CABLE ASSEMBLY AND PACKAGED PRODUCT
20230127095 · 2023-04-27
Inventors
Cpc classification
H02J1/00
ELECTRICITY
G05F1/00
PHYSICS
H02J2207/40
ELECTRICITY
H01R29/00
ELECTRICITY
H02J7/00
ELECTRICITY
International classification
G05F1/00
PHYSICS
H02J1/00
ELECTRICITY
Abstract
Exemplary cable assemblies include a first conductor, a second conductor, and one or more other conductors, and circuitry. The first conductor is configured to receive power from a power source. The second conductor includes a ground conductor. The circuitry is configured to receive a first signal from the power source. At least one of the one or more other conductors, in response to the first signal, is configured to provide a second signal to the power source.
Claims
1. A cable assembly comprising: a first conductor configured to receive power from a power source; a second conductor, the second conductor comprising a ground conductor; one or more other conductors; and circuitry configured to receive a first signal from the power source, and wherein at least one of the one or more other conductors, in response to the first signal, is configured to provide a second signal to the power source, the second signal instructing the power source to operate in a particular power supply mode.
2. The cable assembly of claim 1, further comprising comparison circuitry.
3. The cable assembly of claim 2, wherein the comparison circuitry is responsive to the first signal.
4. The cable assembly of claim 3, wherein the comparison circuitry is configured to compare the first signal to a reference.
5. The cable assembly of claim 1, wherein the second signal is a current programming signal.
6. The cable assembly of claim 1, wherein the second signal is a voltage programming signal.
7. The cable assembly of claim 1, wherein the second signal provides information related to a power level.
8. The cable assembly of claim 1, wherein the second signal provides information related to a current level.
9. The cable assembly of claim 1, wherein the second signal provides information related to a voltage level.
10. The cable assembly of claim 1, wherein the second signal provides current, voltage, resistance, or power information.
11. The cable assembly of claim 10, wherein the second signal instructs the power source to operate in one of a plurality of designated power supply modes.
12. The cable assembly of claim 10, wherein the electrical connector is configured to attach to a portable electronic device that includes a battery.
13. The cable assembly of claim 10, further comprising comparison circuitry.
14. The cable assembly of claim 13, wherein the comparison circuitry is responsive to the first signal.
15. The cable assembly of claim 14, wherein the comparison circuitry is configured to compare the first signal to a reference.
16. The cable assembly of claim 10, wherein the second signal comprises a current programming signal.
17. The cable assembly of claim 10, wherein the second signal comprises a voltage programming signal.
18. A cable assembly comprising: a cable; an electrical connector coupled to the cable, the electrical connector including: a first conductor configured to receive power from a power source; a second conductor, the second conductor comprising a ground conductor; a third conductor; and circuitry configured to receive a first signal from the power source, and wherein the third conductor, in response to the first signal, is configured to send information to the power source, the information comprising current, voltage, resistance, or power related information, wherein the information instructs the power source to operate in a particular operating mode; and wherein the electrical connector is configured to attach to a portable electronic device that includes a controller and a battery.
19. The cable assembly of claim 18, further comprising comparison circuitry.
20. The cable assembly of claim 19, wherein the comparison circuitry is responsive to the first signal.
21. The cable assembly of claim 20, wherein the comparison circuitry is configured to compare the first signal to a reference.
22. A packaged product comprising: a portable electronic device; and a cable assembly, the cable assembly comprising: a first conductor configured to receive power from a power source; a second conductor, said second conductor being a ground conductor; one or more other conductors; and circuitry configured to receive a first signal from the power source, and wherein at least one of the one or more other conductors, in response to the first signal, is configured to provide a second signal to the power source, the second signal instructing the power source to operate in a particular power supply mode.
23. The packaged product of claim 22, wherein the cable assembly further comprises comparison circuitry.
24. The packaged product of claim 23, wherein the comparison circuitry is responsive to the first signal.
25. The packaged product of claim 22, wherein the second signal provides information related to an electrical characteristic.
26. A packaged product comprising: a portable electronic device; and a cable assembly, the cable assembly comprising: an electrical connector coupled to the cable, the electrical connector including: a first conductor configured to receive power from a power source; a second conductor said second conductor being a ground conductor; a third conductor; and circuitry configured to receive a first signal from the power source, and wherein the third conductor, in response to the first signal, is configured to provide a second signal to the power source, the second signal providing current, voltage, resistance, or power information.
27. The packaged product of claim 26, wherein the second signal instructs the power source to operate in a particular power supply mode.
28. The packaged product of claim 26, wherein the portable electronic device includes a battery, and wherein the electrical connector is configured to attach to the portable electronic device.
29. The packaged product of claim 28, wherein the portable electronic device is a computing device.
30. The packaged product of claim 26, wherein the cable assembly further comprises comparison circuitry.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0025] An embodiment of the present invention is directed to a power supply system to determine a DC power source (e.g., an automobile cigarette lighter outlet or an EMPOWER airplane outlet) coupled thereto and send a signal indicative of the power source to an electronic device coupled thereto. The electronic device may be a notebook computer or other portable consumer electronic device, for example. Based on the signal sent to the electronic device, the electronic device may control the amount of power drawn to prevent overheating. For example, when a notebook computer is hooked up and the power source is the EMPOWER system, the electronic device may disable charging of the internal batteries of the notebook computer, in order to prevent damage or overheating of the batteries due to malfunction or failure. The DC power source may be determined by voltage comparison circuitry, such as a comparator, or by a voltage comparison device including a processor.
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[0027] Alternatively, the tip 330 may include analog components and may provide voltage programming and current programming voltages (V.sub.Vprogram and V.sub.Iprogram, respectively) to the adapter 340. V.sub.Vprogram may be utilized to set the magnitude of V.sub.out. For example, there may be a linear relationship between V.sub.Vprogram and V.sub.out where V.sub.out is 3 times as large as V.sub.Vprogram. Accordingly, if V.sub.Vprogram, had a magnitude of 3.0 Volts, V.sub.out would have a magnitude of 9.0 Volts, and if V.sub.Vprogram had a magnitude of 2.0 Volts, V.sub.out would have a magnitude of 6.0 Volts. The analog circuitry may contain passive or active components.
[0028] Accordingly, regardless of whether the tip 330 has analog or digital control circuitry, a single adapter 340 may be used to supply power to a plurality of different electronic devices 335 having different power requirements.
[0029] An adapter device according to embodiments of the present invention may include a DC/DC adapter to receive DC power from a DC power source, and output a regulated DC voltage (V.sub.out). A source determination circuitry may receive the DC power from the DC power source and compares a magnitude of a voltage of the DC power with a reference magnitude of a reference voltage (V.sub.ref). When the magnitude of the voltage of the DC power is greater than the reference magnitude, a data signal (V.sub.data) having a first value is output. When the magnitude of the voltage of the DC power is less than the reference magnitude, the V.sub.data signal having a second value is output. The V.sub.data signal is received by control circuitry of an electronic device. When the V.sub.data signal has the first value, the electronic device operates in a first mode where battery charging circuitry is disabled. When the V.sub.data signal has the second value, the battery charging circuitry is enabled.
[0030] The adapter 340 may also include comparison circuitry 320. The comparison circuitry 320 may compare a magnitude of a voltage received from the DC power source 305 with a reference voltage to determine whether the DC power source 305 is an automobile cigarette lighter outlet or an EMPOWER airplane outlet. As stated above, automobile cigarette lighter outlets typically provide a DC voltage having a magnitude within the range of 11.0 Volts and 14.1 Volts. An EMPOWER airplane outlet typically provides a DC voltage having a magnitude within the range of 14.5 and 15.5 Volts. Accordingly, the reference voltage may be set at a level between the high end of the automobile cigarette light outlet voltage (i.e., 14.1 Volts) and the low end of the EMPOWER airplane outlet voltage (i.e., 14.5 Volts). For example, the reference voltage may be set at 14.3 Volts. Accordingly, if the magnitude of the DC power source is greater than 14.3 Volts, then the comparison voltage may determine that the received DC voltage has a greater magnitude than the reference voltage and the DC power source 305 is therefore the EMPOWER airplane outlet. However, if the magnitude of the DC power source is less than 14.3 Volts, then the comparison voltage may determine that the received DC voltage has a smaller magnitude than the reference voltage and the DC power source 305 is therefore the automobile cigarette lighter outlet.
[0031] The comparison circuitry 320 may output a signal V.sub.data based upon whether the DC power source is determined to be the automobile cigarette lighter outlet or the EMPOWER airplane outlet. For example, the comparison may output 5 Volts if the automobile cigarette lighter outlet is detected, and 0.0 Volts if the EMPOWER airplane outlet is detected. In alternative embodiments, different voltages for V.sub.data may be used. In additional embodiments, the comparison circuitry 320 may output a digital signal, such as a stream of bits, indicative of the DC power source 305. V.sub.data may be sent via cable 350 to the tip 330, and straight over to the electronic device 335. The electronic device 335 may include a controller 360 which is responsive to V.sub.data. For example, if the electronic device 335 is a notebook computer and V.sub.data is indicative of the EMPOWER airplane outlet system, the controller 360 may disable battery charging circuitry 600, thereby preventing recharging of the batteries. And if the V.sub.data is indicative of the automobile cigarette lighter outlet as the DC power source 305, the controller 360 may enable battery charging circuitry to allow the batteries to be recharged.
[0032] Although
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[0040] At operation 730, a second set of predetermined devices may be allowed to receive power based on the Vdata signal. For example, if V.sub.data indicates that the DC power source is an automobile cigarette lighter outlet, then power may be available to batteries of the electronic device 335 to allow recharging. Other devices/components in the electronic device 335 may also be allowed to receive power or function in a particular way.
[0041] In embodiments described above, the V.sub.data signal may be used to send a signal to the control circuitry 365 indicating the DC power source. This signaling may be done via a discrete bit, an analog signal, a data signal line, an analog voltage, or via any other suitable manner. The V.sub.data signal may be transmitted from the adapter 340 to the tip 330 and electronic device 335 via a single signaling line or multiple signaling lines.
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[0044] In an embodiment of the invention, the tip 900 may also receive a value, which is illustrated by reference numeral 980 in
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[0046] Once the controller 950 receivers the request from the electronic device 935, the controller 950 extracts a character string from the memory 954 and utilizes the transmitter 956 to transmit the character string to the electronic device 935. The character string is representative of the power adapter to which the tip 900 is coupled. In an embodiment of the invention, a microcontroller may be programmed and could be utilized in place of the transmitter 956, a receiver 952, and a memory 954. The character string may represent that the power adapter 940 and/or tip 900 is approved to be connected to the electronic device, e.g., a laptop or a cellular phone. Under certain operating conditions, the character string represents that a rechargeable battery within the electronic device can be charged by the power adapter 940 and tip 900 combination. Under certain operating conditions, the character string is indicative of a maximum power available from the power adapter. Under certain operating conditions, a value can be stored in the memory 954 where the value is indicative for the maximum power available from the power adapter. Illustratively, the value may be a power (or wattage) value or a current value.
[0047] The transmitter 956 may communicate with the electronic device 935 via a one-wire interface. The transmitter 956 may communicate with the electronic device 935 via other communication protocols, including serial communication protocols.
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[0049] In an alternative embodiment of the invention, the measurement circuit 960 may be implemented by an analog-to-digital converter. The analog-to-digital converter may measure a value of the control signal or the programming signal and identify the value which is representative of the power available to be output from the power adapter. In an embodiment of the invention, the analog-to-digital converter may be used in conjunction with a microcontroller. The analog-to-digital converter may be separate from the microcontroller or the analog-to-digital converter may be incorporated into the microcontroller.
[0050] The measurement circuit 960 takes the measured magnitude level of the programming or control signal and sends the information to the controller 950. A memory 954 may store a plurality of character strings. Alternatively, the memory 954 may store a plurality of values. Each of the plurality of character strings or values may represent a potential power output level of the power adapter 940. For example, one character string may be represent that the power adapter can output 90 watts while another character string represents that the power adapter can output 140 watts. The controller 950 receives the magnitude level of the programming/control signal from the measurement circuit 960 and selects the corresponding character string stored in the memory 954. Alternatively, the controller receives the magnitude level of the programming or control signal and selects the corresponding value stored in the memory 954.
[0051] After the corresponding character string or value is selected, the corresponding character string is transmitted to the electronic device 935 through the transmitter 956. The electronic device receives the character string and acts in response to the received character string or value. For example, the character string may indicate that the power adapter coupled to the tip (which is connected to the electronic device) can output 75 watts. Based on this information, a controller in an electronic device 935 (e.g., a laptop) may prevent the power adapter from charging the rechargeable battery within the electronic device 935 because the electronic device 935 may require all of the 75 watts of power.
[0052] The controller 950 may be a microcontroller. The controller 950 including the receiver 952, transmitter 956, and memory 954 may be a semiconductor memory chip such as a Dallas Semiconductor DS2502 programmable memory. The receiver 952 and transmitter 956 may communicate with the electronic device via a number of protocols, e.g., the one-wire interface communication protocols, a serial interface communication protocol, etc.
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[0054] The microcontroller 950 may receive the power source determination signal. Based on the received power source determination signal, the microcontroller 950 may extract a character string corresponding to the received power source determination signal from a memory. The memory 954 (see
[0055] In an embodiment of the invention, no character string or value may be transmitted if the power adapter cannot generate a certain wattage of power. This may represent that the power adapter and tip cannot be utilized to charge the battery of the electronic device. The microcontroller 950 may transmit the selected character string to the electronic device. A controller 360 in the electronic device may receive the selected character string and may perform a plurality of actions based on the selected character string. For example, if the selected character string identifies that the power adapter has a limited power capability, e.g., less than 50 watts or 70 watts, the controller 360 may place the electronic device in a mode of low power consumptions, e.g., turning off display earlier or not allowing charging of the battery in the electronic device. Under other operating conditions, the character string or value may identify that an AC adapter is the external power source and can provide 130 Watts, and the controller 360 may allow the battery in the electronic device to be charged by the power adapter and place the electronic device in a high power consumption mode, e.g., brightness of screen and hard drive.
[0056] Under certain operating conditions, rather than a character string, the microcontroller 950 may have a number of current levels that represent different power capabilities of adapters. Illustratively, in other words, a first current level may represent that the power adapter 340 can supply 130 watts, a second current level may represent that the power adapter 340 can supply 90 watts, a third current level represents that the power adapter 340 can supply 70 watts, and a fourth current level may represent the power adapter 340 supplies less than 70 watts.
[0057] While the description above refers to particular embodiments of the present invention, it will be understood that many modifications may be made without departing from the spirit thereof. The accompanying claims are intended to cover such modifications as would fall within the true scope and spirit of the present invention. The presently disclosed embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims, rather than the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein.