Patent · US12208975B2 · B2 · US
Transport system, and transport module
- (11) Publication number
- US12208975B2
- (21) Application number
- 18/723,486
- (22) Filing date
- 2022-02-02
- (30) Priority date
- 2022-02-02
- (43) Publication date
- 2025-01-28
- (45) Date of grant
- 2025-01-28
- (51) IPC
- B65G 43/00; B65G 54/02; H02M 7/537; H02P 25/06; H02P 27/06
- (52) CPC
- B65G Transport or storage devices, e.g. conveyors for loading or tipping, shop conveyor systems or pneumatic tube conveyors: 54/02, 2812/99, 43/00
- H02M Apparatus for conversion between AC and AC, between AC and DC, or between DC and DC, and for use with mains or similar power supply systems; conversion of DC or AC input power into surge output power; control or regulation thereof: 7/48, 7/537
- H02P Control or regulation of electric motors, electric generators or dynamo-electric converters; controlling transformers, reactors or choke coils: 2207/07, 25/06, 25/22, 27/06, 5/74
- Y02T Climate change mitigation technologies related to transportation: 10/72
- (73) Assignee
- Mitsubishi Electric Corp
- (72) Inventors
- Tatsuya Kawase; Yasuhiro Suzuki
- (54) Title
- Transport system, and transport module
- (57) Abstract
The transport system includes transport modules each including a coil group and an inverter unit that applies an AC voltage to the coil group. The transport system has at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group. Each inverter unit includes an inverter circuit and a diode. The inverter circuit has a DC voltage applied thereto, the DC voltage being output from a DC power supply, and converts the DC voltage into the AC voltage. The diode is connected between the DC power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the diode connected to the DC power supply to a second side of the diode opposite to the first side when a potential on the first side is higher than a potential on the second side.
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Claims (12)
- A transport system comprising: a plurality of transport modules each including a coil group and an inverter unit to apply an alternating-current voltage to the coil group; and at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein each of the inverter units includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from a common direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a capacitor connected in parallel to the inverter circuit at a side of the direct-current power supply as viewed from the inverter circuit; a first diode connected between the direct-current power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; and a first switching element connected in parallel to opposite ends of the first diode, wherein where one of the plurality of transport modules is defined as a first transport module, the capacitor included in the first transport module stores regenerative power generated when the carriage passes decelerating through the first transport module, and the first switching element included in the first transport module is closed when the regenerative power stored in the capacitor is used as driving power of a transport module other than the first transport module.
- The transport system according to claim 1, wherein each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring bus interconnecting the first diode and the inverter circuit, and each of the opening and closing control circuits closes the first switching element when a detection value of the bus voltage detected by the voltage detection circuit exceeds a predetermined upper limit value or falls below a predetermined lower limit value.
- The transport system according to claim 2, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
- The transport system according to claim 1, comprising a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring interconnecting the first diode and the inverter circuit, each of the inverter units notifies the controller of an excess notification indicating that a detection value of the bus voltage detected by the voltage detection circuit exceeds a predetermined upper limit value or falls below a predetermined lower limit value, and Upon being notified of the excess notification, the controller controls the operation of the opening and closing control circuit in the inverter unit to close the first switching element.
- The transport system according to claim 4, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
- The transport system according to claim 1, comprising a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring interconnecting the first diode and the inverter circuit, each of the inverter unit notifies the controller of a detection value of the bus voltage, and the controller controls the operation of the opening and closing control circuit in at least one of the inverter units to close the first switching element on a basis of the detection value of the bus voltage.
- The transport system according to claim 6, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
- The transport system according to claim 1, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
- A transport system comprising: at least two transport modules each including a coil group and an inverter unit to apply an alternating-current voltage to the coil group; and at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein each of the inverter units includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from a common direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a first diode connected between the direct-current power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; a first switching element connected in parallel to opposite ends of the first diode; and an opening and closing control circuit to control opening and closing of the first switching element, wherein the transport system comprises a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, and the controller controls, on a basis of a motion profile of the at least one carriage, an operation of the opening and closing control circuit in at least one of the inverter units.
- The transport system according to claim 9, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
- A transport module comprising: a coil group; and an inverter unit to apply an alternating-current voltage to the coil group and to impart a driving force to a carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein the inverter unit is connected to a common direct-current power supply together with an inverter unit included in another transport module, and the inverter unit includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from the direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a capacitor connected in parallel to the inverter circuit at a side of the direct-current power supply as viewed from the inverter circuit; a first diode connected between the direct-current power supply and the inverter unit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; a first switching element connected in parallel to opposite ends of the first diode; and an opening and closing control circuit to control opening and closing of the first switching element, wherein the capacitor stores regenerative power generated when the carriage passes decelerating through, and the opening and closing control circuit closes the first switching element when the regenerative power stored in the capacitor is used as driving power of another transport module.
- The transport module according to claim 11, wherein the inverter unit includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.
Description
The present disclosure relates to a transport system including at least one carriage having a magnet installed thereon to receive an electromagnetic force from a coil group. The present disclosure also relates to a transport module and an inverter unit of the transport system.
In general, a factory-automated production line for assembling an industrial product uses a transport system that transports parts etc. within the production line or among a plurality of stations along the production line.
In the transport system, a transport line is divided into a plurality of control zones, a control apparatus is located in each control zone, and a carriage travels between the control zones. Such a transport system is often used in a recent production line because of its superiority in production efficiency.
Patent Literature 1 below discloses a transport system including a guide rail for travelling of a carriage thereon and linear motors having stators arranged in the shape of a track at predetermined intervals along the guide rail, and movable sides having the carriage attached thereto such that the carriage circulates along the track. In this transport system, inverter circuits are connected in one-to-one to the stators, and a single Direct-Current (DC) power supply is connected to a plurality of the inverter circuits.
In the conventional transport system as represented by Patent Literature 1, the positions of the stations are fixed.
Citations (25)
- JPH0969435A
- US5825641A
- USRE39747E1
- US7026732B1
- JPH11355905A
- US6952086B1
- US8035323B2
- WO2010131344A1
- US20120019178A1
- US8970142B2
- US20170054400A1
- JP2017042029A
- US10411619B2
- US10075118B2
- EP3447884A1
- US10381958B2
- US10608469B2
- US10951138B2
- US11309737B2
- US10367404B2
- US10651846B2
- US20190386588A1
- US10875418B2
- US11777388B2
- WO2020217272A1
Record as JSON
{
"publication_number": "US12208975B2",
"country": "US",
"kind": "B2",
"title": "Transport system, and transport module",
"abstract": "The transport system includes transport modules each including a coil group and an inverter unit that applies an AC voltage to the coil group. The transport system has at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group. Each inverter unit includes an inverter circuit and a diode. The inverter circuit has a DC voltage applied thereto, the DC voltage being output from a DC power supply, and converts the DC voltage into the AC voltage. The diode is connected between the DC power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the diode connected to the DC power supply to a second side of the diode opposite to the first side when a potential on the first side is higher than a potential on the second side.",
"claims": [
"1. A transport system comprising: a plurality of transport modules each including a coil group and an inverter unit to apply an alternating-current voltage to the coil group; and at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein each of the inverter units includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from a common direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a capacitor connected in parallel to the inverter circuit at a side of the direct-current power supply as viewed from the inverter circuit; a first diode connected between the direct-current power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; and a first switching element connected in parallel to opposite ends of the first diode, wherein where one of the plurality of transport modules is defined as a first transport module, the capacitor included in the first transport module stores regenerative power generated when the carriage passes decelerating through the first transport module, and the first switching element included in the first transport module is closed when the regenerative power stored in the capacitor is used as driving power of a transport module other than the first transport module.",
"2. The transport system according to claim 1, wherein each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring bus interconnecting the first diode and the inverter circuit, and each of the opening and closing control circuits closes the first switching element when a detection value of the bus voltage detected by the voltage detection circuit exceeds a predetermined upper limit value or falls below a predetermined lower limit value.",
"3. The transport system according to claim 2, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.",
"4. The transport system according to claim 1, comprising a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring interconnecting the first diode and the inverter circuit, each of the inverter units notifies the controller of an excess notification indicating that a detection value of the bus voltage detected by the voltage detection circuit exceeds a predetermined upper limit value or falls below a predetermined lower limit value, and Upon being notified of the excess notification, the controller controls the operation of the opening and closing control circuit in the inverter unit to close the first switching element.",
"5. The transport system according to claim 4, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.",
"6. The transport system according to claim 1, comprising a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, each of the inverter units includes: an opening and closing control circuit to control opening and closing of the first switching element; and a voltage detection circuit to detect a bus voltage that is a voltage of electrical wiring interconnecting the first diode and the inverter circuit, each of the inverter unit notifies the controller of a detection value of the bus voltage, and the controller controls the operation of the opening and closing control circuit in at least one of the inverter units to close the first switching element on a basis of the detection value of the bus voltage.",
"7. The transport system according to claim 6, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.",
"8. The transport system according to claim 1, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.",
"9. A transport system comprising: at least two transport modules each including a coil group and an inverter unit to apply an alternating-current voltage to the coil group; and at least one carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein each of the inverter units includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from a common direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a first diode connected between the direct-current power supply and the inverter circuit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; a first switching element connected in parallel to opposite ends of the first diode; and an opening and closing control circuit to control opening and closing of the first switching element, wherein the transport system comprises a controller to control an operation of each of the inverter units, wherein the controller is configured to communicate with each of the inverter units, and the controller controls, on a basis of a motion profile of the at least one carriage, an operation of the opening and closing control circuit in at least one of the inverter units.",
"10. The transport system according to claim 9, wherein each of the inverter units includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side.",
"11. A transport module comprising: a coil group; and an inverter unit to apply an alternating-current voltage to the coil group and to impart a driving force to a carriage having a magnet installed thereon to receive an electromagnetic force from the coil group, wherein the inverter unit is connected to a common direct-current power supply together with an inverter unit included in another transport module, and the inverter unit includes: an inverter circuit to have a direct-current voltage applied thereto, the direct-current voltage being output from the direct-current power supply, and to convert the direct-current voltage into the alternating-current voltage; a capacitor connected in parallel to the inverter circuit at a side of the direct-current power supply as viewed from the inverter circuit; a first diode connected between the direct-current power supply and the inverter unit and disposed to allow a current to flow in a forward direction from a first side of the first diode to a second side of the first diode when a potential on the first side is higher than a potential on the second side, the first side being connected to the direct-current power supply, the second side being opposite to the first side; a first switching element connected in parallel to opposite ends of the first diode; and an opening and closing control circuit to control opening and closing of the first switching element, wherein the capacitor stores regenerative power generated when the carriage passes decelerating through, and the opening and closing control circuit closes the first switching element when the regenerative power stored in the capacitor is used as driving power of another transport module.",
"12. The transport module according to claim 11, wherein the inverter unit includes: an inrush current reduction resistor connected in series to the first switching element between the direct-current power supply and the inverter circuit and to reduce an inrush current flowing to the inverter circuit; a second switching element connected in parallel to the inrush current reduction resistor; and a second diode connected in parallel to both the inrush current reduction resistor and the second switching element, and disposed to allow a current to flow in a forward direction from a fourth side of the second diode to a third side of the second diode when a potential on the third side is lower than a potential on the fourth side, the third side being connected to the direct-current power supply, the fourth side being opposite to the third side."
],
"description_excerpt": "The present disclosure relates to a transport system including at least one carriage having a magnet installed thereon to receive an electromagnetic force from a coil group. The present disclosure also relates to a transport module and an inverter unit of the transport system.\n\nIn general, a factory-automated production line for assembling an industrial product uses a transport system that transports parts etc. within the production line or among a plurality of stations along the production line.\n\nIn the transport system, a transport line is divided into a plurality of control zones, a control apparatus is located in each control zone, and a carriage travels between the control zones. Such a transport system is often used in a recent production line because of its superiority in production efficiency.\n\nPatent Literature 1 below discloses a transport system including a guide rail for travelling of a carriage thereon and linear motors having stators arranged in the shape of a track at predetermined intervals along the guide rail, and movable sides having the carriage attached thereto such that the carriage circulates along the track. In this transport system, inverter circuits are connected in one-to-one to the stators, and a single Direct-Current (DC) power supply is connected to a plurality of the inverter circuits.\n\nIn the conventional transport system as represented by Patent Literature 1, the positions of the stations are fixed.",
"cpc": [
"B65G 54/02",
"B65G 2812/99",
"B65G 43/00",
"H02M 7/48",
"H02M 7/537",
"H02P 2207/07",
"H02P 25/06",
"H02P 25/22",
"H02P 27/06",
"H02P 5/74",
"Y02T 10/72"
],
"ipc": [
"B65G 43/00",
"B65G 54/02",
"H02M 7/537",
"H02P 25/06",
"H02P 27/06"
],
"assignees": [
"Mitsubishi Electric Corp"
],
"inventors": [
"Tatsuya Kawase",
"Yasuhiro Suzuki"
],
"filing_date": "2022-02-02",
"publication_date": "2025-01-28",
"grant_date": "2025-01-28",
"priority_date": "2022-02-02",
"application_number": "US-202218723486-A",
"family_id": "84888473",
"cited_by_count": 2,
"citations": [
"JPH0969435A",
"US5825641A",
"USRE39747E1",
"US7026732B1",
"JPH11355905A",
"US6952086B1",
"US8035323B2",
"WO2010131344A1",
"US20120019178A1",
"US8970142B2",
"US20170054400A1",
"JP2017042029A",
"US10411619B2",
"US10075118B2",
"EP3447884A1",
"US10381958B2",
"US10608469B2",
"US10951138B2",
"US11309737B2",
"US10367404B2",
"US10651846B2",
"US20190386588A1",
"US10875418B2",
"US11777388B2",
"WO2020217272A1"
]
}
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