The present invention relates to an electronic control unit.
In order to use an automobile electronic control unit (ECU) for general purposes, it is necessary to prepare interface circuits which correspond to various types of vehicles. Here, the interface circuits include a load driving circuit, such as a linear current control circuit (hereinafter referred to as LCC), a low-side on/off control circuit (hereinafter referred to as LSD), and a high-side on/off control circuit (hereinafter referred to as HSD).
However, as various interface circuits are held, the number of connector terminals of the ECU increases and the size of the ECU increases. The ECU has been requested to reduce the size and cost thereof. Thus, there is a demand for an interface circuit which changes a driving form according to a load to be connected.
In contrast, there is known a device having the functions of an LCC and an HSD and capable of switching these functions (for example, see PTL 1). In PTL 1 (FIGS. 3 to 6), the LCC and the HSD are selectively used for the same load connection.
The device disclosed in PTL 1 does not correspond to the LSD and does not have a function as the LSD.
An object of the present invention is to provide an electronic control unit which is configured to switch the functions of an LCC, an HSD, and an LSD depending on a load to be connected.
In order to achieve the above object, the present invention includes a first switching element provided in a first path between a power supply and a first terminal, a second switching element provided in a second path between a ground and a second terminal, a rectifier element provided in a third path connected to a first connection point between the first switching element and the first terminal and a second connection point between the second switching element and the second terminal, and a third switching element provided in the third path.
According to the present invention, the functions of the LCC, the HSD, and the LSD can be switched depending on a load to be connected. Problems, configurations, and effects other than those in the above description will be made clear in the following description of the embodiments.
Hereinafter, the configurations and operations of an electronic control unit including an interface circuit will be described according to first to third embodiments of the present invention, with reference to the drawings. In each figure, the same reference numerals denote the same portions.
Hereinafter, a first embodiment of the present invention will be described with reference to
A power-supply-side switching element 102 (first switching element) is provided in a path L1 (first path) between a power supply 401 (battery) and a connector terminal 301 (first terminal). A ground-side switching element 106 (second switching element) is provided in a path L2 (second path) between a ground 402 and a connector terminal 302 (second terminal). A freewheeling diode 105 (rectifier element) is provided in a path L3 (third path) connected to a connection point P1 (first connection point) between the power-supply-side switching element 102 and the connector terminal 301 and a connection point P2 (second connection point) between the ground-side switching element 106 and the connector terminal 302. A switching element 104 (third switching element) is provided in the path L3.
A control element 101, such as a microcomputer or an IC, controls the power-supply-side switching element 102, the switching element 104 on a current return path, and the ground-side switching element 106.
When the interface circuit is used as an LCC, an inductive load 501a is connected as illustrated in
As illustrated in
As illustrated in
In
As described above, according to the present embodiment, a single circuit configuration is switchably used as the LCC, the LSD, the HSD, and the LSD and the HSD, depending on a load to be connected and control of switching. That is, the functions of the LCC, the HSD, and the LSD are switched depending on a load to be connected.
In other words, the same interface circuit is employed to selectively use the functions of the LCC, the HSD, and the LSD with software. Since it is unnecessary to manufacture an electronic control unit for each of the LCC, the HSD, and the LSD, the man-hours for management is not increased and further the number of connector terminals is not increased.
As illustrated in
Next, a second embodiment of the present invention will be described with reference to
In
Note that the control signal line 201 (first control line) is connected to the power-supply-side switching element 102 (first switching element), the control signal line 203 (second control line) is connected to the ground-side switching element 106 (second switching element), and the control signal line 202 (third control line) is connected to the switching element 104 (third switching element).
As illustrated in
As illustrated in
As described above, according to the present embodiment, a single circuit configuration is switchably used as the LCC and the LSD. Furthermore, the control signal line 202 for the switching element 104 on the current return path and the control signal line 201 have the same signal line, and it is possible to remove the control signal line 202 extending from the control element 101.
As illustrated in
(Modification)
Next, a modification of the second embodiment of the present invention will be described with reference to
In
This configuration is different from that of
As illustrated in
As illustrated in
As described above, according to the present modification, a single circuit configuration is switchably used as the LCC and the HSD. Furthermore, the control signal line 202 for the switching element 104 on the current return path and the control signal line 203 have the same signal line, and it is possible to remove the control signal line 202 extending from the control element 101.
As illustrated in
Next, a third embodiment of the present invention will be described with reference to
In other words, one (fourth switching element) of the switching element A 107 and the switching element B 108 functions as a rectifier element.
In this configuration, since the switching element A 107 and the switching element B 108 are turned on/off at any time by using a control signal line 204 and a control signal line 205, power loss caused by the forward voltage of the diode provided on the current return path in the first embodiment can be reduced.
According to the present embodiment, a single circuit configuration is switchably used as the LCC, the LSD, and the HSD, depending on a load to be connected and control of switching. In addition, it is possible to reduce power loss in the current return path.
Note that the present invention is not limited to the above embodiments, and may include various modifications. For example, the above embodiments are described in detail for ease of understanding the present invention, and therefore, the present invention is not necessarily limited to a configuration including all of the configurations described above. Furthermore, part of a configuration of an embodiment can be replaced with a configuration of another embodiment, and a configuration of an embodiment can be added to a configuration of another embodiment. Still furthermore, for part of the configurations of the respective embodiments, additions, eliminations, or substitutions of another configuration may be made.
The embodiments of the present invention may include the following aspects.
(1) An electronic control unit including a power-supply-side switching element which supplies current from a power supply to a load, a ground-side switching element which cause current to flow from the load to a ground, a current return path which causes a return current to flow from the load to the upstream side of the load, and a current return switching element disposed in the current return path to switch conduction and block of a path.
(2) The electronic control unit according to (1), in which the current return switching element disposed in the current return path includes an element which limits a direction of the current return path and a switching element which switches conduction and block of a path.
(3) The electronic control unit according to (1), in which the current return switching element disposed in the current return path includes two switching elements which switch between conduction and block of the current return path.
(4) The electronic control unit according to (1) to (3), further including a linear current control circuit which, for a load having both ends connected to the power-supply-side switching element and the ground-side switching element, always turns on the ground-side switching element when controlling switching of the power-supply-side switching element, always turns on the power-supply-side switching element when controlling switching of the ground side switching element, and always turns on the current return switching element disposed in the current return path, for conduction of the current return path.
(5) The electronic control unit according to (1) to (3), further including an on/off control circuit which, for a load connected to either the power-supply-side switching element or the ground-side switching element, always turns off the ground-side switching element to which no load is connected when controlling switching of the power-supply-side switching element to which a load is connected, always turns off the power-supply-side switching element to which no load is connected when controlling switching of the ground-side switching element to which a load is connected, and always turns off the current return switching element disposed in the current return path, for block of the current return path.
(6) The electronic control unit according to (1) to (5), further including a control element which switches a linear current control circuit and an on/off control circuit so that controlling switching of the power-supply-side switching element or the ground-side switching element and turning on/off a current return switching element disposed in the current return path are performed for conduction and block of the current return path, and the return current is used to drive a load depending on connection of the load.
(7) The electronic control unit according to (1) to (6), in which, for the power-supply-side switching element or the ground-side switching element and a current return switching element disposed in the current return path, conduction and block of the current return path are performed by turning on/off a current return switching element disposed in the current return path by the same logic as that of the power-supply-side switching element or the ground-side switching element on which control of switching is not performed, and a linear current control circuit and an on/off control circuit are switched.
(8) The electronic control unit according to (1) to (7), in which the power-supply-side switching element or the ground-side switching element are connected to a control terminal and an output terminal of the current return switching element and then turned on/off in response to a control signal of the same voltage, for conduction and block of the current return path.
According to the above embodiments (1) to (8), it is possible to use interface circuits for the LCC as linear current control and for the HSD or the LSD as on/off control, and any of the interface circuits is selected by software to be used as a drive circuit.
In addition, turning on/off of a switching element in a current return path in accordance with the same logic as that of a switching element on the opposite side from a switching element on which switching control is performed in response to the same control signal.
Furthermore, the power-supply-side switching element or the ground-side switching element and the switching element in the current return path which include an N-channel or P-channel MOSFET are turned on/off in response to a control signal of the same potential.
Number | Date | Country | Kind |
---|---|---|---|
JP2016-138716 | Jul 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2017/021575 | 6/12/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/012168 | 1/18/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20040207377 | Shimada et al. | Oct 2004 | A1 |
20140003103 | Aaltio | Jan 2014 | A1 |
20150155275 | Bahramian | Jun 2015 | A1 |
20160059807 | Iwasaki et al. | Mar 2016 | A1 |
Number | Date | Country |
---|---|---|
H08-047249 | Feb 1996 | JP |
2000-016196 | Jan 2000 | JP |
2004-311856 | Nov 2004 | JP |
2007-258392 | Oct 2007 | JP |
2009-240027 | Oct 2009 | JP |
2016-043872 | Apr 2016 | JP |
Number | Date | Country | |
---|---|---|---|
20190176726 A1 | Jun 2019 | US |