INTERFACE CIRCUIT, STRING, AND SYSTEM APPLIED TO POWER LINE COMMUNICATION
20220216893 ยท 2022-07-07
Assignee
Inventors
Cpc classification
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H04B3/544
ELECTRICITY
International classification
Abstract
An interface circuit, a string, and a system that are applied to power line communication, to lower device specifications, includes: an inverter, an optimizer group, a capacitor, a magnetic ring, power lines, and a signal line. An optimizer in the optimizer group is configured to adjust a size of a direct current output by a photovoltaic module connected to the optimizer. Two ends of the signal line passing through the magnetic ring are connected to the inverter. Two ends of a power line passing through the magnetic ring are respectively connected to the capacitor and the optimizer group. By using the foregoing interface circuit, a high voltage of a direct current output by the optimizer group is prevented from being introduced into the inverter, thereby reducing a specification requirement of a device such as a capacitor.
Claims
1. A system applied to power line communication, comprising: an inverter; at least one optimizer group, each of the at least one optimizer group comprising one or more optimizers and one or more photovoltaic modules, each optimizer is connected to each photovoltaic module in a one-to-one correspondence and is configured to convert a direct current output by each photovoltaic module into an adjustable direct current, at least one capacitor; a magnetic ring; power lines; and a signal line, wherein the at least one optimizer group is serially connected to the at least one capacitor through the power lines, the power lines are connected to either end of the at least one capacitor and pass through the magnetic ring, and the signal line passes through the magnetic ring and is connected to the inverter, and the signal line, the power lines, the magnetic ring, and the at least one capacitor are configured to transmit a power line communication (PLC) signal.
2. The system applied to power line communication according to claim 1, wherein the at least one optimizer group comprises one optimizer group, and the power lines comprise: a power line connected to a direct current output end of the at least one optimizer group that passes through the magnetic ring.
3. The system applied to power line communication according to claim 1, wherein the at least one optimizer group comprises one optimizer group, and the power lines comprise: a power line connected to a direct current output end of the at least one optimizer group that passes through the magnetic ring.
4. The system applied to power line communication according to claim 1, wherein the at least one optimizer group comprises a plurality of optimizer groups and the power lines comprise: a power line connected to a direct current positive electrode output end of each optimizer group that passes through the magnetic ring.
5. The system applied to power line communication according to claim 1, wherein the at least one optimizer group comprises a plurality of optimizer groups and the power lines comprise: a power line connected to a direct current output end of each optimizer group that passes through the magnetic ring.
6. The system applied to power line communication according to claim 1, wherein the at least one optimizer group comprises a plurality of optimizer groups and the power lines comprise: a power line connected to a direct current output end positive electrode of a first optimizer group; and a power line connected to a direct current electrode of a second optimizer group that passes through the magnetic ring, and the first optimizer group and the second optimizer group are two different optimizer groups in the plurality of optimizer groups.
7. An interface circuit applied to power line communication, comprising: at least one capacitor; a magnetic ring power lines; and a signal line, wherein the power lines are respectively connected to two ends of the at least one capacitor, wherein a power line port connected to one end of the at least one capacitor forms a first interface, a power line port connected to the other end of the at least one capacitor forms a second interface, the power lines connected to either end of the at least one capacitor pass through the magnetic ring, the signal line passes through the magnetic ring, two ports of the signal line respectively form a third interface and a fourth interface, the first interface and the second interface are configured to connect to an optimizer, and the interface circuit is configured to transmit a PLC signal.
8. The interface circuit according to claim 7, wherein the interface circuit further comprises: an inverter connected to the third interface and the fourth interface.
9. A string, wherein the string comprises the interface circuit according to claim 7, and the string further comprises: at least one optimizer group comprising a plurality of serially-connected optimizers, wherein two ends of the at least one optimizer group are respectively connected to the first interface and the second interface.
10. The string according to claim 9, wherein the string further comprises: photovoltaic modules connected to the at least one optimizer group, wherein the at least one optimizer group is configured to convert direct currents output by the photovoltaic modules into adjustable direct currents.
11. An apparatus applied to power line communication, wherein the apparatus comprises at least one string according to claim 10, and the apparatus further comprises: an inverter connected to the third interface and the fourth interface.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0062] Embodiments provide an interface circuit, a string, and a system that are applied to power line communication. The interface circuit applied to power line communication is formed in a magnetic ring coupling manner. In this way, a high voltage generated on an optimizer group connected to the interface circuit and between direct current positive and negative electrodes is not introduced into a modulation circuit inside an inverter connected to the interface circuit, and only a PLC signal generated on an optimizer enters the modulation circuit inside the inverter through power lines and a signal line (or a PLC signal generated on the modulation circuit inside the inverter enters an optimizer through the signal line and the power lines). This reduces a specification requirement of a device such as a capacitor and improves safety performance. In addition, costs of an entire solar power generation system are further reduced because only one magnetic ring is used.
[0063] Before the embodiments are described, concepts that may appear in the embodiments are first described. It should be understood that related concept description may be limited due to circumstances of the embodiments, but this is not limited to only these circumstances, and circumstances of different embodiments may differ. This is not limited herein.
[0064] The solar power generation system includes components such as an optimizer (also referred to as a shutdown device), an inverter, a PV module, and power lines. The PV module is a core component and is a system for converting solar energy into electric energy (which is usually a direct current). Because impact of light radiation on the PV module is relatively large, a direct current obtained through conversion is relatively large when light radiation is strong and a radiation time is long (for example, in summer); on the contrary, a direct current obtained through conversion is relatively small when light radiation is weak and a radiation time is short (for example, in a cloudy day). For example, when the PV module is covered by a blocking object, an electric energy yield of the PV module is significantly reduced. In addition, because voltages generated on the power lines after the PV module is serially connected is very high, in a case of a fire or another danger, there needs to be a way to reduce the voltages generated after the PV module is serially connected, so as to protect personal safety. Based on the foregoing description, an optimizer emerges. The optimizer, also referred to as a shutdown device, is a device for converting a direct power generated by the PV module into an adjustable direct current (that is, performing direct current-to-direct current conversion on the direct current output by the PV module to output a direct power with an adjustable voltage and current). The optimizer is configured to dynamically control the direct current generated by the PV module. For example, when the PV module is covered, a PV module (that is, the covered PV module) in a plurality of serially-connected PV modules has unstable output power. If there is no optimizer, current values on the power lines for the serially-connected PV modules are decreased to a current value (that is, a smallest current value) output by the covered PV module, causing a waste of resource. A function of the optimizer is to balance output power of each PV module, so that overall output power on the power lines is stable. In addition, the optimizer may cut off output of a correspondingly connected PV module in an emergency, to reduce a potential safety hazard. The inverter is a direct current-to-alternating current power source, that is, converts the adjustable direct current output by the optimizer into an alternating current. The inverter and the optimizer are connected through the power lines, and the power lines are used to perform information transfer, including an interaction operation on service query information, command control information, and the like.
[0065] In addition, a current commonly-used power line communication manner (that is, a direct capacitor coupling manner) in the solar power generation system is further described. A main implementation principle of the direct capacitor coupling manner is that the inverter modulates a PLC signal and then directly transmits the PLC signal to the power lines by using a capacitor. As shown in
[0066] Based on this, to resolve the foregoing problem caused by the capacitor coupling manner, an embodiment first provides a system applied to power line communication. The system includes an inverter, at least one optimizer group, at least one capacitor, a magnetic ring, power lines, and a signal line. A quantity of optimizer groups may be the same as or different from a quantity of capacitors. It should be noted that, each of the at least one optimizer group includes one or more optimizers and one or more photovoltaic modules, each optimizer is connected to each photovoltaic module in a one-to-one correspondence and is configured to convert a direct current output by each photovoltaic module into an adjustable direct current, and the one or more optimizers are serially connected to the at least one capacitor through the power lines (for example, if the quantity of optimizer groups is the same as the quantity of capacitors, each optimizer group including one or more optimizers is serially connected to each capacitor in a one-to-one correspondence). Then, the power line connected to either end of the at least one capacitor passes through the magnetic ring, that is, after the optimizers in each optimizer group are serially connected, the optimizer group is connected to two ends of each capacitor through the power lines. Finally, the signal line passes through the magnetic ring and is connected to the inverter. The signal line, the power lines, the magnetic ring, and the capacitor are configured to transmit a PLC signal generated on the inverter and/or at least one optimizer.
[0067] In this embodiment, because there may be one or more optimizer groups, there may be one or more corresponding capacitors. The following separately describes various cases.
[0068] Case 1: The system includes one optimizer group and one capacitor.
[0069] As shown in
[0070] Case 2: The system includes at least two optimizer groups and at least two capacitors.
[0071] As shown in
[0072] Moreover, in addition to the manner in
[0073] It should be noted that, in some implementations, alternatively, the power line connected to the direct current negative electrode output end of each optimizer group may pass through the magnetic ring. As shown in
[0074] It should be further noted that, in some implementations, alternatively, a power line connected to a direct current output end positive electrode of a first optimizer group and a power line connected to a direct current negative electrode of a second optimizer group may pass through the magnetic ring. The first optimizer group and the second optimizer group are two different optimizer groups in the plurality of optimizer groups. As shown in
[0075] The foregoing manner in which a power line connected to a direct current positive electrode output end of an optimizer group or/and a power line connected to a direct current negative electrode output end of an optimizer group passes through the magnetic ring in a mixed manner can reduce a through-current requirement on the magnetic ring. Impact on a through-current of the magnetic ring is resulted from severe magnetic permeability attenuation of the magnetic ring that is caused by a bias of a current. For example, assuming that six optimizer groups in the system need to be connected to the inverter, power lines connected to direct current positive electrode output ends of optimizer groups 1, 2, and 3 and power lines connected to direct current negative electrode output ends of optimizer groups 4, 5, and 6 may pass through the magnetic ring together. Because currents on the power lines connected to the direct current positive electrode output ends of optimizer groups 1, 2, and 3 and currents on the power lines connected to the direct current negative electrode output ends of optimizer groups 4, 5, and 6 have opposite directions, and magnetic fluxes generated respectively by the currents also have opposite directions, the magnetic fluxes cancel each other out when they are superimposed, thereby greatly reducing bias impact on the magnetic ring.
[0076] In addition, an embodiment further provides an interface circuit. The interface circuit is applied to power line communication. The interface circuit may include at least one capacitor, a magnetic ring, power lines, and a signal line. As the interface circuit may include different quantities of capacitors, the following describes several cases separately.
[0077] 1. The interface circuit includes one capacitor, a magnetic ring, power lines, and a signal line.
[0078] If the interface circuit includes only one capacitor C31, a schematic diagram of connections between capacitor C31 and the magnetic ring, the power lines, and the signal line is shown in
[0079] 2. The interface circuit includes at least two capacitors, a magnetic ring, power lines, and a signal line.
[0080] If the interface circuit includes at least two capacitors, and an example with three capacitors (which are respectively C41, C42, and C43) is used for description, a schematic diagram of connections between the three capacitors and the magnetic ring, the power lines, and the signal line is shown in
[0081] It should be noted that, in some implementations, the interface circuit may further include an inverter, and the inverter is connected to the magnetic ring by using the third interface and the fourth interface. Therefore, a PLC signal generated on the inverter can be transmitted by using the power lines, the magnetic ring, and the at least one capacitor of the interface circuit. For ease of understanding,
[0082] In addition to the interface circuit applied to power line communication, an embodiment further provides a string. The string is also applied to power line communication, and the string may include the interface circuit according to either of
[0083] 1. The string includes one optimizer group.
[0084] When the string includes only one optimizer group, the corresponding interface circuit includes only one capacitor. As shown in
[0085] 2. The string includes at least two optimizer groups.
[0086] When the string includes at least two optimizer groups, the corresponding interface circuit includes capacitors whose quantity is the same as the quantity of the optimizer groups. As shown in
[0087] It should be noted that, in some implementations, the string includes at least one PV module in addition to the at least one optimizer group. A quantity of PV modules is the same as a quantity of all optimizers in the at least one optimizer group. Each PV module is connected to each optimizer in a one-to-one correspondence. That is, one optimizer is connected to one PV module, and is configured to adjust a direct current generated by the corresponding PV module, that is, convert the direct current output by each PV module into an adjustable direct current.
[0088] In addition to the interface circuit and the string that are applied to power line communication, an embodiment further provides an apparatus. The apparatus is also applied to power line communication. The apparatus includes at least one string according to either of
[0089] Case 1: The apparatus includes one string, and the string includes one optimizer group.
[0090] Similar to
[0091] Case 2: The apparatus includes at least two strings, and each string includes one optimizer group.
[0092] Similar to
[0093] Case 3: The apparatus includes one string, and the string includes at least two optimizer groups.
[0094] Similar to
[0095] This case in which the string includes at least two optimizer groups enables a PLC signal to be coupled to power lines of a plurality of strings. However, this coupling manner imposes a through-current requirement on the magnetic ring, that is, it is required that impact of a sum of currents on the plurality of strings does not cause saturation of the magnetic ring.
[0096] It should be noted that, in some implementations, alternatively, the power line in the string that is connected to the direct current negative electrode output end of each optimizer group may pass through the magnetic ring. Similar to
[0097] It should be further noted that, in some implementations, as the string includes at least two optimizer groups, alternatively, a power line connected to a direct current output end positive electrode of a first optimizer group and a power line connected to a direct current negative electrode of a second optimizer group may pass through the magnetic ring. The first optimizer group and the second optimizer group are two different optimizer groups in the plurality of optimizer groups. Similar to
[0098] The foregoing manner in which a power line connected to a direct current positive electrode output end of an optimizer group or a power line connected to a direct current negative electrode output end of an optimizer group passes through the magnetic ring in a mixed manner can reduce a through-current requirement on the magnetic ring. Impact on a through-current of the magnetic ring is resulted from severe magnetic permeability attenuation of the magnetic ring that is caused by a bias of a current. For example, assuming that six optimizer groups in the string need to be connected to the inverter, power lines connected to direct current positive electrode output ends of optimizer groups 1, 2, and 3 and power lines connected to direct current negative electrode output ends of optimizer groups 4, 5, and 6 may pass through the magnetic ring together. Because currents on the power lines connected to the direct current positive electrode output ends of optimizer groups 1, 2, and 3 and currents on the power lines connected to the direct current negative electrode output ends of optimizer groups 4, 5, and 6 have opposite directions, and magnetic fluxes generated respectively by the currents also have opposite directions, the magnetic fluxes cancel each other out when they are superimposed, thereby greatly reducing bias impact on the magnetic ring.
[0099] Case 4: The apparatus includes at least two strings, and each string includes at least two optimizer groups.
[0100] When the apparatus includes at least two strings, and each string includes at least two optimizer groups (each optimizer group includes at least one optimizer, and each optimizer is correspondingly connected to one PV module), each string may be connected to the inverter in a connection manner similar to those in
[0101] In conclusion, the foregoing embodiments are merely intended for describing the solutions, but not for limiting. Although described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the solutions described in the foregoing embodiments or make equivalent replacements to some features thereof, without departing from the scope of the solutions of the embodiments.