1. Field of the Invention
The present invention relates to a battery module, especially to a battery module suitable for production.
2. Description of the Prior Art
A conventional battery module usually utilizes wires for connecting the circuits inside it. For example, it utilizes a wire for connecting a circuit board and the positive electrode of a first battery set; a wire for connecting the circuit board and a nickel strip disposed between the first battery set and a second battery set; a wire for connecting the circuit board and another nickel strip disposed between the second battery set and a third battery set; and a wire for connecting the circuit board and the negative electrode of the third battery set.
According to the prior art, the connection between the nickel strip, the circuit board and the wires is carried out by using solder which is eco-unfriendly. Furthermore, the soldering process may be seriously affected by human factors which may cause the problems such as cold welding, missing weld, solder beading, and solder dross. Therefore, the applicant discloses a battery module in a previously filed U.S. patent application (U.S. patent application Ser. No. 13/079,535) to tackle the above-mentioned problems. Afterward, the applicant further improves the design of the battery module and consequently files the current application.
The present invention discloses a battery module comprising: a casing which is capable of holding a plurality of battery cells and has a circuit board holding structure; a circuit board held by the circuit board holding structure; a plurality of conducting buses disposed on the casing for electrically connecting the plurality of battery cells and the circuit board; and a plurality of battery cell sets, each of which including at least two battery cells and being independent from any of the other battery cell sets in structure, so that the battery cell sets can be affixed to the casing and detached from the casing respectively.
An embodiment of the aforementioned battery cell set comprises: a battery holder including a fastening structure capable of being affixed to the casing; a first battery cell disposed at a first side of the battery holder; a second battery cell disposed at a second side of the battery holder, so that the first battery cell and the second battery cell embrace the battery holder from both of the first and second sides; a first conducting strip for electrically connecting positive electrodes of the first and second battery cells to a first conducting bus of the plurality of conducting buses; and a second conducting strip for electrically connecting negative electrodes of the first and second battery cells to a second conducting bus of the plurality of conducting buses, wherein any two of the adjacent battery cell sets share the same first or second conducting bus, so as to achieve the effect of series or parallel connection. Moreover, the first and second conducting strips are also used for binding the battery holder and the first and second battery cells together.
In an embodiment of the present invention, the aforementioned battery holder is a moveable battery holder. The moveable battery holder, accompanied with the first and second battery cells and the first and second conducting strips, is capable of being affixed to the casing and detached from the casing in a reversible way. In another embodiment of the present invention, the aforementioned battery holder is an immobile battery holder which can be affixed to the casing firmly.
The present invention also discloses a bus layout structure of a battery module, the bus layout structure comprising: a casing for holding a plurality of battery cells; and a plurality of conducting buses being integrated with the casing, wherein one end of each of the conducting buses is for electrically connecting to a circuit board; a part of the plurality of conducting buses is exposed for connecting with the plurality of battery cells; and another part of the plurality of conducting buses is implanted inside the casing without exposing itself, so as to avoid direct contact with the plurality of battery cells, which may cause safety issues.
In an embodiment of the present invention, the aforementioned plurality of conducting buses is implanted inside the casing through the following steps: providing a plurality of conducting buses and/or at least a wire (e.g. a wire for connecting a circuit board and a thermistor); providing a mold; disposing the plurality of conducting buses and/or the wire inside the mold; injecting a melted non-conductive material into the mold; and cooling the melted non-conducting material (e.g. plastic material) and performing a mold-release process, so as to form a casing, wherein the casing is capable of holding a plurality of battery cells and integrated with the plurality of conducting buses and/or the wire; a part of the plurality of conducting buses and/or the wire is exposed for connecting to the plurality of the battery cells; and another part of the plurality of conducting buses and/or the wire is implanted inside the casing to avoid direct contact with the plurality of the battery cells.
In addition to the aforementioned bus layout structure, the present invention provides another bus layout structure of a battery module, which comprises: a casing capable of holding a plurality of battery cells; a plurality of conducting buses disposed on the casing, wherein a part of the plurality of conducting buses is exposed and another part of the plurality of conducting buses is unexposed; and a non-conductive film (e.g. a plastic film such as a mylar film) covering the unexposed part of the plurality of conducting buses and being fixed to the casing, so as to immobilize the plurality of conducting buses, wherein the exposed part of the plurality of conducting buses connects to the plurality of battery cells.
For realizing the above-mentioned bus layout structure with the non-conductive film, the present invention provides a bus layout method comprising the steps of providing a casing capable of holding a plurality of battery cells; disposing a plurality of conducting buses and/or at least a wire (e.g. a wire for connecting a circuit board and a thermistor) on the casing; providing a non-conductive film (e.g. a plastic film such as a mylar film) for covering a part of the plurality of conducting buses and/or the wire and a part of the casing; positioning a mask on the non-conductive film; and providing energy without physical contact for the places where the non-conductive film covers the part of the casing, so as to combine the non-conductive film with the casing in an irreversible way and thereby immobilize the plurality of conducting buses and/or the wire covered by the non-conductive film, wherein a part of the plurality of buses which is not covered by the non-conductive film is for connecting with the plurality of the battery cells. Furthermore, the step of providing energy without physical contact is carried out by utilizing a non-contact welding technique such as the laser welding technique.
In addition to the aforementioned bus layout structures, the present invention further provides another bus layout structure of a battery module, which comprises: a casing capable of holding a plurality of battery cells; a plurality of conducting buses, each of which having at least one opening; and a plurality of fastenings, each of which being a part of the casing or a detached fastening, wherein each of the plurality of fastenings is inserted into one of the openings, has one end staying under the opening and being fixed to the casing, and has another end staying above the opening and being fixed to the conducting bus of the opening. Therefore, since one end of the fastening is fixed to the casing while another end of the fastening is fixed to its corresponding conducting bus, the casing and the conducting bus is thereby bound together by the fastening.
In order to realize the above-mentioned bus layout structure with the fastenings, the present invention provides a bus layout method comprising: providing a casing capable of holding a plurality of battery cells; providing a plurality of conducting buses, each of which having at least one opening; providing a plurality of fastenings, each of which being a part of the casing or a detached fastening; putting the openings of the plurality of conducting buses on the fastenings respectively, wherein each of the plurality of fastenings is inserted into one of the openings, has one end fixed to the casing, and has another end fixed to the conducting bus of the opening; and providing energy with physical contact for the plurality of fastenings, so as to partially melt the plurality of fastenings to thereby combine the plurality of conducting buses with the casing by the fastenings, wherein the step of providing energy with physical contact utilizes one of the heat fusion welding technique, ultrasonic welding technique and vibration welding technique.
The present invention also discloses a connection structure between battery cells and conducting buses of a battery module. The connection structure comprises: a casing capable of holding a plurality of battery cells including a first battery cell; a plurality of conducting strips having a first conducting strip, each of the conducting strips having one end connecting to at least one of the battery cells; a plurality of conducting buses disposed on the casing and connected to the plurality of battery cells through the plurality of conducting strips, wherein the plurality of conducting buses includes a first conducting bus, the first battery cell connects to the first conducting bus through the first conducting strip, and the first conducting bus has a protrudent part (e.g. a protrudent part in an upside-down U-shape) for realizing the contact between the first conducting bus and the first conducting strip; and a flexible pad (e.g. a soft pad made of rubber) placed under the protrudent part on the casing for providing an upward force to make the first conducting bus closely connect to the first conducting strip.
Another connection structure between battery cells and conducting buses of a battery module of the present invention comprises: a casing capable of holding a plurality of battery cells including a first battery cell; a plurality of conducting strips having a first conducting strip, each of the conducting strips having one end connecting to at least one of the battery cells; a plurality of conducting buses disposed on the casing and connected to the plurality of battery cells through the plurality of conducting strips, wherein the plurality of conducting buses includes a first conducting bus, the first battery cell connects to the first conducting bus through the first conducting strip, and the first conducting bus has a protrudent part (e.g. a protrudent part in an upside-down U-shape) for realizing the contact between the first conducting bus and the first conducting strip; and a conductive bump (e.g. a silver bump) placed on the protrudent part for assisting the connection between the first conducting bus and the first conducting strip. In a preferred embodiment, the conductivity of the conductive bump is higher than the conductivity of the first conducting bus for better conduction.
The present invention further discloses a connection method for connecting battery cells and conducting buses of a battery module. The connection method comprises: forming a casing which is capable of supporting a plurality of battery cells and has a plurality of openings; providing a plurality of conducting strips, each of which connecting to at least one of the battery cells; disposing a plurality of conducting buses on the casing, the plurality of conducting buses connecting to the plurality of battery cells through the plurality of conducting strips, each of the conducting buses defining a contact position where it covers one of the openings of the casing; making each of the conducting strips cover one of the contact positions, so that the conducting strips overlap the contact positions which further overlap the openings of the casing; and providing energy for the contact positions through the openings of the casing, so as to combine the conducting strips with the conducting buses and thereby realize the electric connection between the conducting buses and the battery cells through the conducting strips. Additionally, the step of providing energy for the contact positions may utilize any of the laser welding technique, spot welding technique, heat fusion welding technique and ultrasonic welding technique.
The present invention also provides a connection structure between a circuit board and conducting buses of a battery module. The connection structure comprises: a circuit board including a plurality of contact positions and a plurality of conductors, each of the conductors having a vertical part for connecting one of the plurality of contact positions and having a cross-section in L-shape; a casing being capable of supporting a plurality of battery cells and having a circuit board holding structure which includes at least a holding space for accommodating the circuit board, a plurality of supports for sustaining the circuit board from both sides of the circuit board, and at least a connection gate; and a plurality of conducting buses disposed on the casing, wherein each of the plurality of conductors has a horizontal part paralleling the casing, and the horizontal parts of the plurality of conductors connect with the plurality of conducting buses, so that the connection between the circuit board and the conducting buses can be carried out by the conductors via the connection gate.
Another connection structure between a circuit board and conducting buses of a battery module of the present invention comprises: a circuit board; a casing capable of supporting a plurality of battery cells; and a plurality of conducting buses disposed on the casing, wherein each of the conducting buses has one end connecting to one of the battery cells and another end as a board connection part, each of the board connection parts has a cross-section in U-shape, upside-down Ω-shape, or triangle-bell shape and is capable of holding the circuit board, and the circuit board can thereby electrically connect to the plurality of battery cells through the board connection parts of the conducting buses.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
a illustrates a first embodiment of the battery cell set of
b illustrates how the first and second subsidiary fastening structures of
c illustrates a second embodiment of the battery cell set of
d illustrates how the fastening structure of the immobile battery holder of
a illustrates a bus layout structure of the present invention.
b is a flow chart of a bus layout method for forming the bus layout structure of
c illustrates another bus layout structure of the present invention.
d is a flow chart illustrating a bus layout method for forming the bus layout structure of
e illustrates how a laser beam is used to integrate the non-conductive film with the casing through the mask of
f illustrates another bus layout structure of the present invention.
g is a bus layout method for realizing the bus layout structure of
a illustrates a connection structure between battery cells and conducting buses of the present invention.
b illustrates another connection structure between battery cells and conducting buses of the present invention.
c illustrates another connection structure between battery cells and conducting buses of the present invention.
d is a flow chart of a connection method for realizing the connection structure of
a illustrates a connection structure between a circuit board and conducting buses of the present invention.
b illustrates another connection structure between a circuit board and conducting buses of the present invention.
c illustrates another connection structure between a circuit board and conducting buses of the present invention.
d shows the connection structure of
Besides, for any two of the adjacent battery cell sets 110 of the battery module 100, the positive/negative electrode of a battery cell set 110 may share the same conducting bus 108 with the negative/positive electrode of another battery set 110 to thereby carry out the series connection of the two battery cell sets 110; or the positive/negative electrode of a battery cell set 110 may share the same conducting bus 108 with the positive/negative electrode of another battery set 110 to thereby realize the parallel connection of the two battery cell sets 110.
The present invention also provides a method to assemble the battery module 100, the method comprising the steps of assembling the battery cell sets 110, integrating the conducting buses 108 with the casing 102, combining the circuit board with the casing integrated with the conducting buses 108, and attaching the battery cell sets 110 to the casing 102. The detailed descriptions of the assembly of the battery cell set 110, the integration of the conducting buses 108 and the casing 102, the combination of the circuit board and the casing 102, and the arrangement of the battery cell sets 110 with the casing 102 are written below, respectively; therefore one of ordinary skill in the art will appreciate how to carry out the method in accordance with the disclosures of the specification.
a illustrates a first embodiment of the battery cell set 110 of
Please note that since the first and second conducting strips 208, 210 are fixed to the positive and negative electrodes of the first and second battery cells 204, 206 while the first and second battery cells 204, 206 embrace the moveable battery holder 202, the first and second conducting strips 208, 210 thereby bind the cells 204, 206 and holder 202 together. In other words, the moveable battery holder 202, the first battery cell 204, the second battery cell 206, the first conducting strip 208 and the second conducting strip 210 are integrated to become the battery cell set 110. The way to fix the first and second conducting strips 208, 210 to the first and second battery cells 204, 206 can be realized through the known welding technique such as solder welding technique, laser spot welding technique, resistance welding technique, and ultrasonic welding technique. Please also note that after reading the present disclosure, a person of ordinary skill in the art will appreciate the amount of the moveable battery holder and the amount of the battery cell could be expanded by simply attaching an additional moveable battery holder to the exposed side of the first or second battery cell, attaching an additional battery cell to the additional moveable battery holder, and using larger conducting strips to carry out the connection of the battery cells and bind the cells and holders together in the way similar to the aforementioned description, that is to say each of the conducting strips having three electrode ends and one bus end for respectively connecting the battery cells and the conducting bus and for binding the battery cells and the moveable battery holders together.
Please refer to
The aforementioned first and second moveable subsidiary holders 222, 224 includes a first and a second subsidiary fastening structures 226, 228 respectively, so that they can be fixed to or detached from the casing 102 by the first and second subsidiary fastening structures 226, 228. Besides, said moving direction of the first and second moveable subsidiary holder 222, 224 is exemplary, not a limitation to the present invention. One of ordinary skill in the art will appreciate how to make the first and second moveable subsidiary holders 222, 224 move along the axis in the same direction to thereby immobilize themselves on the casing 102 or separate themselves from the casing 102 according to the disclosure of this specification.
b illustrates how the first and second subsidiary fastening structures 226 connect with the casing 102, comprising enlarged diagrams 240, 242 of the moveable battery holder 202 in part and enlarged diagrams 241, 243 of the casing 102 in part. As shown in
Please note that the aforementioned positions and numbers of the buckles and slots are not limitations to the present invention. A person having ordinary skill in the art can make appropriate changes to the embodiments in accordance with the disclosure of the specification. For instance, two slots may be set between two buckles so that the buckles can move toward each other to thereby clasp the slots respectively. For another instance, only one slot is set between two buckles and thus the buckles can move toward each other to thereby clasp the same slot. For further instance, slots could be formed on the bottom of the moveable battery holder while buckles could be formed on the casing. In fact, as long as the fastening(s) of the moveable battery holder 202 can match the fastening(s) of the casing 102 to bind the two together, such fastening(s) could be adopted by the present invention.
c illustrates a second embodiment of the battery cell set 110 of
d illustrates how the fastening structure of the immobile battery holder 252 connects with the casing 102, comprising enlarged diagrams 262, 264 of the immobile battery holder 202 in part and enlarged diagrams 266, 268 of the casing 102 in part. As shown in
Please note that a person having ordinary skill in the art can make appropriate changes to the embodiments in accordance with the disclosure of the specification. For instance, the immobile battery holder 252 may have a plurality of pegs for being inserted into a plurality of holes of the casing 102. Basically, as long as the fastening(s) of the immobile battery holder 252 can match the fastening(s) of the casing 102 to bind the two together, such fastening(s) could be adopted by the present invention. Please also note that after reading the present disclosure, a person of ordinary skill in the art will appreciate the amount of the immobile battery holder and the amount of the battery cell could be expanded by simply attaching an additional immobile battery holder to the exposed side of the first or second battery cell, attaching an additional battery cell to the additional immobile battery holder, and using larger conducting strips to carry out the connection of the battery cells and bind the cells and holders together in the way similar to the aforementioned description, that is to say each of the conducting strips having three electrode ends and one bus end for respectively connecting the battery cells and the conducting bus and for binding the battery cells and the immobile battery holders together.
Please refer to
a illustrates a bus layout structure of the battery module 100 of the present invention, comprising an enlarged diagram 302 of the bus layout structure in part. As shown in
b is a flow chart of a bus layout method for forming the bus layout structure 300 of
The casing mentioned above is capable of holding a plurality of battery cells and integrated with the plurality of conducting buses and/or the wire; a part of the plurality of conducting buses and/or the wire is exposed for connecting to the plurality of the battery cells; and another part of the plurality of conducting buses and/or the wire is implanted inside the casing to prevent exposure and thereby avoid direct contact with the plurality of the battery cells. Similarly, the wire has one end exposed for connecting to a temperature detector (e.g. a thermistor) and another end unexposed for connecting to a circuit board (e.g. the circuit board 106 of
Please note that the aforementioned wire may be used for connecting to devices other than the temperature detector. This embodiment is characterized in combining the conducting buses and/or the wire with the casing; therefore, the device connected to the buses and/or the wire is not restricted and depends on design requirements.
c illustrates another bus layout structure for the battery module 100 of the present invention. As shown in
d is a flow chart illustrating a bus layout method for forming the bus layout structure 330 of
The aforementioned step of providing energy without physical contact is realized through laser welding technique.
f illustrates another bus layout structure of the battery module 100 of the present invention, comprising two enlarged diagrams 342, 344 of the bus layout structure in part showing how a fastening fixes a bus to a casing. As shown in
In this embodiment, the plurality of fastenings 352 is a protrudent integrated part of the casing 102 and stands on the surface of the casing 102, so that the openings 353 of the conducting buses 108 can be put on the fastenings 352 to thereby position the conducting buses 108 on the casing 102. Afterward, the plurality of fastenings 352 is partially fused by a welding method such as a heat fusion welding method, an ultrasonic welding method or a vibration welding method, and then cooled to fix the conducting buses 108 and the casing 102 together. In another embodiment, the fastenings 352 are detached fastenings while the casing 102 has a plurality of holes for the insertion of the fastenings 352; therefore, the fastenings 352 can be inserted into the holes, the openings 353 of the conducting buses 108 can be put on the fastenings 352, and the fastenings 352 can be fused and then cooled to combine the casing 102 and the conducting buses 108 together.
g is a bus layout method for realizing the bus layout structure 340 of
a illustrates a connection structure between battery cells and conducting buses of the battery module 100 of the present invention, including an enlarged diagram 402 showing a conducting bus and a flexible pad prior to their assembly. The connection structure 400 comprises: a casing 102 capable of holding a plurality of battery cells including a first battery cell 404; a plurality of conducting strips having a first conducting strip 408, each of the conducting strips having one end connecting to at least one of the battery cells; a plurality of conducting buses disposed on the casing 102 and connected to the plurality of battery cells through the plurality of conducting strips, wherein the plurality of conducting buses includes a first conducting bus 118, the first battery cell 404 connects to the first conducting bus 118 through the first conducting strip 408, and the first conducting bus 118 has a protrudent part 410 for realizing the contact between the first conducting bus 118 and the first conducting strip 408; and a flexible pad 412 (e.g. a plastic pad such as a rubber pad) placed under the protrudent part 410 on the casing 102 for providing an upward force to make the first conducting bus 118 closely connect to the first conducting strip 408.
In this embodiment, the aforementioned protrudent part 410 is in the shape of upside-down U; however, this is not a restriction to the present invention. As long as the protrudent part 410 is able to provide a zoom for accommodating the flexible pad 412 and able to closely contact the first conducting bus 118, the shape of the protrudent part 410 is unlimited. For example, the shape of trapezoid is adoptable.
b illustrates another connection structure between battery cells and conducting buses of the battery module 100 of the present invention, including enlarged diagrams 421, 422 showing how a conductive bump is set on a conducting bus. The connection structure 420 comprises: a casing 102 capable of supporting a plurality of battery cells including a first battery cell 424; a plurality of conducting strips including a first conducting strip 428, each of the conducting strips having one end connecting to at least one of the battery cells; a plurality of conducting buses disposed on the casing 102 and connected to the plurality of battery cells through the plurality of conducting strips, in which the plurality of conducting buses includes a first conducting bus 118, the first battery cell 424 connects to the first conducting bus 118 through the first conducting strip, and the first conducting bus 118 has a protrudent part 430 for realizing the contact between the first conducting bus 118 and the first conducting strip 428; and a conductive bump 432 placed on the protrudent part 430 for assisting the connection between the first conducting bus 118 and the first conducting strip 428. Please note that in this embodiment the conductivity of the conductive bump 432 (e.g. a silver bump) is higher than the conductivity of the first conducting bus (e.g. a copper bus) 118; however, this is not a restriction to the present invention. The first conducting bus 118 and the conductive bump 432 could be made of the same material.
Although the flexible pad 412 of
c illustrates another connection structure between battery cells and conducting buses of a battery module of the present invention, including a top view 441 of the battery module, a bottom view 442 of the battery module and a cross-section of the connection structure in part 445. As shown in
d is a flow chart of a connection method for realizing the connection structure 440 of
a illustrates a connection structure between a circuit board and conducting buses of the battery module 100 of the present invention, including an enlarged diagram 501 of the connection structure in part. The connection structure 500 comprises: a circuit board 106 including a plurality of contact positions (not shown) and a plurality of conductors 502, each of the conductors 502 having a vertical part for connecting one of the plurality of contact positions and having a cross-section in L-shape; a casing 102 being capable of supporting a plurality of battery cells and having a circuit board holding structure 104, the circuit board holding structure 104 including at least a holding space for accommodating the circuit board 106, a plurality of supports 504 for sustaining the circuit board 106 from both sides of the circuit board 106, and at least one connection gate 506; and a plurality of conducting buses 108 disposed on the casing 102, wherein each of the plurality of conductors 502 has a horizontal part paralleling the casing 102, and the horizontal parts of the plurality of conductors 502 connect with the plurality of conducting buses 108, so that the connection between the circuit board 102 and the conducting buses 108 is carried out by the conductors 502 via the connection gate 506.
Please note that the conductor 502 can be welded to the plurality of contact positions of the circuit board 106 and/or the conducting buses 108 through solder-free welding technique such as laser spot welding technique, resistance welding technique, and ultrasonic welding technique. Therefore, the connection between the conductors 502 and the contact positions and/or the conducting buses 108 will possess no solder, and thus achieve the eco-friendly purpose.
b illustrates another connection structure between a circuit board and conducting buses of the battery module 100 of the present invention, including an enlarged diagram 550 of a connector and another enlarged diagram 552 showing the combination of a circuit board and the connector. As shown in
c illustrates another connection structure between a circuit board and conducting buses of the battery module 100 of the present invention. The connection structure 560 comprises a circuit board 570 including a plurality of contact positions (not shown); a casing 102, capable of supporting a plurality of battery cells, having a circuit board holding space 574 for accommodating the circuit board 570; and a plurality of conducting buses 576 disposed on the casing 102, each of the conducting buses 576 having one end connecting to one of the plurality of battery cells and another end as a circuit board holding part 578 positioned at the circuit board holding space 574 for holding the circuit board 570. The circuit board holding part 578 has a cross-section in the shape of U or the like suitable for holding and immobilizing the circuit board 570; meanwhile, the circuit board holding part 578 also electrically connects to the contact positions of the circuit board 570 to thereby electrically connect the plurality of battery cells and the circuit board 570. Comparing to the embodiment of
d shows the connection structure 560 in part. It is clearly shown in
Moreover, the U shape is in a broad sense. Its outline, contour and/or curve could be changed in accordance with the practical design requirement. In fact, even other shapes such as a reversed Ω shape and a triangle shape could be options for the present invention as long as the shape can hold and immobilize the circuit board 570 well.
Finally, please note that the casing of each of the aforementioned embodiments could be an upper casing or a bottom casing of a battery module; the terms of top, bottom, length, width and the like are used for description, not as restriction to the implementation of the present invention. Actually, in another way of description, other terms could be used for interpreting the same meaning Furthermore, any of the aforementioned embodiments can be combined with one or more of the other embodiments as long as there is no conflict, so as to realize the different aspects of the present invention.
The aforementioned descriptions represent merely the preferred embodiment of the present invention, without any intention to limit the scope of the present invention thereto. Various equivalent changes, alterations, or modifications based on the claims of present invention are all consequently viewed as being embraced by the scope of the present invention.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 100124294 | Jul 2011 | TW | national |
| 100124776 | Jul 2011 | TW | national |