POINT OF ENTRY (POE) SPLITTER CIRCUITRY
20210075638 ยท 2021-03-11
Inventors
Cpc classification
International classification
Abstract
The present invention is directed to a CATV & MoCA device, such as a passive, point of entry (POE) splitter or a RF amplifier. In the passive, POE splitter, a resistive splitter network connects plural MoCA only ports, e.g., four, five or eight, to two or more MoCA and CATV ports. The MoCA only ports and MoCA and CATV ports are connected to a MoCA rejection filter, which is in turn connected to an input connected to a service provider. In the passive, POE splitter or the RF amplifier, an intuitive female coaxial port layout and marking scheme assists technicians with correctly connecting the POE splitter or RF amplifier to the correct coaxial cables at a customer's premises. The port layout also simplifies the circuitry design parameters on a printed circuit board (PCB) by orienting the CATV & MoCA output ports at similar distances from a CATV input port of the POE splitter or RF amplifier.
Claims
1. A CATV home network splitter device comprising: a housing with a top face; a female coaxial input port located in a first section of said top face of said housing, said input port for receiving downstream service provider signals and for transmitting upstream signals from customer devices to the service provider; a plurality of first output ports located in a second section of said top face of said housing, said plurality of first output ports for outputting service provider signals to customer devices and for receiving signals directed to the service provider, and said plurality of first output ports also for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, said plurality of first output ports being designated as CATV and MoCA ports; a plurality of second output ports located in a third section of said top face of said housing, wherein said first section is located between said second section and said third section on said top face, said plurality of second output ports for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, wherein said plurality of second output ports do not output service provider signals to customer devices and do not pass customer device signals to the service provider, said plurality of second output ports being designated as MoCA only ports; and a resistive splitter network connected to said plurality of second output ports, wherein each of said plurality of MoCA only ports can bi-directionally communicate within a MoCA frequency band with all of said CATV and MoCA ports located on said housing.
2. The device according to claim 1, wherein said first section of said top face is a central section of said top face.
3. The device according to claim 1, wherein upstream and downstream signals associated with said service provider signals reside within a frequency band of 5 to 1002 MHz, and wherein said in-home network signals reside within a MoCA frequency band of 1125 to 1675 MHz.
4. The device according to claim 1, further comprising: a MoCA pass filter, which passes MoCA frequencies, but attenuates other frequencies, wherein said MoCA pass filter is located between said resistive splitter network and said CATV and MoCA ports.
5. The device according to claim 1, wherein said plurality of second output ports includes at least four ports.
6. The device according to claim 1, wherein said plurality of first output ports includes first, second and third output ports.
7. A CATV home network splitter device comprising: a housing with a top face; a female coaxial input port located in a first section of said top face of said housing, said input port for receiving downstream service provider signals and for transmitting upstream signals from customer devices to the service provider; a plurality of first output ports located in a second section of said top face of said housing, said plurality of first output ports for outputting service provider signals to customer devices and for receiving signals directed to the service provider, and said plurality of first output ports also for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, said plurality of first output ports being designated as CATV and MoCA ports; a plurality of second output ports located in a third section of said top face of said housing, wherein said first section is characterized by a first color or colors, proximate said input port, said second section is characterized by a second color or colors proximate said plurality of first output ports, and said third section is characterized by a third color or colors proximate said plurality of said second output ports, and wherein said first color or colors are visually distinguishable from said second color or colors and said third color or colors, and wherein said second color or colors are visually distinguishable from said third color or colors, said plurality of second output ports for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, wherein said plurality of second output ports do not output service provider signals to customer devices and do not pass customer device signals to the service provider, said plurality of second output ports being designated as MoCA only ports; and a resistive splitter network connected to said plurality of second output ports, wherein each of said plurality of MoCA only ports can bi-directionally communicate within a MoCA frequency band with all of said CATV and MoCA ports located on said housing.
8. The device according to claim 7, wherein said first color or colors, second color or colors and third color or colors are part of a label applied to said top face of said housing.
9. The device according to claim 7, wherein each of said input port, said plurality of first output ports and said plurality of second output ports is formed as a female coaxial port with a pin receiving portion, and further comprising: dielectric inserts for each of said female coaxial ports, said dielectric inserts surrounding said pin receiving portions, wherein said dielectric inserts for said plurality of first output ports have a first shade, wherein said dielectric insert for said input port has a second shade, wherein said dielectric inserts for said plurality of second output ports have a third shade, wherein said first shade is visually distinguishable from said second shade and said third shade, and wherein said second shade is visually distinguishable from said third shade.
10. The device according to claim 9, wherein said first shade constitutes said first color or colors, said second shade constitutes said second color or colors, and said third shade constitutes said third color or colors.
11. The device according to claim 7, further comprising: a MoCA pass filter, which passes MoCA frequencies, but attenuates other frequencies, wherein said MoCA pass filter is located between said resistive splitter network and said CATV and MoCA ports.
12. The device according to claim 7, wherein said plurality of second output ports includes at least four ports, and wherein said plurality of first output ports includes first, second and third output ports.
13. The device according to claim 7, wherein said first section is located between said second section and said third section on said top face.
14. A CATV home network splitter device comprising: a housing with a top face; a female coaxial input port located in a first section of said top face of said housing, said input port for receiving downstream service provider signals and for transmitting upstream signals from customer devices to the service provider; a plurality of first output ports located in a second section of said top face of said housing, said plurality of first output ports for outputting service provider signals to customer devices and for receiving signals directed to the service provider, and said plurality of first output ports also for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, said plurality of first output ports being designated as CATV and MoCA ports, wherein said plurality of first output ports includes first and third female coaxial ports, each having a centrally located pin receiving portion, and wherein said input port is formed as a fourth female coaxial port having a pin receiving portion, and wherein said pin receiving portion of said fourth female coaxial port is located a first distance from said pin receiving portion of said first female coaxial port, and wherein said pin receiving portion of said fourth female coaxial port is located a second distance from said pin receiving portion of said third female coaxial port, and wherein said first distance is approximately equal to said second distance; a plurality of second output ports located in a third section of said top face of said housing, said plurality of second output ports for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other, wherein said plurality of second output ports do not output service provider signals to customer devices and do not pass customer device signals to the service provider, said plurality of second output ports being designated as MoCA only ports; and a resistive splitter network connected to said plurality of second output ports, wherein each of said plurality of MoCA only ports can bi-directionally communicate within a MoCA frequency band with all of said CATV and MoCA ports located on said housing.
15. The device according to claim 14, wherein said first distance is equal to said second distance.
16. The device according to claim 14, wherein said plurality of first output ports further includes a second female coaxial port having a centrally located pin receiving portion, and wherein said pin receiving portion of said fourth female coaxial port is located a third distance from said pin receiving portion of said second female coaxial port, and wherein said third distance is approximately equal to said first distance.
17. The device according to claim 14, further comprising: a MoCA pass filter, which passes MoCA frequencies, but attenuates other frequencies, wherein said MoCA pass filter is located between said resistive splitter network and said CATV and MoCA ports.
18. The device according to claim 14, wherein said plurality of second output ports includes at least four ports.
19. The device according to claim 14, wherein said first section is located between said second section and said third section on said top face.
20. The device according to claim 19, wherein said first section is characterized by a first color or colors, proximate said input port, said second section is characterized by a second color or colors proximate said plurality of first output ports, and said third section is characterized by a third color or colors proximate said plurality of said second output ports, and wherein said first color or colors are visually distinguishable from said second color or colors and said third color or colors, and wherein said second color or colors are visually distinguishable from said third color or colors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limits of the present invention, and wherein:
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DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0055] The present invention now is described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
[0056] Like numbers refer to like elements throughout. In the figures, the thickness of certain lines, layers, components, elements or features may be exaggerated for clarity. Broken lines illustrate optional features or operations unless specified otherwise.
[0057] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the specification and relevant art and should not be interpreted in an idealized or overly formal sense unless expressly so defined herein. Well-known functions or constructions may not be described in detail for brevity and/or clarity.
[0058] As used herein, the singular forms a, an and the are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms comprises and/or comprising, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. As used herein, the term and/or includes any and all combinations of one or more of the associated listed items. As used herein, phrases such as between X and Y and between about X and Y should be interpreted to include X and Y. As used herein, phrases such as between about X and Y mean between about X and about Y. As used herein, phrases such as from about X to Y mean from about X to about Y.
[0059] It will be understood that when an element is referred to as being on, attached to, connected to, coupled with, contacting, etc., another element, it can be directly on, attached to, connected to, coupled with or contacting the other element or intervening elements may also be present. In contrast, when an element is referred to as being, for example, directly on, directly attached to, directly connected to, directly coupled with or directly contacting another element, there are no intervening elements present. It will also be appreciated by those of skill in the art that references to a structure or feature that is disposed adjacent another feature may have portions that overlap or underlie the adjacent feature.
[0060] Spatially relative terms, such as under, below, lower, over, upper, lateral, left, right and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is inverted, elements described as under or beneath other elements or features would then be oriented over the other elements or features. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the descriptors of relative spatial relationships used herein interpreted accordingly.
[0061] A top view and a front perspective view of a housing 201 of a CATV home network device, such as a passive, point of entry (POE) splitter 200, are shown in
[0062] A plurality of first output ports 205, 207 and 209 are provided for outputting service provider signals to customer devices and for receiving signals directed to the service provider. The plurality of first output ports 205, 207 and 209 are also provided for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other.
[0063] A plurality of second output ports 211, 213, 215, 217, 219, 221, 223 and 225 are provided for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other. The plurality of second output ports 211, 213, 215, 217, 219, 221, 223 and 225 do not output service provider signals to customer devices and do not pass customer device signals to the service provider.
[0064] Although
[0065] For example,
[0066] A plurality of first output ports 305, 307 and 309 are provided for outputting service provider signals to customer devices and for receiving signals directed to the service provider. The plurality of first output ports 305, 307 and 309 are also provided for transmitting and receiving in-home network signals allowing customer devices within the home network to communicate with each other.
[0067] A plurality of second output ports 311, 313, 315 and 317 are provided for transmitting and receiving in-home network signals allowing customer devices within the home network to communication with each other. The plurality of second output ports 311, 313, 315 and 317 do not output service provider signals to customer devices and do not pass customer device signals to the service provider.
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[0069] The labels may include color coding. For example, the CATV/MoCA ports may be partially or wholly encircled by a yellow line 337, further encircled by a black line 339. The input port 303 may be partially or wholly encircled by a blue line 341. The MoCA only ports 311, 313, 315 and 317 be partially or wholly encircled by only a yellow line 343.
[0070] In a preferred embodiment, each of the input port 303 and the plurality of first and second output ports 305, 307, 309, 311, 313, 315 and 317 is formed as a female coaxial port. The input port 303 is located proximate a first, central section 345 of the top face 331. A second section 347 of the top face 331 is provided on one side of the first section 345. The second section 347 includes the plurality of first output ports 305, 307 and 309. A third section 349 is provided on the top face 331, on an opposite side of the first section 345. The third section 349 includes the plurality of second output ports 311, 313, 315 and 317. In other words, the first section 345 is located between the second section 347 and the third section 349 on the top face 331.
[0071] As noted above, the first section 345 is a characterized by a first color or colors, proximate the input port 303. Although a blue line 341 encircling the input port 303 is shown, the entire first section 345 may be colored blue. The second section 347 is characterized by a second color or colors proximate the plurality of first output ports 305, 307 and 309. Although a black line 339 partially encircling a yellow line 337, partially encircling the plurality of first output ports 305, 307 and 309 is shown, the entire second section 347 may be colored in a distinguishable pattern, e.g., continuous black and yellow stripes. The third section 349 is characterized by a third color or colors proximate the plurality of second output ports 311, 313, 315 and 317. Although a yellow line 343 partially encircling the plurality of second output ports 311, 313, 315 and 317 is shown, the entire third section 349 may be colored in a distinguishable pattern, e.g., solid yellow.
[0072] The input port 303 and plurality of first and second output ports 305, 307, 309, 311, 313, 315 and 317 are all formed as female coaxial ports, each having a dielectric insert for surrounding the pin receiving portion. The dielectric inserts for the plurality of first output ports 305, 307 and 309 may have a first shade, e.g., white, and the dielectric insert for the input port 303 may have a second shade, e.g., blue or red. The dielectric inserts for the plurality of second output ports 311, 313, 315 and 317 may have a third shade, e.g., green. In other words, the first shade is visually distinguishable from the second shade and the third shade, and the second shade is visually distinguishable from the third shade.
[0073] As best seen in
[0074] The first distance is approximately equal to the second distance. In the illustrated embodiment, the first distance is equal to the second distance. When the phrase approximately equal as used in this application for the purposes of a comparison between two lengths, the phrase means that the longer distance is less than 10% greater than the shorter distance. e.g., if the first distance were 10 mm, the second distance would be less than 11.00 mm and greater than 9.09 mm. Where the word equal without a modifier is used in this application for the purposes of a comparison between two lengths, the word shall encompass a minor manufacturing tolerance, such as less than a +/1% difference in the two compared lengths.
[0075] The plurality of first output ports 305, 307 and 309 also includes a second female coaxial port 307 having a centrally located pin receiving portion. The pin receiving portion of the fourth female coaxial port 303 is located a third distance from the pin receiving portion of the second female coaxial port 307.
[0076] Although
[0077] Placing all or several of the plurality of first output ports 305, 307 and 309 at a nearly equal distance from the input port 303 offers advantages. Such an arrangement will simply the circuitry design on a printed circuit board (PCB) within the housing 201 or 301 through symmetry and by eliminating design constraints relating to signals needing to traverse different lengths or distances on the PCB, which can lead to imbalances requiring additional circuit components for compensation.
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[0079] A resistive splitter network 401 is connected to the plurality of second output ports 311, 313, 315 and 317. A single and sole in-home network rejection filter 403 is located within the housing 301 between the input port 303 and the plurality of first and second output ports 305, 307, 309, 311, 313, 315 and 317. The in-home network rejection filter 403 prevents signals of the in-home network from exiting the input port 303 toward the service provider.
[0080] In a preferred embodiment, the upstream and downstream signals associated with the service provider signals reside within a frequency band of 5 to 1002 MHz, and the in-home network signals reside within a MoCA frequency band of 1125 to 1675 MHz, making said in-home network rejection filter 403, a MoCA rejection filter 403.
[0081] A MoCA pass filter 405, which passes MoCA frequencies, but attenuates other frequencies, is also provided. The MoCA pass filter 405 is located between the resistive splitter network 401 and the MoCA rejection filter 403. The MoCA pass filter 405 may pass frequencies above 1125 MHz and attenuate frequencies below 1125 MHz. However, in a preferred embodiment, the MoCA pass filter 405 also attenuates frequencies above 1675 MHz.
[0082] In the first embodiment of
[0083] In a preferred embodiment, the first directional coupler 407 is oriented as shown in
[0084] The second output leg of the first power divider 415 is connected to a first terminal 409 of a second directional coupler 407A. The second directional coupler 407A is formed like the first directional coupler 407, with reference to the dB losses between the first, second and third terminals 409, 411 and 413. The third terminal 413 of the second directional coupler 407A is connected to an input of a second power divider 417. The second power divider 417 has first and second output legs, directly connected to the second and third output ports 307 and 309 of the plurality of first output ports 305, 307 and 309, respectively.
[0085] The connection between the second terminal 411 of the first directional coupler 407 and a first terminal of the MoCA pass filter 405 may include a resistor RA. Likewise, the connection between the second terminal 411 of the second directional coupler 407A and the first terminal of the MoCA pass filter 405 may include a resistor RB. The resistors RA and RB may be used to balance the circuit, and in particular balance the function of the MoCA pass filter 405 in combination with the resistive splitter network 401. The value of each resistor RA or RB, and would be less than 75 ohms, typically less than 50 ohm, more preferably less than 10 ohms. Also, one or both of the resistance values of resistors RA and RB may be zero, essentially indicating the absence of dedicated resistors in the connection between the second terminals 411 of the first and second directional couplers 407 and 407A and the MCA pass filter 405.
[0086] A second terminal of the MoCA pass filter 405 is directly connected to the resistive splitter network 401. The resistive splitter network 401 of
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[0088] In the second embodiment of
[0089] The second output leg of the first power divider 415 is directly connected to the input of the second power divider 417. The first output leg of the second power divider 417 is directly connected the first terminal 409 of the second directional coupler 407A. The second terminal 411 of the second directional coupler 407A passes through resistor RB to the MoCA pass filter 405. The third terminal 413 of the second directional coupler 407A is directly connected to the second output port 307 of the plurality of first output ports 305, 307 and 309.
[0090] The second output leg of the second power divider 417 is directly connected to a first terminal 409 of a third directional coupler 407B. The third directional coupler 407B may be configured to have the same DB losses across its terminals, as described above in relation to the first and second directional couplers 407 and 407A. A second terminal 411 of the third directional coupler 407B passes through a resistor RC to the MoCA pass filter 405. A third terminal 413 of the third directional coupler 407B is directly connected to the third output port 309 of the plurality of first output ports 305, 307 and 309. The resistors RA, RB and RC may have the same resistive values or may be eliminated as discussed above with regard to resistors RA and RB.
[0091]
[0092] In the third embodiment of
[0093] The third terminal 413 of the first directional coupler 407 is directly connected to the input of the first power divider 415. The first output leg of the first power divider 415 is directly connected the first output port 305 of the plurality of first output ports 305, 307 and 309. The second output leg of the first power divider 415 is directly connected to the input to the second power divider 417. The first and second output legs of the second power divider 417 are directly connected to the second and third output ports 307 and 309 of the plurality of first output ports 305, 307 and 309, respectively.
[0094]
[0095] In the fourth embodiment of
[0096] A second terminal of the first MoCA rejection filter 403 is directly connected to the first terminal 409 of the first directional coupler 407. The first directional coupler 407 may be configured to have the same DB losses as described above. The third terminal 413 of the first directional coupler 407 is directly connected the first output port 305 of the plurality of first output ports 305, 307 and 309. The second terminal 411 of the first directional coupler 407 is directly connected to a resistor R5 within the resistive splitter network 401. The Resistor R5 may be configured the same and have a same resistive value as the resistors R1, R2, R3, and R4 of the resistive splitter network 401.
[0097] A second terminal of the second MoCA rejection filter 403A is directly connected to the first terminal 409 of the second directional coupler 407A. The second directional coupler 407A may be configured to have the same DB losses as described above. The second terminal 411 of the second directional coupler 407A is directly connected to the resistive splitter network 401. The third terminal 413 of the second directional coupler 407A is directly connected to an input of the second power divider 417. The first and second output legs of the second power divider 417 are directly connected to the second and third output ports 307 and 309 of the plurality of first output ports 305, 307 and 309, respectively.
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[0099] In the fifth embodiment of
[0100] The second terminal of the second MoCA rejection filter 403A is directly connected to the resistive splitter network 401. The second terminal of the first MoCA rejection filter 403 is directly connected to the first terminal 409 of the second directional coupler 407A. The first and second directional couplers 407 and 407A may be configured to have the same DB losses as described above.
[0101] The second terminal 411 of the second directional coupler 407A is directly connected to the first terminal of the MoCA pass filter 405. The second terminal of the MoCA pass filter 405 is directly connected to a resistor R6 within the resistive splitter network 401. The third terminal 413 of the second directional coupler 407A is directly connected to the input of the first power divider 415.
[0102] The first output leg of the first power divider 415 is directly connected the first output port 305 of the plurality of first output ports 305, 307 and 309. The second output leg of the first power divider 415 is directly connected to the input to the second power divider 417. The first output leg of the second power divider 417 is directly connected to the second output port 307 of the plurality of first output ports 305, 307 and 309. The second output leg of the second power divider 417 is directly connected to a resistor RD. Resistor RD terminates the second output leg to ground, and may be formed as a 75 ohm resistor. Alternatively, the second leg of the first power divider 415 may be directly connected to the second output port 307 of the plurality of first output ports 305, 307 and 309, and the second power divider 417 may be eliminated.
[0103] The resistive splitter network 401 now has five MoCA only ports 311, 313, 315, 317 and 319. The resistors R5 and R6 may be configured the same and have a same resistive value as the resistors R1, R2, R3, and R4 of the resistive splitter network 401 of previous embodiments.
[0104]
[0105] In the sixth embodiment of
[0106] The second terminal of the second MoCA rejection filter 403A is directly connected to the resistive splitter network 401. The second terminal of the first MoCA rejection filter 403 is directly connected to the input of the first power divider 415. The first output leg of the first power divider 415 is directly connected the first output port 305 of the plurality of first output ports 305, 307 and 309. The second output leg of the first power divider 415 is directly connected to the first terminal of the MoCA pass filter 405 and to the input of the second power divider 417. The first and second output legs of the second power divider 417 are directly connected to the second and third output ports 307 and 309 of the plurality of first output ports 305, 307 and 309, respectively.
[0107] The second terminal of the MoCA pass filter 405 is directly connected to the resistor R6 within the resistive splitter network 401. The resistive splitter network 401 has five MoCA only ports 311, 313, 315, 317 and 319. The resistors R5 and R6 may be configured the same and have a same value as the resistors R1, R2, R3 and R4 of the resistive splitter network 401 of previous embodiments.
[0108]
[0109] In the seventh embodiment of
[0110] The second terminal of the second MoCA rejection filter 403A is directly connected to the resistive splitter network 401. The second terminal of the first MoCA rejection filter 403 is directly connected to the input of the first power divider 415. The first output leg of the first power divider 415 is directly connected the first output port 305 of the plurality of first output ports 305, 307 and 309. The second output leg of the first power divider 415 is directly connected to the input of the second power divider 417. The first output leg of the second power divider 417 is directly connected to an input of a third power divider 417A. The first and second output legs of the third power divider 417A are directly connected to the second and third output ports 307 and 309 of the plurality of first output ports 305, 307 and 309, respectively.
[0111] The second output leg of the second power divider 417 is directly connected to the first terminal of the MoCA pass filter 405. The second terminal of the MoCA pass filter 405 is directly connected to the resistor R6 within the resistive splitter network 401. The resistive splitter network 401 has five MoCA only ports 311, 313, 315, 317 and 319. The resistors R5 and R6 may be configured the same and have a same resistive value as the resistors R1, R2, R3 and R4 of the resistive splitter network 401 of previous embodiments.
[0112]
[0113] In the eighth embodiment of
[0114] The second terminal of the first MoCA rejection filter 403 is directly connected to the input of the first power divider 415. The first output leg of the first power divider 415 is directly connected the first output port 205 of the plurality of first output ports 205, 207 and 209. The second output leg of the first power divider 415 is directly connected to the input of the second power divider 417. The first output leg of the second power divider 417 is directly connected to an input of the third power divider 417A. The first and second output legs of the third power divider 417A are directly connected to the second and third output ports 207 and 209 of the plurality of first output ports 205, 207 and 209, respectively.
[0115] The second output leg of the second power divider 417 is directly connected to the first terminal of the MoCA pass filter 405. The second terminal of the MoCA pass filter 405 is directly connected to a resistor R9 within the resistive splitter network 401. The resistive splitter network 401 has eight MoCA only ports 211, 213, 215, 217, 219, 221, 223 and 225. The resistors R5, R6, R7, R8 and R9 may be configured the same and have a same resistive value as the resistors R1, R2, R3 and R4 of the resistive splitter network 401 of previous embodiments. The resistor RF is optionally included as part of the resistive splitter network 401 and may be useful to balance the resistive splitter network 401 in combination with the other circuitry of
[0116] In the above embodiments, the MoCA rejection filters 403 and/or 403A may be constructed to reflect MoCA signals in a direction back toward the plurality of first output ports 205/305, 207/307 and 209/309.
[0117] The first, second and/or third power dividers 415, 417 and/or 417A may be constructed in accordance with the Assignee's prior U.S. Pat. No. 8,397,271, which is herein incorporated by reference. Optionally, each of the first, second and/or third power dividers 415, 417 and/or 417A may have a MoCA bypass filter, which assists in passing MoCA signals between the first and second output legs of the power divider 415, 417 and/or 417A, as shown in
[0118] The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.