This application claims the foreign priority benefit under Title 35, United States Code, § 119 (V1)-(d), of Japanese Patent Application No. 2007-303915A, filed on Nov. 26, 2007 and No. 2007-303918A, filed on Nov. 26, 2007, and No. 2008-244594A, filed on Sep. 24, 2008 in the Japan Patent Office, the disclosure of which is herein incorporated by reference in its entirety.
1. Field of the Invention
The present invention relates to a voltage detecting device for battery modules to detect the voltage of each battery module of a secondary battery.
2. Description of the Related Art
For example, an electric power for an electric vehicle and a hybrid vehicle is supplied from a secondary battery comprised of a number of cells connected in series. Accordingly, the voltage of a battery module which is a series circuit of a plurality of cells is normally monitored.
According to a method of detecting the voltage of the battery module of the secondary battery, there is known a measuring method by which an output voltage of the battery module to be measured is applied to one capacitor by sequentially switching switches, so that the capacitor is charged, and a voltage across the capacitor is measured by a differential amplifier.
When an A/D (analog to digital) converter converts an analog output signal of the differential amplifier into a digital signal, aliasing occurs due to noise caused by frequencies higher than half a sampling frequency. Preferably, an anti-aliasing filter is applied between the switch and a battery module to be measured so as to prevent the aliasing.
JP2005-003618A discloses a voltage detecting circuit which includes an anti-aliasing filter for each battery module. The anti-aliasing filter is a low-pass filter composed of a resistor and a capacitor.
However, the technology disclosed in JP2005-003618A has the problem in occurring the difference in frequency response between the battery modules and having an inhomogeneous filter characteristic with respect to each battery module since a resistor connected between the battery modules is commonly used. In other words, when two sets of resistors are provided for each battery module, the frequency response is equalized. However, when the resistor between the battery modules is commonly provided in order to reduce the number of electronic parts, the frequency response becomes inhomogeneous. In this case, even if there is no difference in an output voltage waveform of each battery module, there appears the difference in the voltage waveform of each battery module through a filter. Accordingly, it is erroneously determined that the battery module is in an irregular condition. In particular, since the voltage detecting circuit of JP2005-003618A amends the difference in frequency response between the battery modules on the basis of a constant value of electronic parts, the constant value needs to be strictly determined. If the constant value is erroneously determined, an error resulting from variance of the constant value is considerably large. For example, if a photo MOS relay having a predetermined delay time in switching is provided for a switch, a sampling frequency of switching cannot be raised due to a long delay time. Consequently, the voltage detecting device including the photo MOS relay is affected by the noise of a relatively low frequency.
An aspect of the present invention provides a voltage detecting device for battery modules for reducing a difference in frequency response of battery module whose voltage is detected.
A voltage detecting device for battery modules for individually detecting a voltage of a battery module of a secondary battery, wherein each battery module is constituted of at least one cell or more, and M sets of battery modules are connected in series, and “M” is a positive integer, the voltage detecting device for battery modules comprises: (M+1) sets of voltage detecting terminals for being connected to a positive electrode of a top battery module, a negative electrode of an end battery module, and (M−1) sets of connecting points between the battery modules; a filtering circuit whose input terminals are connected to the voltage detecting terminals; a switching circuit whose input terminals are connected to output terminals of the filter circuit; and a voltage detecting circuit for being connected to output terminals of the switching circuit and detecting the voltage of each battery module, wherein the filter circuit includes resistors disposed between the input terminals and the output terminal of the filter circuit, and a capacitor disposed between the terminals of the resistors, whereby obtaining a characteristic of a low-pass filter, and wherein a resistor/capacitor configuration of the low-pass filter is determined by adjusting a resistance value and position of the resistor as well as capacitance and position of the capacitor, so that frequency response is kept constant when the voltage of the plurality of battery modules is detected.
According to the voltage detecting device for battery modules, when “M” and “N” are a positive integer, the resistor/capacitor configuration is made up of (M+1) sets of resistors having an equal resistance value to connect an N-th input terminal of the filter circuit to an N-th output terminal of the filter circuit, and M sets of capacitors whose terminals are connected between the output terminals of two adjacent resistors out of the (M+1) sets of resistors. When capacitance of the capacitor corresponding to a first battery module is regarded as “one”, capacitance ratio of the capacitor corresponding to an N-th battery module is expressed as “N(M−N+1)/M”.
According to the voltage detecting device for battery modules, when the number of battery modules is “M” being a positive and uneven integer and “N” is a positive integer, the resistor/capacitor configuration is made up of (M+1) sets of resistors having an equal resistance value to connect an N-th input terminal of the filter circuit to an N-th output terminal of the filter circuit, and (M+1)/2 sets of capacitors having equal capacitance and connected to the output terminals of N-th and (M+2−N)-th resistors out of the (M+1) sets of resistors.
According to the voltage detecting device for battery modules, when the number of battery modules is “M” being a positive and even integer and “N” is a positive integer, the resistor/capacitor configuration is made up of a resistor having an arbitrary resistance value, including a zero ohm resistor, to connect M/2-th input terminal of the filter circuit to M/2-th output terminal of the filter circuit, M sets of resistors having an equal resistance value to connect an N-th input terminal of the filter circuit to an N-th output terminal of the filter circuit, apart from M/2-th input terminal of the filter circuit, and M/2 sets of capacitors having equal capacitance and connected between the output terminals of N-th and (M+2-N)-th resistors out of (M+1) sets of resistors.
According to the voltage detecting device for battery modules, when “M”, “P”, and “Q” are a positive integer, “P” is less than half of “M”, and “Q” is not equal to “P” and less half of “M”, and a capacitor connected between P-th and (M+2−P)-th resistors and a capacitor between Q-th and (M+2−Q)-th resistors are replaced with a capacitor connected between the Q-th and P-th resistors, a capacitor connected between the P-th and (M+2−Q)-th resistors, a capacitor connected between the Q-th and (M+2−P)-th resistors, and a capacitor connected between the (M+2−Q)-th and (M+2−P)-th resistors, and all the capacitors have approximately equal capacitance.
According to the voltage detecting device for battery modules, “M” is a positive integer, and a resistor connected between M/2-th input terminal of the filter circuit and M/2-th output terminal of the filter circuit is replaced with a wire.
According to the voltage detecting device for battery modules, when the number of battery module is expressed as “M” being a positive and integer, a resistor connected between M/2-th input terminal of the filter circuit and M/2-th output terminal of the filter circuit is replaced with a wire.
According to the voltage detecting device for battery modules, the resistor is provided as a dummy load by a switching capacitor method of providing the capacitor and a plurality of switches.
According to the voltage detecting device for battery modules, the switching circuit is an analog multiplexer integrally and separately constituted with the voltage detecting circuit.
A first voltage detecting device for battery modules individually detects a voltage of the battery module of the secondary battery 11 which includes M (a positive integer) sets of battery modules composed of at least one cell or more and connected in series. The first voltage detecting device for battery modules includes a plurality of switches 14 connected to both terminals of each battery module, resistors having an equal resistance value and connected in series between both terminals of each battery module and the switches, filters 12 composed of the resistors and capacitors having equal capacitance. When the number M of battery modules is an even number, the resistor connected to the terminals of the battery modules disposed at the center of a circuit can have an arbitrary resistance value. The capacitors are respectively connected in parallel with the battery module and connected to contact points which are disposed between the resistors and the switches. The capacitors constituting the filter provide a first capacitor group and a second capacitor group, which is disposed in parallel with the first capacitor group. The first capacitor group and the second capacitor group are symmetrically disposed on a positive terminal side and a negative terminal side of the secondary battery whose center is a fold-back point, so that the circuit including the first capacitor group and the second capacitor group can provide an approximately equal frequency response with respect to each battery module to be measured.
When the number M of battery modules of the first voltage detecting device for battery modules is three, a second voltage detecting device for battery modules includes a circuit having the secondary battery and the filter. The circuit comprises three sets of battery modules connected in series, four sets of resistors (for example, R31, R32, R33, and R34) having an equal resistance value and, two sets of end capacitors (for example, C31 and C34) having the equal capacitance, a negative-electrode-side peripheral capacitor (for example, C32) having the equal capacitance, and a positive-electrode-side peripheral capacitor (for example, C33) having the equal capacitance.
The resistors R31, R32, R33, and R34 are connected in series between the switches and both terminals of each battery module. The end capacitors C31 and C34 are connected between contact points which are disposed between the switches and the resistors R31, R32, R33, and R34. The resistors R31, R32, R33, and R34 are connected to both terminals of end battery modules out of the three battery modules connected in series. The negative-electrode-side peripheral capacitor C32 is connected between contact points which are disposed between the switches and the resistors R31 and R34. The resistors R31 and R34 are connected to a negative-electrode terminal of the top battery module out of the three battery modules connected in series and a negative-electrode terminal of the end battery module out of the three battery modules connected in series. The positive-electrode-side peripheral capacitor C33 is connected between contact points which are disposed between the switches and the resistors R31 and R33. The resistors R31 and R33 are connected to a positive-electrode terminal of the end battery module out of the three battery modules connected in series and a positive-electrode terminal of the top battery module out of the three battery modules connected in series.
When the number M of battery modules of the first voltage detecting device for battery modules is 4n (n is a positive integer), a third voltage detecting device for battery modules includes a circuit having a secondary battery and a filter. The circuit comprises the four-battery-module-type battery unit having N sets of filters sequentially being nested at the fold-back point.
When the number M of battery modules of the first voltage detecting device for battery modules is (4n+1) (n is a positive integer), a fourth voltage detecting device for battery modules includes a circuit having the secondary battery and the filter. The circuit comprise the four-battery-module-type battery unit having N sets of filters sequentially being nested at the fold-back point, and the one-battery-module-type battery unit disposed between the second and third battery modules of the four-battery-module-type battery unit disposed at the fold-back point.
When the number M of battery modules of the first voltage detecting device for battery modules is (4n+2) (n is a positive integer), a fifth voltage detecting device for battery modules includes a circuit having the secondary battery and the filter. The circuit comprises the four-battery-module-type battery unit having N sets of filters sequentially being nesting at the fold-back point, and the two-battery-module-type battery unit disposed between the second and third battery modules of the four-battery-module-type battery unit disposed at the fold-back point.
When the number M of battery modules of the first voltage detecting device for battery modules is (4n+3) (n is a positive integer), a sixth voltage detecting device for battery modules includes a circuit having the secondary battery and the filter. The circuit comprises the four-battery-module-type battery unit N sets of filters sequentially being nested at the fold-back point, and the three-battery-module-type battery unit disposed between the second and third battery modules of the four-battery-module-type battery unit disposed at the fold-back point.
A seventh voltage detecting device for battery modules is based on the fourth voltage detecting device for battery modules, and includes the one-battery-module-type battery unit whose circuit is composed of a set of battery module and one-battery-module filter block which includes two sets of resistors having the equal resistance value and capacitors having the equal capacitance. The two sets of resistors are disposed in series between the switches and both terminals of the battery module. The capacitor are connected between contact points which are disposed between the switches and the resistors connected to both terminals of the battery module.
An eighth voltage detecting device for battery modules is based on the fifth voltage detecting device for battery modules, and includes two sets of battery modules connected in series and the two-battery-module-type battery unit whose circuit is composed of two-battery-module filter block which includes two sets of resistors having the equal resistance value and capacitors having the equal capacitance. The two sets of resistors are out of three resistors connected in series between the switches and both terminals of the battery modules, apart from the resistor connected to the central terminal. The capacitors are connected to a positive-electrode terminal of the top battery module out of the two battery modules connected in series and a negative-electrode terminal of the end battery module out of the two battery modules connected in series.
A ninth voltage detecting device for battery modules is based on the sixth voltage detecting device for battery modules, and includes the three-battery-module-type battery unit whose circuit is composed of three sets of battery modules connected in series and three-battery-module filter block which includes four sets of resistors having the equal resistance value, two sets of end capacitors having the equal capacitance, a negative-electrode-side peripheral capacitor having the equal capacitance, and a positive-electrode-side peripheral capacitor having the equal capacitance.
The four sets of the resistors are connected in series between the switches and both terminals of the three sets of battery modules. The two sets of end capacitors. The two sets of the end capacitors are connected between contact points which are disposed between the switches and the resistors connected to both terminals of end battery modules out of the three battery modules connected in series. The negative-electrode-side peripheral capacitor is connected between contact points which are disposed between the switches and the two sets of resistors. The two sets of resistors are respectively connected to a negative-electrode terminal of the top battery module out of the three battery modules connected in series and a negative-electrode terminal of the end battery module out of the three battery modules connected in series. The positive-electrode-side peripheral capacitor is connected between contact points which are disposed between the switches and another two sets of resistors. The two sets of resistors are respectively connected to a positive-electrode terminal of the end battery module out of the three battery modules connected in series and a positive-electrode terminal of the top battery module out of the three battery modules connected in series.
A tenth voltage detecting device for battery modules is based on any one of the third to sixth voltage detecting devices for battery modules, and includes the-four-battery-module-type battery unit whose circuit is composed of four sets of battery modules connected in series and the four-battery-module filter block which includes four sets of resistors having the equal resistance value, two sets of end capacitors having the equal capacitance, a negative-electrode-side peripheral capacitor having the equal capacitance, and a positive-electrode-side peripheral capacitor having the equal capacitance.
The resistors are connected in series between the switches and both terminals of the four sets of battery modules, apart from the resistor connected to the central terminal. The two sets of the end capacitors are connected between contact points which are disposed between the switches and the resistors connected to both terminals of end battery modules out of the battery modules constituting the four-battery-module-type battery unit. The negative-electrode-side peripheral capacitor is connected between contact points which are disposed between the switches and the two sets of resistors. The two sets of resistors are respectively connected to a negative-electrode terminal of the top battery module out of the battery modules connected in series and a negative-electrode terminal of the end battery module out of the battery modules connected in series. The positive-electrode-side peripheral capacitor is connected between contact points which are disposed between the switches and another two sets of resistors. The two sets of resistors are respectively connected to a positive-electrode terminal of the end battery module out of the battery modules connected in series and a positive-electrode terminal of the top battery module out of the battery modules connected in series.
The voltage detecting device for the battery module of the present invention can reduce the difference in frequency response of the battery module whose voltage is detected.
In
Since the voltage of the whole secondary battery is too high to be measured, and each operation of the battery modules E1 to Em needs to be determined, the voltage of each battery module is measured by sequentially controlling the opening and closing of the switches Swm1 to Swm(m+1).
For example, when a battery module E1 is measured, a pair of switches Swm1 and Swm2 is closed, a voltage of the battery module E1 is applied, and the capacitor Co1 is charged. The pair of switches Swm1 and Swm2 is opened after a predetermined time period, the switches Swd1 and Swd2 are closed, and an A/D (analog to digital) converter (not shown) detects a voltage applied to the capacitor Co1 via a differential amplifier DA1. The voltage of the battery modules E1 to Em is sequentially detected.
The capacitor Co1 is charged when a voltage applied to one of the capacitors Cm1 to Cmm is applied to the capacitor Co1 by closing a pair of switches out of switches Swm1 to Swm(m+1) which are connected to output terminals of the battery modules via resistors. The pair of switches is opened after a predetermined time period, the switches Swd1 and Swd2 are closed, and the A/D converter detects a voltage applied to the capacitor Co1 via the differential amplifier DA1. The voltage of the battery module is determined on the basis of the detecting value. A control circuit 10 controls turning on/off the switches Swm1 to Swm(m+1) and the switches Swd1 and Swd2 during operation.
Hereinafter, the operation of the anti-aliasing filter will be described. The anti-aliasing filter mainly eliminates an alternating-current component (noise component) of the voltage of the battery module with respect to the voltage detecting device for battery modules. Even alternating-current voltage component is superposed on the voltage of each battery modules. The anti-aliasing filter is provided to eliminate an alternating-current component in a frequency bandwidth (bandwidth higher than half the sampling frequency), in which the aliasing occurs, from the superposed alternating-current component.
The anti-aliasing filter will be described with reference to
In the case where the impedance (resistance value) of resistors R01 and R02 is “R”, capacitance of a capacitor C01 is “C0”, and the impedance of the capacitor C01 is “Z”. “Z” is described as follows; Z=(1/jωC0). When an alternating-current voltage component V1 of the battery module E1 is an input, and a voltage applied to the capacitor C01 is an output, an input-output gain G1 is described as follows;
G1=VC1/V1=Z/(2R+Z) (1)
In
G200=VC200/VI=2Z/(2R+Z) (2)
As shown in
According to this replacement, the output voltage VC200 is evenly divided in two. In this case that voltages VC11 and VC12 applied to the capacitors C011 and C012 are an output respectively, an input-output gain G2 is described as follows;
G2=VC11/VI=VC12/VI=Z/(2R+Z) (3)
As equations (1) and (3) become equal, each of two filters in
An electric potential of a point A disposed between the battery module E11 and the battery module E12 becomes equal to that of a point B disposed between the capacitor C011 and the capacitor C012. Accordingly, these points can be connected via a resistor R012 having a predetermined resistance value.
In this case that a capacitance value of the capacitor C200 is “C0”, a capacitance value C′ of the capacitors C011 and C012 is described as follows;
C′=2×C0=2C0
In
Gc20=VC20/Vi=Z/(2R+Z)
G300=VC300/Vi=3Z/(2R+Z)
As shown in
According to this replacement, the total output voltage of the battery modules E21, E22, and E23 is evenly divided into three. In the case that each voltage applied to the capacitors C301, C302, and C303 is an output, the input-output gains G301, G302, and G303 are respectively described as follows;
In this time, each capacitance value of the capacitors C301, C302, and C303 is equal to a capacitance value C3 which is a third of the capacitance value C0 of the capacitors C300.
C3=3×C0
Electric potentials across the capacitor C302 disposed between points D and F are equal to electric potentials across the capacitor C20 isposed between points C and E. Accordingly, the point C can be connected to the point D, and the point E connected to the point F. As shown in
C′021=3C0
C′022=3C0+C0=4C0
C′023=3C0
In this time, each gain of the filters is described as Z/(2R+Z), so that each of three filters in
In
Zc30=Zc40=Z/2
In the case that the capacitance value of a capacitor C400 is “C0”, and the impedance of the capacitor C400 is “Z”, and alternating-current voltage components V31, V32, V33, and V34 of battery modules E31, E32, E33, and E33 are described as follows;
V31=V32=V33=V34=Vi
In the case that the voltage Vi is an input, and the voltages VC30 and VC40 applied to the capacitors C030 and C040 are an output respectively, the input-output gains Gc30 and Gc40 are described as follows;
Gc30=VC30/Vi=Gc40=VC40/Vi=Z/(2R+Z)
In the case that 4Vi is an input, and the voltage VC400 applied to the capacitor C400 are an output, the input-output gain G400 is described as follows;
G400=VC400/Vi=4Z/(2R+Z)
As shown in
According to this replacement, a total output voltage of battery modules E31, E32, E33 and E34 is evenly divided into four. In the case that respective voltages VC401 to VC404 applied to the capacitors C401 to C404 are an output, and the input voltage V1 is an input, input-output gains G401 to G404 are respectively described as follows;
In this case that the capacitance value of the capacitor C400 is “C0”, each of capacitance values C401a, C402a, C403a, and C404a of the capacitors C401, C402, C403 and C404 is four times as much as the capacitance value C0.
C401a=C402a=C403a=C404a=4C0
As described above with reference to
Capacitance values C′031 to C′034 of the capacitors C31 to C34 are respectively described as follows;
C′031=4C0
C′032=4C0+2C0=6C0
C′033=4C0+2C0=6C0
C′034=4C0
In this time, the input-output gain of each filter in
If the number of battery modules is five or more, the impedance of the capacitor can be determined in the same way described above. The capacitance ratio per capacitor is shown in a table of
Generally, an arbitrary capacitance value of the capacitor forming the anti-aliasing filter for a secondary battery having M sets of battery modules can be described below. The arbitrary capacitance value of each capacitor depends on its ordinal position. A first capacitor is disposed in parallel with the end or top battery module out of a plurality of battery modules composed of the secondary battery.
Accordingly, the capacitance of the capacitors for the anti-aliasing filter can be adjusted, so that the anti-aliasing filter can reduce the difference in frequency response with respect to the secondary battery having an arbitrary number of battery modules.
As mentioned above, the capacitance of the capacitor is described in the ratio based on the reference capacitance value C0. The resistance value R of the resistor constituting the anti-aliasing filter is constant, but not limited. Accordingly, the capacitance value C0 and the resistance value R can be selectable, so that the anti-aliasing can provide a wide range of cut-off frequency.
As described above, the embodiment of the present invention can reduce the difference in frequency response of the battery module whose voltage is detected. When there is no difference in output voltage waveform of each battery module, there is no difference in a voltage waveform through the filter. Consequently, the embodiment of the present invention can prevent the battery modules from erroneously being determined as if it were in an irregular condition. When a photo MOS relay is provided, a sampling frequency of switching is forced to be low due to a long delay in switching. However, as the embodiment of the present invention can reduce the difference in frequency responses, the anti-aliasing filter can provide relatively a high cut-off frequency. The voltage detecting device for battery modules includes a flying capacitor wherein a pair of the switches Swm1 and Swm(m+1) and a pair of the switches Swd1 and Swd2 are alternately opened and closed, so that the secondary battery and the differential amplifier are insulated with each other.
In
As the voltage of the whole secondary battery is too high to be measured and each operation of the battery modules E1 to Em needs to be determined, each voltage of battery modules E1 to Em is measured by sequentially controlling the opening and closing of the switches Sw1 to Sw2m.
For example, when a battery module E1 is measured, a pair of switches Sw1 and Sw2 is closed, a voltage of the battery module E1 is applied, and the capacitor Co1 is charged. The pair of switches Sw1 and Sw2 is opened after a predetermined time period, the switches Swd1 and Swd2 are closed, and an A/D (analog to digital) converter (not shown) detects a voltage applied to the capacitor Co1 via a differential amplifier DA1. The voltage of the battery module E1 is determined based on the detected value.
The voltage detection process for the battery modules E1 to Em sequentially proceeds in order to determine the voltage of each battery module.
The control circuit 10 controls turning on/off the switches Sw1 to Sw2m and the switches Swd1 and Swd2 during operation.
Hereinafter, the operation of the anti-aliasing filter will be described. The anti-aliasing filter mainly eliminates an alternating-current component (noise component) of the voltage of the battery module with respect to the voltage detecting device for battery modules. When the secondary battery is charged and discharged as a whole, the alternating-current component is superposed on the voltage of each battery module. The anti-aliasing filter is provided to eliminate the alternating-current component in a frequency bandwidth (bandwidth higher than half the sampling frequency), in which the aliasing occurs, from the superposed alternating-current component.
The anti-aliasing filter 12 is composed of a combination of four-battery-module filter block corresponding to four sets of battery modules and any one of four types of battery module filter blocks, depending on the number of battery modules. When the number M of battery modules is (4n+1), the filter block is one-battery-module filter block corresponding to one battery module positioned in the center of the second battery. When the number M of battery modules is (4n+2), the filter block is two-battery-module filter block corresponding to two battery modules positioned in the center of the secondary battery. When the number M of battery module is (4n+3), the filter block is three-battery-module filter block corresponding to three battery modules positioned in the center of the secondary battery. When the number M of battery modules is 4n, the filter block is four-battery-module filter block corresponding to four battery modules positioned in the center of the secondary battery.
The four-battery-module filter block is symmetrical about a fold-back point which is the center of the secondary battery and divided into two groups, which are a positive terminal side and a negative terminal side. On the positive terminal side, N sets of the four-battery-module filter blocks are disposed in order from the positive terminal. On the negative terminal side, N sets of the four-battery-module filter blocks are disposed in order from the negative terminal. In
Reference numeral 13 denotes any one of the one-battery-module filter block, the two-battery-module filter block, the three-battery-module filter block, and the four-battery-module filter block.
The anti-aliasing filter will be described with reference to
In the case that the impedance (resistance value) of resistors R11 and R22 is “R”, capacitance of a capacitor C11 is “C0”, and the impedance of the capacitor C11 is “Z”, the impedance Z is described as follows; Z=(1/jωC0). In the case that an alternating-current voltage component V11 of the battery module E11 is an input, and a voltage Vo11 applied to the capacitor C11 is an output, an input-output gain G1 is described as follows;
G1=Vo11/V11=Z/(2R+Z) (4)
In
In the case that the voltage Vi superposed with any one of an alternating-current voltage component V21 of a battery module E21 and an alternating-current voltage component V22 of a battery module E22 is an input, and the voltage VC21 applied to a capacitor C21 is an output, the input-output gain G21 is described as follows;
G21=VC21/Vi=2Z/(2R+Z) (5)
The alternating-current voltage component V21 of the battery module E21 and the alternating-current voltage component V22 of the battery module E22 are equal. A point A is disposed between the battery module E21 and the battery module E22. Accordingly, an alternating-current voltage component Vo21 between a point 21 on the output side of a resistor R21 and a point 22 on the output side of a resistor R22 is equal to an alternating-current voltage component Vo22 between a point 23 on the output side of a resistor R23 and the point 22 on the output side of the resistor R22. The resistor R22 can be of an arbitrary resistance value.
Accordingly, the voltage VC21 applied to the capacitor C21 is evenly divided in two. When alternating-current voltage components Vo21 and Vo22 is an output respectively, an input-output gain G2 is described as follows;
G2=Vo21/Vi=Vo22/Vi=Z/(2R+Z) (6)
As equations (1) and (3) become equal, each of two filters, on which the alternating-current components are applied respectively, has an equivalent frequency response of the filter where one battery module is provided.
As shown in
According to this replacement, the output voltage VC21 is evenly divided in two. In this case that the voltage V021 applied to the capacitor C22 and the voltage V022 applied to the capacitor C23 are an output respectively, the input-output gain G2 is described as follows;
G2=Vo21/Vi=Vo2/Vi=Z/(2R+Z) (7)
Consequently, the equation (7) corresponds to the previous result.
Next, the case where three battery modules are provided will be described.
In
Alternating-current voltage components V31, V32, and V33 of battery modules E31, E32, and E33 are equal to the voltage Vi (V31=V32=V33=Vi).
In this time, alternating-current voltage component Vo31 between an output terminal P32 of a resistor R32 and an output terminal P31 of a resistor R31 is measured, and an alternating-current voltage component Vo32 between an output terminal P33 of a resistor R33 and the output terminal P32 of the resistor R32 as well as an alternating-current voltage component Vo33 between an output terminal P34 of a resistor R34 and the output terminal P33 of the resistor R33 are measured respectively.
For convenience sake, as shown in
Vo311=ViZ(3R+Z)/{(2R+Z)(4R+Z)} (8)
As shown in
As shown in
Vo313=ViRZ/{(2R+Z)(4R+Z)} (9)
When the alternating-current voltage components V31, V32 and V33 are equal to the voltage V1, the alternating-current voltage component Vo31 is described as follows;
Vo31=Vo311+Vo312+Vo313=ViZ/(2R+Z)
As the alternating-current voltage component Vo33 is equivalent to the alternating-current voltage component Vo31, the alternating-current voltage component Vo33 is described as follows;
Vo33=ViZ/(2R+Z)
A voltage VC32 applied to the capacitor C32 needs to be measured in order to determine the value of the alternating-current voltage component Vo32.
As described in the case where the alternating-current voltage component Vo is determined, assuming that each of the voltages V31, V32, and V33 is individually applied, a voltage is generated between the point 31 and the point 32, between the point 32 and the point 33, between the point 33 and the point 34 respectively. Furthermore, when the voltage generated between the point 32 and the point 34 is added, the voltage VC32 is described as follows;
Consequently, the alternating-current voltage component Vo32 is described as follows;
Vo32=VC32−Vo33=VC32−Vo31=ViZ/(2R+Z)
Accordingly, since the alternating-current voltage components Vo31, Vo32 and Vo33 are equal to equation (4), each of the filters in
According to
As explained that the frequency characteristics of the capacitors C21, C22, and C23 are equal with reference to
The capacitors C0, Ca, Cb, and Cd are equivalent to a circuit wherein a pair of capacitors connected in series are connected in parallel, and each of the capacitors has the equal capacitance value C0. Accordingly, the capacitors C0, Ca, Cb, and Cd are equivalent to a capacitor C33 having the capacitance C0. The capacitors Ce, Cf, Ch, and Ci are equivalent to a capacitor C32 having the capacitance value C0 (
Extensive explanation of the embodiment will be described with reference to
In
In
In
In
In other words, the battery modules E002 to E009 are connected to a series circuit in which the capacitors C206 and C207 are connected in series, and a series circuit in which the capacitors C208 and C209 are connected in series. A connecting point between the capacitors C206 and C207 is connected to a point between the battery modules E007 and E008 via a resistor R007. A connecting point between the capacitors C208 and C209 is connected to a connecting point between the battery modules E003 and E004 via a resistor R004.
Further, the battery modules E001 to E010 are connected to a series circuit in which the capacitors C210 and C211 are connected in series, and a series circuit in which the capacitors C212 and C211 are connected in series. A connecting point between the capacitor C210 and C213 is connected to a connecting point between the battery modules E006 and E007 via a resistor R006. A connecting point between the capacitors C212 and C213 is connected to a connecting point between the battery modules E004 and E005 via a resistor R005. As is the case with
In
Consequently, in
The battery modules E022 and E031 are connected via resistors R022 and R031 to a series circuit in which the capacitors C230 and C231 are connected in series, and a series circuit in which the capacitors C232 and C233 are connected in series. A connecting point between the capacitors C230 and C231 is connected via a resistor R028 to a connecting point between the battery modules E028 and E029. A connecting point between the capacitors C232 and C233 is connected via a resistor R025 to a connecting point between the battery modules E024 and E025.
The battery modules E021 and E032 are connected via resistors R021 and R032 to a series circuit in which the capacitors C236 and C237 are connected in series, and a series circuit in which the capacitors C236 and C237 are connected in series. A connecting point between the capacitors C234 and C235 is connected via a resistor R027 to a connecting point between the battery modules E027 and E028. A connecting point between the capacitors C236 and C237 is connected via a resistor R026 to a connecting point between the battery modules E025 and E026.
In
Alternating-current voltage components V41 to V44 of battery modules E41 to E44 are equal to the voltage Vi (V41=V42=V43=V44=Vi). As is the case with alternating-current voltage component Vo33, where the three battery modules are provided, alternating-current voltage components Vo41, Vo42, Vo43, and Vo44 are described as follows;
Vo41=ViZ/(2R+Z)
The alternating-current voltage component Vo44 is equivalent to the alternating-current voltage component Vo41. Accordingly, the alternating-current voltage component Vo44 is described as follows;
Vo44=ViZ/(2R+Z)
When the voltages Vi of the battery modules E42 and E43 are added, the sum is twice as much as the voltage V1. Accordingly, the sum is equal to the total voltage (Vo42+Vo43) of the alternating-current voltage components Vo42 and Vo43. Accordingly, the total voltage (Vo42+Vo43) is described as follows;
Vo42+Vo43=2ViZ/(2R+Z)
As the alternating-current voltage component Vo42 is equal to the alternating-current voltage component Vo43, the alternating-current voltage components Vo42 and Vo43 are described as follows;
Vo42=Vo43=ViZ/(2R+Z)
Accordingly, each of four filters, corresponding the alternating-current voltage components Vo41 to Vo44, has an equivalent frequency response of the filter where one battery module is provided. Since the resistance value of a resistor R43 does not affect the frequency response, the resistor R43 can be of an arbitrary resistance value.
In
As is the case where the three battery modules are provided, alternating-current voltage components Vo51, Vo52, Vo53, Vo54 and Vo55 are described as follows;
Vo51=ViZ/(2R+Z)
The alternating-current voltage component Vo55 is equivalent to the alternating-current voltage component Vo51. Accordingly, the alternating-current voltage component Vo55 is described as follows;
Vo55=ViZ/(2R+Z)
When the voltages Vi of the battery modules E52, E53, and E54 are added, the sum is three times as much as the voltage Vi. Accordingly, the sum is equal to the total voltage (Vo52+Vo53+Vo54) of the alternating-current voltage components Vo52, Vo53, and Vo54.
Accordingly, the total voltage (Vo52+Vo53+Vo54) is described as follows;
Vo52+Vo53+Vo54=3ViZ/(2R+Z)
A one-battery-module-type battery unit 50 which generates the alternating-current voltage component Vo53 is identical with a circuit which includes a set of the battery module equivalent to that of
Vo53=ViZ/(2R+Z)
Since the alternating-current voltage component Vo52 is equal to the alternating-current voltage component Vo54, the alternating-current voltage components Vo52 and Vo54 are respectively described as follows;
{3ViZ/(2R+Z)−Vo53}/2=Vo52=Vo54=ViZ/(2R+Z)
Accordingly, each of five filters, corresponding to alternating-current voltage components Vo51 to Vo55, has an equivalent frequency response of the filter where one battery module is provided.
Viewed from another angle, the circuit of
As previously described above, in
In
As is the case where the three battery modules are provided, alternating-current voltage components Vo61, Vo62, Vo63, Vo64, Vo65 and Vo66 are described as follows;
Vo61=ViZ/(2R+Z)
The alternating-current voltage component Vo66 is equivalent to the alternating-current voltage component Vo61. Accordingly, the alternating-current voltage component Vo66 is described as follows;
Vo66=ViZ/(2R+Z)
When the voltages Vi of the battery modules E62, E63, E64, and E66 are added, the sum is four times as much as the voltage Vi. Accordingly, the sum is equal to the total voltage (Vo62+Vo63+Vo64+Vo65) of the alternating-current voltage components Vo62, Vo63, Vo64, and Vo65.
Accordingly, the total voltage (Vo62+Vo63+Vo64+Vo65) is described as follows;
Vo62+Vo63+Vo64+Vo65=4ViZ/(2R+Z)
On the other hand, a two-battery-module-type battery unit 60 is identical with a circuit which includes two sets of the battery modules shown in
Vo63+Vo64=2ViZ/(2R+Z)
As the alternating-current voltage component Vo63 is equal to the alternating-current voltage component Vo64, the alternating-current voltage component Vo63 is described as follows;
Vo63=Vo64=ViZ/(2R+Z)
As the alternating-current voltage component Vo62 is equal to the alternating-current voltage component Vo65, the alternating-current voltage component Vo62 is described as follows;
{4ViZ/(2R+Z)−Vo63−Vo64}/2=Vo62=Vo65=ViZ/(2R+Z)
Accordingly, each of six filters, corresponding to the alternating-current voltage components Vo61 to Vo66, has an equivalent frequency response of the filter where one battery module is provided.
Viewed from another angle, the circuit of
As previously described, when the resistor R43 is replaced with the independent circuit including the battery module and two filters, the frequency response of the other filters is not influenced.
Since the resistance value of a resistor R43 does not affect the frequency response of the other filters, the resistor R43 can be of an arbitrary resistance value.
Next shows the case where seven battery modules are provided.
In
A three-battery-module-type battery unit 70 which generates the alternating-current voltage components Vo73, Vo74, and Vo75 is identical with a circuit which includes three sets of the battery modules shown in
Since the equation above is equal to the equation (1), each of seven filters in
Viewed from another angle, the circuit of
As previously described, when the resistor R43 is replaced with the independent circuit including the three battery modules and three filters, the frequency response of the other filters is not influenced.
Next shows the case where eight battery modules are provided.
The circuit of
As is the case where four sets of the battery modules are provided, alternating-current voltage components Vo81 to Vo88 can be determined as follows;
Each of eight filters in
In the case where nine battery modules or more are provided, one-battery-module-type battery unit 50 of
As described above, the embodiment of the present invention can reduce the difference in frequency response of the battery module whose voltage is detected. When there is no difference in output voltage waveform of each battery module, there is no difference in voltage waveform through a filter. Consequently, the embodiment of the present invention can prevent the battery modules from erroneously being determined as if it were in an irregular condition. When a photo MOS relay is provided, a sampling frequency of switching is forced to be low due to a long delay in switching. However, since the embodiment of the present invention can reduce the difference in frequency responses, the anti-aliasing filter can provide relatively a high cut-off frequency. The voltage detecting device for battery modules includes a flying capacitor wherein a pair of the switches Sw1 and Sw2m and a pair of the switches Swd1 and Swd2 are alternately opened and closed, so that the secondary battery and the differential amplifier are insulated with each other.
In
As shown in the circuit of the voltage detecting device of
Since the switches are relatively expensive, a voltage detecting circuit in which the number of the switches is reduced can be provided as shown in
As compared with
The case where one battery module is provided is exemplified so as to examine the frequency response of the anti-aliasing filter. Back to
In this circuit where direct-current electromotive force of the battery module E11 is 0 V, alternating-current electromotive force the battery module E11 is 1 V, the resistance value of the resistor R11 and R12 is 100Ω (ohm), and the capacitance of the capacitor C11 is 0.1 μF, the value of a measured voltage (output voltage) across the capacitor C11 corresponding to each alternating-current frequency is shown in the characteristic curve G of the anti-aliasing filter in
As is the case where one battery module is provided in
As is the case where one battery module is provided, direct-current electromotive force of battery modules E151 to E162 is 0 V, alternating-current electromotive force of the battery modules E151 to E162 is 1 V, resistance value of resistors R151 to R163 is 100Ω (ohm), and capacitance of capacitors C151 to C162 is 0.1 μF.
In this case,
As shown in the frequency characteristic curves of the lines A to F of
The embodiment shown in
The embodiments of the present invention is not limited, but can be modified as described below.
In the embodiments described above, the anti-aliasing filter is constituted of a low-pass filter having the resistor and the capacitor. However, the anti-aliasing filter can be constituted of the capacitor and a coil, instead of the resistor.
The resistor can be replaced with a capacitor and a plurality of switches which constitute a switched capacitor topology.
For example,
In this time, a pair of switches S1 and S4 and a pair of switches S2 and S3 are alternately opened and closed at a sampling time interval T, so that a charge Q of the capacitor C flows between the points A and B.
In the case where the capacitor is repeatedly charged and discharged, an electric potential of the point A is “Va” and an electric potential of the point B is “Vb”, and the capacitance of the capacitor C is “C0”, an average current Iav flown between the points A and B is described as follows;
Iav=Q/T=(C0/T)(Va−Vb)=(Va−Vb)/R
Accordingly, the switched capacitor circuit of
The switching circuits shown in
Number | Date | Country | Kind |
---|---|---|---|
2007-303915 | Nov 2007 | JP | national |
2007-303918 | Nov 2007 | JP | national |
2008-244594 | Sep 2008 | JP | national |