period, it is possible to shorten an operation stoppage period of the whole facilities and hence reduce a loss in accordance with the operation stoppage. Since it is strongly desired that the operation stoppage period is shortened as much as possible in the field of a petroleum refining apparatus and the like, this method of replacing is effective.
Since the cylindrical shell plate portion 2 is replaced by the removal of the cut-off portions of the shell plate serving as one part of the cylindrical shell plate portion 2 and the attachment of the new split plates 3, members to be handled are not large-sized. Therefore, handling is easily performed, construction space is small, and the number of required workers can be reduced, so that it is possible to improve work safety.
Unlike the repair with the lining method, the metal spraying method, and the like, the method is to replace the corroded and reduced portion of the shell plate 1 with a new member. Therefore, it is possible to recover mechanical strength of the main distillation tower, and largely extend the life thereof.
The new split plates 3 are obtained in a case where the cylindrical shell plate portion 2 is equally split into a plurality of sections in the circumferential direction. Therefore, since the new split plates 3 can be formed into the same shape, it is possible to efficiently perform manufacture and attachment tasks of the new split plates 3. It should be noted that the new split plates 3 are obtained in a case where the cylindrical shell plate portion 2 is basically equally split in the circumferential direction. However, in a case where the member such as the nozzle 21 is placed at a split position and the like, split parts (split lines) are required to be slightly moved in the circumferential direction. In this case, the size in the circumferential direction of the new split plates 3 is slightly different.
The cut-off portions of the shell plate at the two facing parts located in the circumferential direction of the cylindrical shell plate portion 2 are cut off and removed, the new split plates 3 are respectively attached to the openings 6 generated by the removal, and the removal and the attachment are repeated. Therefore, in a state that both the openings 6 are generated, balance of a section modulus in the circumferential direction of the cylindrical shell plate portion 2 is favorable, and strength can be stabilized. Further, the size in the circumferential direction of the new split plates 3 is the same, and the openings 6 have the same size. Therefore, the balance of the section modulus in the circumferential direction of the cylindrical shell plate portion 2 is further favorable.
The size in the circumferential direction of the cut-off portions of the shell plate to be removed from the cylindrical shell plate portion 2 is set to be larger than the size in the circumferential direction of the new split plates 3 to be attached. Therefore, a gap can be provided in the circumferential direction of the cylindrical shell plate portion 2 between the openings 6 generated by removing the cut-off portions of the shell plate and the new split plates 3. Thus, with utilizing this gap, a tool such as a cord is inserted, tasks are performed, or the workers can get in and out of the interior of the shell plate through the gap. Thus, it is possible to increase workability.
The holes 37 are formed to pass through from the inner side to the outer side of the cylindrical shell plate portion 2, the holes serving as marks to determine the cut-off positions for removing the cut-off portions of the shell plate. Therefore, after the marking lines are drawn corresponding to the positions of the internal components or the like on the inner side of the cylindrical shell plate portion 2, it is possible to easily and precisely draw the marking lines for cut-off of the cut-off portions of the shell plate on the outer side of the cylindrical shell plate portion 2 with the holes 37 serving as the marks.
After the new split plates 3 are preliminarily manufactured and temporarily assembled to the cylindrical shell plate portion in the plant for confirmation, the new split plates are conveyed to the construction site where the replacement task is performed. Therefore, labor of the replacement task at the site is reduced, so that it is possible to shorten the construction period.
The trolley beam 45 is provided over the entire circumference in the circumferential direction of the cylindrical shell plate portion 2, and the members such as the cut-off portions of the shell plate and the new split plates 3 are moved in the circumferential direction of the cylindrical shell plate portion 2 with using this trolley beam 45. Therefore, even in a case where there is a range in the circumferential direction in which a crane or the like cannot be used, such as a case where other devices come close to the periphery of the cylindrical shell plate portion 2, it is possible to safely and easily move the members such as the new split plates 3 to the trolley station and the range in the circumferential direction with using the trolley beam 45. It should be noted that the trolley beam 45 can be provided in one part in the circumferential direction of the cylindrical shell plate portion 2. For example, in a case where other devices come close to the periphery of the cylindrical shell plate portion 2 and the range in the circumferential direction in which the crane or the like cannot be used is about two third of the entire circumference, this range and the trolley beam 45 may be provided.
It should be noted that in the above embodiment, in a case where there is a large reduced portion due to severe progress of corrosion of the cylindrical shell plate portion 2 to be replaced, reinforcing members are preferably provided.
As the reinforcing members, for example as shown in
Before removing the cut-off portions of the shell plate from the cylindrical shell plate portion 2, a plurality of replaced portion reinforcing members 63 extending in the vertical direction on an outer surface of the cylindrical shell plate portion 2 is attached by welding so as to be spaced form each other in the circumferential direction. By providing the replaced portion reinforcing members 63, even in a case where the strength is largely reduced due to corrosion and the like in the cylindrical shell plate portion 2, enough strength is kept, and the cut-off portions of the shell plate can be removed from the cylindrical shell plate portion 2 so as to form the openings 6. When the cut-off portions of the shell plate are removed from the cylindrical shell plate portion 2 so as to form the openings 6, the replaced portion reinforcing members 63 are removed from the cylindrical shell plate portion 2 together with the cut-off portions of the shell plate (in a state that the replaced portion reinforcing members are attached to the cut-off portions of the shell plate). The replaced portion reinforcing members 63 can be for example made of the shaped steel such as the H-section steel. The replaced portion reinforcing members 63 are for example fixed to the outer surface of the cylindrical shell plate portion 2 by welding or the like. Only one replaced portion reinforcing member 63 may be provided. Alternatively, in a case where a plurality of the replaced portion reinforcing members 63 is provided, the replaced portion reinforcing members may not be necessarily equally spaced from each other. The replaced portion reinforcing members 63 may be provided not only in the up and down direction but in other directions such as the oblique direction.
It should be noted that in
In the above embodiment, the two facing parts located in the circumferential direction of the cylindrical shell plate portion 2 are successively replaced with the new split plates 3. However, instead, two parts other than the two facing parts located in the circumferential direction of the cylindrical shell plate portion 2 are cut off and removed, the new partial shell plates are attached to the openings generated by the removal, and the removal and the attachment may be repeated.
Alternatively, three or more parts which are equally spaced from each other in the circumferential direction of the cylindrical shell plate portion 2 are cut off and removed, the new partial shell plates are attached to the openings generated by the removal, and the removal and the attachment may be repeated. Further, three or more parts which are not equally spaced from each other are cut off and removed, the new partial shell plates are attached to the openings generated by the removal, and the removal and the attachment may be repeated.
Alternatively, one part in the circumferential direction of the cylindrical shell plate portion 2 is cut off and removed, the new partial shell plate is attached to the opening generated by the removal, and the removal and the attachment may be repeated.
As described above, in a case where the openings are formed in one or plural parts in the circumferential direction of the cylindrical shell plate portion 2, the number, the position, and the size of the openings are determined so as to maintain the strength preventing deformation and damage of the cylindrical shell plate portion 2 at the time of forming the openings.
In the above embodiment, the new split plate 3 is formed into a shape of the partial shell plate obtained in a case where this cylindrical shell plate portion 2 is equally split into a plurality of sections in the circumferential direction. However, instead, the new split plate may be formed into not the shape equally split but a plurality of partial shell plates having different size in the circumferential direction. It should be noted that the partial shell plate is preferably formed by splitting the cylindrical shell plate portion 2 into at least four sections in the circumferential direction.
In the above embodiment, the opening 6 is formed next to the already-attached new split plate 3, and then the next new split plate 3 is attached. However, instead, the opening 6 may be formed so as to be spaced from the already-attached new split plate 3, and then the new split plate 3 may be attached.
In the above embodiment, the size in the circumferential direction of the opening 6 to be formed is set to be larger than the size in the circumferential direction of the new split plate 3 to be attached. However, the size of the opening may be the substantially same as the size of the new split plate, and the new split plate may be attached.
In the above embodiment, the material and the like of the new split plate 3 are similar to the cylindrical shell plate portion 2. However, other materials may be used as the new split plate 3, or clad steel is used as the new split plate 3 or lining or the like is performed on an inner surface of the new split plate 3, so that corrosion resistance and the like may be enhanced.
In the above embodiment, the exits 4 are provided so that the internal components in the tower are conveyed to the exterior. However, the exits are not provided so that the internal components may be conveyed from the opening 6, or the like.
In the above embodiment, the present invention is applied to a case where the shell plate of the main distillation tower is partially replaced. However, the present invention is not limited to this but may be applied to other towers or vessels. Alternatively, after replacing the cylindrical shell plate portion serving as one portion of the shell plate of one tower or one vessel with using the present invention, as a matter of course, other cylindrical shell plate portions may be replaced.
Number | Date | Country | Kind |
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2008-056454 | Mar 2008 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2009/054153 | 3/5/2009 | WO | 00 | 12/22/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/110541 | 9/11/2009 | WO | A |
Number | Name | Date | Kind |
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2337058 | McKee | Dec 1943 | A |
Number | Date | Country |
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5-52396 | Aug 1993 | JP |
645971 | Jun 1994 | JP |
7-62837 | Mar 1995 | JP |
8-270226 | Oct 1996 | JP |
9-209582 | Aug 1997 | JP |
2004-130232 | Apr 2004 | JP |
3799367 | Jul 2006 | JP |
2007-146525 | Jun 2007 | JP |
2007-237206 | Sep 2007 | JP |
2007-321357 | Dec 2007 | JP |
Entry |
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Human translation of Fujimura et al., JP 08-270226 A. |
Machine translation of MIWA, JP 2007-237206 A. |
Machine translation of Ishii et al., JP 2007-321357 A. |
Human translation of Fujimura (JP 08-270226). |
Translation of Miwa (JP 2007-237206). |
Translation of Ishii (JP 2007-321357). |
International Search Report of PCT/JP2009/054153, mailing date Apr. 7, 2009. |
Number | Date | Country | |
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20110083312 A1 | Apr 2011 | US |