Image forming apparatus and chip
09665058 ยท 2017-05-30
Assignee
Inventors
Cpc classification
H01L2224/16225
ELECTRICITY
G03G15/80
PHYSICS
H01L23/49816
ELECTRICITY
H01L23/50
ELECTRICITY
International classification
H01R9/00
ELECTRICITY
H01L23/50
ELECTRICITY
G03G15/00
PHYSICS
Abstract
An image forming apparatus includes a board which controls an image forming job processor and an image former which performs an image forming job according to a control by the board. The board may include a plurality of power connectors for providing power, a plurality of first signal connectors continuously disposed such that they are spaced apart by a first distance in an exterior angle of the power connectors, a plurality of second signal connectors disposed such that each of them is spaced apart from one another by two or more times the first distance in an exterior angle of the first signal connectors, and a chip including a plurality of third signal connectors continuously disposed such that they are spaced apart by the first distance in an exterior angle of the second signal connectors.
Claims
1. An image forming apparatus, comprising: a board to control an image forming job processor; and an image former to perform an image forming job according to a control by the board, wherein the board comprises a chip including: a plurality of power connectors to provide power, a plurality of first signal connectors continuously disposed in an exterior angle of the power connectors, the plurality of first signal connectors being spaced apart from one another by a first distance, a plurality of second signal connectors disposed in an exterior angle of the first signal connectors, the plurality of second signal connectors including a first second signal connector, a second second signal connector, and a third second signal connector being repeatedly arranged in a same column, the second second signal connector being a nearest second signal connector in the same column to each of the first second signal connector and the third second signal connector, and being spaced apart from each of the first second signal connector and the third second signal connectors by two or more times the first distance, and a plurality of third signal connectors continuously disposed in an exterior angle of the second signal connectors, the plurality of third signal connectors being spaced apart from one another by the first distance; wherein the board comprises a plurality of layers, the plurality of first signal connectors and the plurality of second signal connectors are disposed in a same first layer of the board, and the board is connected to the image former.
2. The image forming apparatus according to claim 1, wherein the board comprises a plurality of vias to connect the plurality of first signal connectors and the plurality of second signal connectors.
3. The image forming apparatus according to claim 1, wherein the plurality of first signal connectors are arranged in a plurality of columns, continuously disposed in the exterior angle of the power connectors and spaced apart from one another by the first distance.
4. The image forming apparatus according to claim 1, wherein the plurality of second signal connectors are disposed in a line direction each spaced apart by two or more times the first distance, and are continuously disposed in a column direction in a plurality of columns each spaced apart by the first distance.
5. The image forming apparatus according to claim 1, wherein the plurality of third signal connectors are disposed in a plurality of columns continuously disposed in an exterior angle of the second signal connectors and spaced apart from one another by the first distance.
6. The image forming apparatus according to claim 1, wherein the plurality of third signal connectors are disposed on a surface of the board, and the board is connected to the image former.
7. The image forming apparatus according to claim 1, wherein the plurality of power connectors are disposed in m columns and n lines (m and n being natural numbers) each spaced apart from one another by the first distance.
8. The image forming apparatus according to claim 1 wherein the plurality of power connectors and the plurality of first signal connectors are spaced apart by a second distance from each other.
9. The image forming apparatus according to claim 3, wherein the number of the columns of the plurality of first signal connectors is one more than the number of patterns that may be disposed between the first distance.
10. An image forming apparatus, comprising: a board to control an image forming job processor; and an image former to perform an image forming job according to a control by the board, wherein the board comprises a chip including: a plurality of power connectors to provide power, a plurality of first signal connectors continuously disposed in an exterior angle of the power connectors, the plurality of first signal connectors being spaced apart from one another by a first distance, a plurality of second signal connectors disposed in an exterior angle of the first signal connectors, the plurality of second signal connectors being spaced apart from one another by two or more times the first distance, a plurality of third signal connectors continuously disposed in an exterior angle of the second signal connectors, the plurality of third signal connectors being spaced apart from one another by the first distance, and a plurality of fourth signal connectors disposed in an exterior angle of the third signal connectors, the plurality of fourth signal connectors being spaced apart from one another by two or more times the first distance.
11. The image forming apparatus according to claim 10, wherein the board comprises a plurality of layers, the plurality of third signal connectors and the plurality of fourth signal connectors are disposed in a same layer of the board, and the board is connected to the image former.
12. A chip for an image forming apparatus, the chip comprising: a control logic unit; a board electrically connected to the control logic unit; a plurality of power connectors to supply power to the control logic unit; and a plurality of signal connectors to transceiver signals between the control logic unit and an external multi-layer circuit board, wherein the plurality of signal connectors comprises: a plurality of first signal connectors disposed in an exterior angle of the power connectors, the plurality of first signal connectors being spaced apart from one another by a first distance; a plurality of second signal connectors disposed in an exterior angle of the first signal connectors, at least three of the plurality of second signal connectors being repeatedly arranged in a same column, and each of the at least three of the plurality of second signal connectors being spaced apart from at least one other of the at least of the plurality of second connectors by two or more times the first distance; and a plurality of third signal connectors disposed in an exterior angle of the second signal connectors, the plurality of third signal connectors being spaced apart from one another by the first distance; wherein the external multi-layer circuit board comprises a plurality of layers, the plurality of second signal connectors are patterned through to a layer among the plurality of layers of the external multi-layer circuit board, the plurality of third signal connectors are patterned through to another layer among the plurality of layers of the external multi-layer circuit board, and the external multi-layer circuit board is connected to an image former of the image forming apparatus.
13. The chip according to claim 12, wherein the plurality of first signal connectors are disposed in a plurality of columns, continuously disposed in the exterior angle of the power connectors and spaced apart from one another by the first distance.
14. The chip according to claim 12, wherein the plurality of second signal connectors are disposed in a line direction each spaced apart by two or more times the first distance, and are continuously disposed in a column direction in a plurality of columns each spaced apart by the first distance.
15. The chip according to claim 12, wherein the plurality of third signal connectors are disposed in a plurality of columns, continuously disposed in an exterior angle of the second signal connectors and spaced apart from one another by the first distance.
16. The chip according to claim 12, wherein the plurality of power connectors are disposed in m columns and n lines (m and n being natural numbers) each spaced apart from one another by the first distance.
17. The chip according to claim 12, wherein the plurality of power connectors and the plurality of first signal connectors are spaced apart by a second distance from each other.
18. The chip according to claim 12, wherein the chip further comprises a plurality of fourth signal connectors disposed in an exterior angle of the third signal connectors, the plurality of fourth signal connectors being spaced apart from one another by two or more times the first distance.
19. The chip according to claim 13, wherein the number of the columns of the plurality of first signal connectors is one more than the number of patterns that may be disposed between the first distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and/or other aspects of the present disclosure will be more apparent by describing certain present disclosure with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(12) Certain exemplary embodiments are described in higher detail below with reference to the accompanying drawings.
(13) In the following description, like drawing reference numerals are used for like elements, even in different drawings. The matters defined in the description, such as detailed construction and elements, are provided to assist in a comprehensive understanding of exemplary embodiments. However, exemplary embodiments can be practiced without those specifically defined matters. Also, well-known functions or constructions are not described in detail since they would obscure the application with unnecessary detail.
(14)
(15) With reference to
(16) The image former 140 performs an image forming job. More specifically, the image former 140 performs a series of operations of forming an image on a printing medium, which may include, for example, one or more sheets of paper such as glossy paper, plain paper, art paper, overhead projector film, and the like. The construction and operations of the image former 140 are generally the same as the construction and operations of an engine provided in a general image forming apparatus, and thus a specific explanation thereof is omitted.
(17) The board 200 controls a job process related to forming an image. More specifically, the board 200 receives an image forming job from an external terminal (not illustrated), and controls various operations of the image former 140 to perform the image forming job.
(18) In addition, the board 200 comprises a plurality of power connectors for supplying power, a plurality of first signal connectors continuously disposed and spaced apart by a predetermined first distance in an exterior angle of the power connectors, a plurality of second signal connectors disposed such that each of them is mutually spaced apart by twice or more of the first distance from one another in an exterior angle of the first signal connectors, and a chip 300 comprising a plurality of third signal connectors continuously disposed and spaced apart by the first distance in an exterior angle of the second signal connectors, and a pattern on a circuit board (that is, for example a PCB) for connecting the plurality of connectors of the chip to the image former 140. The specific arrangement of the board 200 will be explained hereinafter with reference to
(19) Hereinabove, the image forming apparatus 100 was explained briefly, but the image forming apparatus 100 may further comprise other configurations besides the aforementioned configuration. A more detailed configuration of the image forming apparatus will be explained below with reference to
(20)
(21) With reference to
(22) The communication interface 110 may be formed to connect the image forming apparatus 100 to a print control terminal (not illustrated), and may have a format accessible through a universal serial bus (USB), a format accessible through a local area network (LAN), and the internet, for example. The communication interface 110 may connect to the terminal through a wired or wireless network, or a combination thereof.
(23) In addition, the communication interface 110 may receive print data from a print control terminal (not illustrated). Herein, the print data may include data of a printer language such as, for example, a postscript (PS) and a printer control language (PCL), and when the image forming apparatus 100 supports direct printing, the print data may be the file itself such as a PDF, XPS, BMP, JPG, or text document (TXT). The print control terminal may include a PC, notebook PC, a PDA, a smartphone, a digital camera, a tablet, and the like.
(24) The user interface 120 may be provided with various function keys with which a user may determine or select various functions that are provided by the image forming apparatus, and the user interface 120 may display various information provided by the image forming apparatus 100. The user interface 120 may include a monitor and mouse combined, or an apparatus that provides both inputting and outputting functions. Generally, the user interface may include, for example, one or more of a keyboard, a mouse, a joystick, a button, a switch, an electronic pen or stylus, an input sound device (e.g., a microphone to receive a voice command), an output sound device (e.g., a speaker), a track ball, a remote controller, a portable (e.g., a cellular or smart) phone, a tablet PC, a pedal or footswitch, a virtual-reality device, and so on. The user interface may further include a haptic device to provide haptic feedback to a user. The user interface may also include a touch screen, for example.
(25) The storage 130 stores print data. More specifically, the storage 130 stores print data received through the communication interface 110. Such a storage 130 may be embodied as a storage medium or external storage medium inside the image forming apparatus 100, and may include for example, a removable disk including a USB, a web server through a network, and the like. In the present exemplary embodiment, storage 130 was illustrated and explained, but the storage 130 may be embodied as a memory for data storing or a memory for processing commands. For example, the storage may be embodied as a storage medium, such as a nonvolatile memory device, such as a Read Only Memory (ROM), Programmable Read Only Memory (PROM), Erasable Programmable Read Only Memory (EPROM), and flash memory, a USB drive, a volatile memory device such as a Random Access Memory (RAM), a hard disk, floppy disks, a blue-ray disk, or optical media such as CD ROM discs and DVDs, or combinations thereof. However, examples of the storage are not limited to the above description, and the storage may be realized by other various devices and structures as would be understood by those skilled in the art.
(26) The image former 140 performs an image forming job. More specifically, the image former 140 may perform a series of operations to form an image on a printing medium using print data received through the communication interface 110.
(27) The controller 150 controls various configurative elements inside the image forming apparatus. More specifically, when the controller 150 receives print data from a print control terminal (not illustrated), it may control the image former 140 so that the received print data is printed. The controller may include one or more processors for example.
(28) As aforementioned, the communication interface 110, user interface 120, storage 130, and controller 150 may be disposed in the aforementioned board 200, and some functions of the controller 150 or some functions of the image former 140 may be performed using the board 200.
(29)
(30) With reference to
(31) The control logic unit 320 may be mounted on the board 310. Specifically, the board 310 secures the control logic unit 320, and electrically connects the control logic unit 320 and the plurality of connectors 330. More specifically, the board 310 comprises a plurality of bonding fingers (not illustrated) disposed in a location corresponding to various pads of the control logic unit 320, a pattern (not illustrated) on the board 310, and a via hole (not illustrated), and may use the configuration to provide power and various signals to the control logic unit 320, and transmit signals generated in the control logic unit 320 to an external device (that is, for example, the PCB).
(32) The control logic unit (320, or core) may include a plurality of pads (or pins). Herein, the control logic unit 320 may correspond to an integrated circuit chip such as a semiconductor memory circuit such as a RAM, ROM, flash memory etc., or an ASIC chip.
(33) The plurality of connectors 330 may be physically/electrically connected to the board 200. Specifically, the plurality of connectors 330 are soldered with a plurality of terminals of the board 200, and may provide power provided from the board 200 to the control logic unit 320, or transceiver signals between the control logic unit 320 and devices on the board. Meanwhile, although the chip connected to the board 200 may be referred to as a connector, it may be referred to as a soldering, ball, terminal or pad, etc.
(34) Such a plurality of connectors 330 may be distinguished from one another as a power connector 410 and a signal connector 415 according to its function.
(35) The power connector 410 may include a ball supplying power to the control logic unit 320. Such a power connector 410 may include a ground connector configured to (or adapted to, capable of, operable to, suitable for, etc.) deliver a potential (that is, for example a ground potential) to the control logic unit 320, or a power connector configured to (or adapted to, capable of, operable to, suitable for, etc.) deliver a predetermined potential to the control logic unit 320. There may be two power connectors 410, but for stable power supply, there may be three or more power connectors as illustrated in
(36) The signal connectors 415 transceive signals between the control logic unit 320 and the board 200. Such a plurality of signal connectors 415 may be disposed in multiples of the mutually predetermined first distance, and the number of the signal connectors 415 may be determined based on the number of signals transceived to/from the chip 300.
(37) In addition, the signal connectors 415 may be disposed by a predetermined distance 490 from the power connector 410. That is, with respect to the viewpoint shown in
(38) In addition, the signal connectors 415 may include a first signal connector 420, second signal connector 430, and third signal connector 440, according to the disposition format (or the location of the pattern on the board). Meanwhile, in the illustrated example, there are only three signal connectors, but more than three signal connectors may be provided. For example, a fourth signal connector may be further included. In some cases, a fifth and sixth signal connector, or more than six signal connectors may be further included. This is explained in further detail with reference to
(39) The plurality of first signal connectors 420 may be continuously disposed, spaced apart by a first distance in an exterior angle of the power connector 410. Specifically, the plurality of first signal connectors 420 are disposed in a location spaced apart by the predetermined first distance in an exterior angle of the power connector 410, each being separated by the first distance from one another.
(40) Such a plurality of first signal connectors 420 may include a plurality of columns continuously disposed so that each of the connectors 420 are spaced apart from one another by the predetermined first distance as illustrated in
(41) For example, when a chip 300 is disposed on a circuit board where only one pattern may be formed between the first distance, the plurality of first signal connectors 420 may be disposed in two columns. On the other hand, when a chip 300 is disposed on a circuit board where two patterns may be formed between the first distance, the plurality of first signal connectors 420 may be disposed in three columns.
(42) The plurality of second signal connectors 430 may be disposed such that each of them is mutually spaced apart by two or more times the first distance in an exterior angle of the first signal connector 420. Specifically, the plurality of second signal connectors 430 may be disposed such that they are spaced apart by the first distance in an exterior angle of the first signal connector 420 from the first signal connectors 420, and also disposed such that each of them is mutually spaced apart by twice the distance of the predetermined first distance from one another.
(43) For example, the plurality of second signal connectors 420 may be disposed such that each of them is mutually spaced by two or three times the predetermined first distance from one another. However, when the plurality of second signal connectors 420 are mutually distanced by too large of a distance from one another, numerous connectors cannot be disposed on the chip, and thus it is desirable that the plurality of second signal connectors are spaced apart by six times or less of the mutually predetermined first distance.
(44) The third signal connectors 440 may be continuously disposed such that they are spaced apart by the first distance in an exterior angle of the second signal connectors 430. Specifically, the plurality of third signal connectors 440 may be disposed such that they are spaced apart by the predetermined first distance in an exterior angle of the second signal connectors 430, and so that each of them is spaced apart by the first distance from one another. Such a plurality of third signal connectors 440 may have a plurality of columns continuously disposed such that they are spaced apart from one another by the predetermined first distance as illustrated in
(45) In this case, the maximum number of the columns may desirably be one more than the number of patterns on the circuit board that may be disposed between the first distance. For example, when the chip 300 is disposed on a circuit board where only one pattern may be formed between the first distance, the plurality of third signal connectors 440 may be disposed in two columns. On the other hand, when the chip 300 is disposed on a circuit board where two patterns may be formed between the first distance, the plurality of third signal connectors 440 may be disposed in three columns.
(46) Hereinabove, the plurality of signal connectors 415 were illustrated in that they included first signal connectors to third signal connectors, but fourth signal connectors having the same format as the second signal connectors may be further disposed in an exterior angle of the third signal connectors. Various formats of the chip are explained hereinbelow with reference to
(47) Meanwhile, in explaining
(48)
(49) With reference to
(50) In addition, each conductive layer may be connected through a punch hole called a via. In a multi-layer PCB the via does not necessarily electrically connect each of all the conductive layers, but may connect only the layers necessary for electrically connecting two or more necessary PCB layers through electrical plating. The via that electrically connects these layers may be differentiated as a through hole via 210 that penetrates the entirety of the PCB layer, a blind via 220 that can be seen only from one surface of the PCB layer, and a buried via 230 that cannot be observed from either of the surfaces of the PCB and is disposed inside the PCB layer.
(51) In addition, the board 200 may include a plurality of terminals (or pads, balls, soldering areas) electrically connected to the plurality of connectors of the chip 300. Specifically, the board 200 may comprise a plurality of terminals 300 for supplying power to the chip 300 and a plurality of terminals for performing communication with the chip 300. Herein, the number of the boards 200 may correspond to the number of the terminals of the chip 300. The plurality of terminals of the board 200 are disposed such that they correspond to the connectors of the chip 300, and thus explanation on a specific disposition format of the terminals of the board 200 is omitted.
(52) Meanwhile, in
(53) When the connectors 400 disposed as illustrated in
(54) Specifically, the pattern formed on the circuit board may have a minimum width in order to properly deliver a signal. In this regard, the number of patterns that may be disposed between the terminals to be connected to the connectors of the board 200 is extremely limited. For example, when only one pattern is disposed between two terminals disposed by a predetermined distance, only the two columns (that is, the third signal connectors 440) disposed in an outer-most exterior angle of the plurality of connectors 400 of the chip 300 are patterned through the surface layer (layer 1).
(55) Therefore, the connectors 410, 420, 430 besides the two columns disposed in an outer-most angle of the plurality of connectors 400 of the chip 300 (i.e., connectors other than the third signal connectors 440) must be patterned through another layer through the via.
(56) In this regard, the connectors disposed in the third to fifth columns in the outer-most exterior angle of the plurality of connectors 400 of the chip (that is, the first signal connectors and second signal connectors) are patterned through the buried layer (layer 3) of the board 200. That is, the first signal connector and the second signal connector according to the present exemplary embodiment are connected to the image former 140 through the pattern disposed on the same layer. A more specific shape of the third layer is shown, for example, in
(57) Meanwhile, the power connector 410 may be patterned through the buried layers 2, 4 of the board 200.
(58) Hereinbelow is an explanation on the format of the first layer and third layer of the board 200 with reference to
(59)
(60) With reference to
(61) The power connector 410 may be located in the center of the chip and may include a plurality of power connectors, in m columns and n lines to have a spacing apart from another corresponding to the predetermined first distance. Such a power connector 410 may be a conventional power connector, and although not illustrated specifically, in each of the plurality of power connectors 410 on the first layer of the board, vias may be adjacently disposed, and each of the plurality of power connectors 410 may be connected to the power layer (layer 4) or ground layer (layer 2) through the vias.
(62) The first signal connectors 420 may be continuously disposed in an exterior direction of the power connectors 410, the first signal connectors 420 spaced apart from one another by the first distance. More specifically, the plurality of first signal connectors 420 are disposed such that they are spaced by the predetermined distance in an exterior direction of the power connectors 410, and each of the first signal connectors 420 may be spaced apart by the first distance from one another.
(63) In addition, in each of the plurality of first signal connectors 420 on the first layer of the board 200, there may be disposed vias to be adjacently connected to the layer 3, which are patterned through the signal layer (layer 3) through the vias.
(64) The second signal connecters 430 may be disposed such that they are spaced apart by two or more times the mutual first distance in an exterior direction of the first signal connectors 420. More specifically, the plurality of second signal connectors 430 may be disposed such that they are spaced apart by the first distance in an exterior angle from the first signal connectors 420, and each of the second signal connecters 430 may be spaced apart by two or more times (e.g., three times in the illustrated exemplary embodiment) of the predetermined first distance from one another.
(65) In addition, in each of the plurality of second signal connectors 430 on the first layer of the board 200, there are disposed vias to be adjacently connected to the layer 3, which are patterned through the signal layer (layer 3) through the vias.
(66) The third signal connectors 440 may be continuously disposed in an exterior direction of the second signal connectors 430 by the first distance. More specifically, the plurality of third signal connectors 440 may be disposed such that they are spaced apart by the first distance in an exterior angle from the second signal connectors 430, and each of the third signal connectors 440 may be mutually spaced apart by the first distance from one another.
(67) The fourth signal connectors 450 may be disposed such that each of them is spaced apart by two or more times the first distance from one another in an exterior angle of the third signal connectors 440. More specifically, the plurality of fourth signal connectors 450 may be disposed such that they are spaced apart by the first distance from the third signal connectors 440 in an exterior angle of the third signal connectors 440, and are disposed such that each of them is mutually spaced apart by two or more times the first predetermined distance (e.g., three times in the illustrated example) from one another.
(68) Herein, the third signal connectors 440 and the fourth signal connectors 450 may be patterned through the signal layer (layer 1) without additional vias.
(69)
(70) With reference to
(71) The first signal connectors 420 on the third layer are vias regarding the first signal connectors 420 on the first layer.
(72) The second signal connectors 430 on the third layer are vias regarding the second signal connectors 420 on the first layer. The second signal connectors on the third layer are disposed such that each of them is mutually spaced apart by two or more times the predetermined first distance, and thus the first signal connectors 420 and the second signal connectors 420 are patterned on the same third layer. Therefore, in the case of connecting the same connectors (or terminals), it becomes possible to use a circuit board having a lower layer (i.e., using a less number of layers) than in conventional circuit boards.
(73) Hereinbelow, an explanation on the effects of a ball arrangement method according to the present disclosure is provided, with reference to
(74)
(75) With reference to
(76)
(77) With reference to
(78)
(79) With reference to
(80)
(81) With reference to
(82) The reason why there is not enough space for drawing out a pattern routing is because there is small space for a pattern routing as illustrated in
(83) Therefore, in the present exemplary embodiment, second signal connectors are used which are disposed such that they are spaced apart by two or more times the predetermined first distance and thus even when using the same number of balls, the size of SoC and the number of PCB layers disposed could be reduced, thereby reducing the cost.
(84)
(85)
(86) More specifically, the plurality of connectors 400 of a chip according to the exemplary embodiment include power connectors 410, first signal connectors 420, second signal connectors 430, and third signal connectors 440.
(87) The power connectors 410, first signal connectors 420, and third signal connectors 440 are explained hereinabove with reference to
(88) The second signal connectors 430 may have a plurality of columns continuously disposed by the predetermined first distance. In this case, there is no limitation to the number of columns of the second signal connectors 430, but the larger the size area that the second signal connectors 430 occupy, the less number of other signal connectors may be disposed in the chip, and thus it is desirable that the second signal connectors 430 do not have many columns.
(89)
(90) More specifically, the plurality of connectors 400 of the chip according to the exemplary embodiment include power connectors 410, first signal connectors 420, second signal connectors 430, third signal connectors 440, and fourth signal connectors 450.
(91) The power connectors 410, first signal connectors 420, second signal connectors 430, and third signal connectors 440 are otherwise similar to
(92) The fourth signal connectors 450 may be disposed such that each of them is mutually spaced apart by two or more times the first distance in an exterior angle of the third signal connectors 440. More specifically, the plurality of fourth signal connectors 450 are disposed such that they are spaced apart by the first distance in an exterior angle from the third signal connectors 440, and that each of them is mutually spaced apart by two or more times (e.g., three times in the illustrated exemplary embodiment) the predetermined first distance from one another.
(93)
(94) More specifically, the plurality of connectors 400 of the chip according to the exemplary embodiment include power connectors 410, first signal connectors 420, second signal connectors 430, third signal connectors 440, and fourth signal connectors 450.
(95) The power connectors 410, first signal connectors 420, third signal connectors 440, and fourth signal connectors 450 are the same as in
(96) The second signal connectors 430 are disposed such that each of them is mutually spaced apart by two or more times the first distance from one another in an exterior angle of the first signal connectors 420. More specifically, the plurality of second signal connectors 430 are disposed such that they are spaced apart by the first distance in an exterior angle from the first signal connectors 420, and that each of them is mutually spaced apart by two or more times the predetermined first distance from one another (e.g., six times in the illustrated example).
(97)
(98) More specifically, the plurality of connectors 400 of the chip according to the exemplary embodiment include power connectors 410, first signal connectors 420, second signal connectors 430, third signal connectors 440, and fourth signal connectors 450.
(99) The power connectors 410, first signal connectors 420, and third signal connectors 440 are explained hereinabove with reference to
(100) The second signal connectors 430 may have a plurality of columns continuously disposed by the predetermined first distance. In this case, there is no limitation to the number of columns of the second signal connectors 430, but the larger the size area that the second signal connectors 430 occupy, the less number of other signal connectors may be disposed in the chip, and thus it is desirable that the second signal connectors 430 do not have many columns.
(101) The fourth signal connectors 450 may have a plurality of columns continuously disposed by the predetermined first distance. The fourth signal connectors 450 may be disposed such that each of them is mutually spaced apart by two or more times the first distance in an exterior angle of the third signal connectors 440. More specifically, the plurality of fourth signal connectors 450 may be disposed such that they are spaced apart by the first distance in an exterior angle from the third signal connectors 440, and that each of them is mutually spaced apart by two or more times (e.g., six times in the illustrated exemplary embodiment) the predetermined first distance from one another.
(102)
(103) The fifth signal connectors may be spaced apart from one another by the first distance. More specifically, the plurality of fifth signal connectors may be disposed such that they are spaced apart by the predetermined distance in an exterior direction of the fourth signal connectors, and each of the fifth signal connectors may be spaced apart by the first distance from one another. As shown in
(104) The sixth signal connectors may be disposed such that they are spaced apart by two or more times the mutual first distance in an exterior direction of the fifth signal connectors. More specifically, the plurality of sixth signal connectors may be disposed such that they are spaced apart by the first distance in an exterior angle from the fifth signal connectors, and each of the sixth signal connecters may be spaced apart by two or more times the predetermined first distance from one another (e.g., three times in the embodiment of
(105) In accordance with the disclosure herein, a size of an SoC and the number of necessary PCB layers may be reduced by providing a chip with a ball arrangement according to the above-described example embodiments. Thus, the cost of manufacturing such devices may be reduced, while obtaining the same functionality.
(106) Although example embodiments of the present invention have been shown and described, it would be appreciated by those skilled in the art that changes may be made to the example embodiments disclosed herein without departing from the principles and spirit of the invention, the scope of which is defined in the claims and their equivalents.