Single-phase non-isolated inverter
10038393 ยท 2018-07-31
Assignee
Inventors
- Kun-Feng Chen (Taoyuan, TW)
- Woei-Luen Chen (Taipei, TW)
- Yi-Lun Chen (Yilan, TW)
- Jung-Yang Wang (Kinmen County, TW)
Cpc classification
H02S40/32
ELECTRICITY
H02M7/539
ELECTRICITY
Y02E10/56
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
Y02B70/10
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
International classification
H02M7/537
ELECTRICITY
H02S40/32
ELECTRICITY
Abstract
The present invention discloses a single-phase non-isolated inverter, comprising: a first DC-side capacitor, a second DC-side capacitor, a first switch unit, a second switch unit, a third switch unit, a fourth switch unit, a fifth switch unit, a sixth switch unit, a seventh switch unit, and an eighth switch unit. When the single-phase non-isolated inverter is operated at a zero-voltage switching state, the seventh switch unit and the eighth switch unit are switched to short circuit for forming a short-circuit path between the bus lines. Briefly speaking, this novel single-phase non-isolated inverter has reactive power capability. In addition, according to an adjusting signal of a PI controller, micro controller of the single-phase non-isolated inverter is able to properly adjusts the duty cycle of a switch unit driving signal of the fifth switch unit and the sixth switch unit, so as to cancel the capacitor voltage unbalance between two DC-side capacitors.
Claims
1. A single-phase non-isolated inverter, comprising: a first DC-side capacitor coupled to an input DC voltage; a second DC-side capacitor, wherein one end of the second DC-side capacitor is electrically connected to the other end of the first DC-side capacitor, and the other end of the second DC-side capacitor being coupled to the input DC voltage; a first switch set, being electrically connected to the first DC-side capacitor and the second DC-side capacitor in parallel, and comprising first switch unit and a second switch unit serially connected to the first switch unit; a second switch set, being electrically connected to the first switch set in parallel, and comprising third switch unit and a fourth switch unit serially connected to the third switch unit; a fifth switch unit electrically connected between the first DC-side capacitor and the first switch unit; a sixth switch unit electrically connected between the second DC-side capacitor and the second switch unit; a seventh switch unit electrically connected between the first DC-side capacitor, the first switch unit and the fifth switch unit; and an eighth switch unit electrically connected between the second DC-side capacitor, the second switch unit and the sixth switch unit; wherein the single-phase non-isolated inverter provides an output current in a positive half cycle as the first switch unit and the forth switch unit are switched to short circuit as well as the second switch unit and the third switch unit are switched to open circuit; moreover, when the first switch unit and the forth switch unit are switched to open circuit as well as the second switch unit and the third switch unit are switched to short circuit, the single-phase non-isolated inverter providing the output current in a negative half cycle; wherein when the single-phase non-isolated inverter is operated at a zero-voltage switching state, the seventh switch unit and the eighth switch unit being switched to short circuit for forming a short-circuit path.
2. The single-phase non-isolated inverter of claim 1, further comprising: a micro controller for controlling and switching the eight switch units to short circuit or open circuit.
3. The single-phase non-isolated inverter of claim 2, further comprising: a subtractor, being coupled to a first reference voltage and a second reference voltage; and a proportional-integral (PI) controller, being electrically connected to the subtractor so as to output an adjusting signal to the micro controller based on an output signal of the subtractor, such that the micro controller properly adjusts the duty cycle of a switch unit driving signal of the fifth switch unit and the sixth switch unit.
4. The single-phase non-isolated inverter of claim 3, wherein the first reference voltage is half of the input DC voltage across over the input terminals of the single-phase non-isolated inverter, and the second reference voltage is a capacitor voltage of the second DC-side capacitor.
5. The single-phase non-isolated inverter of claim 1, wherein each of the eight switch units comprises a switch device and a diode electrically connected to the switch device in parallel.
6. The single-phase non-isolated inverter of claim 1, wherein the connection node between the seventh switch unit and the eighth switch unit is electrically connected to the connection node between the first DC-side capacitor and the second DC-side capacitor.
7. The single-phase non-isolated inverter of claim 1, wherein at least one filter is electrically connected between the utility power grid and the single-phase non-isolated inverter, configured for filtering a high-frequency harmonic portion of the output current or an output voltage of the single-phase non-isolated inverter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention as well as a preferred mode of use and advantages thereof will be best understood by referring to the following detailed description of an illustrative embodiment in conjunction with the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6)
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(9)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) To more clearly describe a single-phase non-isolated inverter according to the present invention, embodiments of the present invention will be described in detail with reference to the attached drawings hereinafter.
First Embodiment
(11) With reference to
(12) The aforesaid green energy generating device can be but does not be limited to a solar energy generating device or a wind driven energy generating device. As
(13)
(14) TABLE-US-00001 TABLE (1) Controlling conditions ON/OFF of the switch units (S1-S8) Vcontrol > 0 The first switch unit S1 and the fourth switch unit S4 are switched to short circuit. The second switch unit S2 and the third switch unit S3 are switched to open circuit. Vcontrol < 0 The first switch unit S1 and the fourth switch unit S4 are switched to open circuit. The second switch unit S2 and the third switch unit S3 are switched to short circuit. |Vcontrol| > The fifth switch unit S5 and the sixth switch unit Vcarrier S6 are switched to short circuit. The seventh switch unit S7 and the eighth switch unit S8 are switched to open circuit. |Vcontrol| < The fifth switch unit S5 and the sixth switch unit Vcarrier S6 are switched to open circuit. The seventh switch unit S7 and the eighth switch unit S8 are switched to short circuit.
(15) As a result, the single-phase non-isolated inverter 1 of the present invention has four operation states.
(16) TABLE-US-00002 TABLE (2) Circuit operation Switching state of Output current and states the switch units common-mode voltage 1 ON: S1, S4, S5, S6 Input side of the inverter supplies OFF: S2, S3, S7, S8 positive current to output side, and common-mode voltage Vcm is equal to Vdc/2. 2 ON: S1, S4, S7, S8 Input side of the inverter supplies OFF: S2, S3, S5, S6 positive current to output side at zero-voltage switching point (state), and meanwhile, common-mode voltage Vcm is equal to Vdc/2. 3 OFF: S1, S4, S7, S8 Input side of the inverter supplies ON: S2, S3, S5, S6 negative current to output side, and common-mode voltage Vcm is equal to Vdc/2. 4 OFF: S1, S4, S5, S6 Input side of the inverter supplies ON: S2, S3, S7, S8 negative current to output side at zero-voltage switching point (state), and meanwhile, common-mode voltage Vcm is equal to Vdc/2.
(17) From
(18) By properly controlling the switching states of the eight switch units (S1-S8), the common-mode voltage Vcm would be clamped at Vdc/2 under four different operation states of the single-phase non-isolated inverter 1. On the other hand, because the connection node between the seventh switch unit S7 and the eighth switch unit S8 is electrically connected to the connection node between the first DC-side capacitor Cdc1 and the second DC-side capacitor Cdc2, an identical voltage drop of Vdc/2 is across over each of the fifth switch unit S5, the sixth switch unit S6, the seventh switch unit S7, and the eighth switch unit S8. It is worth noting that, the voltage drop simultaneously across over the fifth switch unit S5 and the sixth switch unit S6 of the conventional FB-DCBP circuit 1 (as shown in
(19) Please continuously refer to
Second Embodiment
(20)
(21) In spite of the fact that above descriptions indicate that the common-mode voltage Vcm would be clamped at Vdc/2 under four different operation states of the single-phase non-isolated inverter 1, that does not imply that the capacitor voltage of the first DC-side capacitor Cdc1 would be equal to the first DC-side capacitor's Cdc1. The primary factor causing the capacitor voltage unbalance between the two DC-side capacitors is that rise time and fall time of the fifth switch unit S5, the sixth switch unit S6, the seventh switch unit S7, and the eighth switch unit S8 may have time difference due to errors of semiconductor manufacturing processes. Similarly, the first driver 16 and the second driver 17 may also have some circuit characteristic differences.
(22) By adding the subtractor 14 and the PI controller 15 into the circuit framework of the single-phase non-isolated inverter 1, the PI would output an adjusting signal to the micro controller 13 of the single-phase non-isolated inverter 1 based on an output signal of the subtractor 14, such that the micro controller 13 properly adjusts the duty cycle of the switch unit driving signal of the fifth switch unit S5 and the sixth switch S6 unit until capacitor voltage unbalance between two DC-side capacitors (Cdc1, Cdc2) is canceled. The way to adjust the duty cycle of the switch unit driving signal can be described by following mathematic formulas:
D.sub.S5*=D*+?D*
D.sub.S6*=D*??D*
(23) In the mathematic formulas, D* means an initial duty cycle of the switch unit driving signal, and ?D* represents an amount of adjustment for the duty cycle. For instance, the capacitor voltage unbalance between the two DC-side capacitors (Cdc1, Cdc2) has the maximum value at the boot instant of the single-phase non-isolated inverter 1. In the meantime, a specific ?D* with maximum value is calculated by the PI controller 15 for accelerating the first DC-side capacitor Cdc1 to release charges to the output side. Moreover, with the fact that the capacitor voltage unbalance between the two DC-side capacitors (Cdc1, Cdc2) is gradually reduced and eventually canceled, value of ?D* is getting smaller and eventually be constant.
(24) Therefore, through above descriptions, the single-phase non-isolated inverter 1 of the present invention has been introduced completely and clearly; in summary, the present invention includes the advantages of:
(25) (1) As
(26) (2) Moreover, it can further add a subtractor 13 and a proportional-integral (PI) controller 15 into the circuit framework of the single-phase non-isolated inverter 1. As a result, the PI controller 15 would output an adjusting signal to a micro controller 13 of the single-phase non-isolated inverter 1 based on an output signal of the subtractor 13, such that the micro controller 13 properly adjusts the duty cycle of a switch unit driving signal of the fifth switch unit S5 and the sixth switch unit S6 until capacitor voltage unbalance between two DC-side capacitors (Cdc1, Cdc2) is canceled.
(27) The above description is made on embodiments of the present invention. However, the embodiments are not intended to limit scope of the present invention, and all equivalent implementations or alterations within the spirit of the present invention still fall within the scope of the present invention.