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EP 2 387 046 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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21.01.2015 Bulletin 2015/04 |
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Date of filing: 11.05.2010 |
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International Patent Classification (IPC):
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Power driver and fail safe circuit for a gas valve
Leitstungstreiber und ausfallsicherer Schaltkreis für ein Gasventil
Circuit d'attaque électrique et circuit sécurisé intégré pour soupape de gaz
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO SE SI SK SM TR |
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Date of publication of application: |
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16.11.2011 Bulletin 2011/46 |
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Proprietor: Honeywell Technologies Sarl |
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1180 Rolle (CH) |
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Inventor: |
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- Galeazzi, Daniele
20059 Vimercate (MB) (IT)
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Representative: Sturm, Christoph et al |
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Quermann - Sturm - Weilnau
Patentanwälte Partnerschaft mbB
Unter den Eichen 5 65195 Wiesbaden 65195 Wiesbaden (DE) |
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References cited: :
EP-A1- 1 868 214 US-A- 4 831 313 US-B1- 6 256 185
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US-A- 3 943 386 US-A1- 2005 218 838
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The invention relates to a power driver and fail safe circuit for a gas valve.
[0002] An electric or electronic power driver circuit for a gas valve is connected by input
contacts of the same to an electrical power source providing an electrical input power
to the power driver circuit. Further on, such a power driver circuit for a gas valve
is connected by output contacts of the same to a coil of the gas valve to be operated.
The power driver circuit for a gas valve is used to open or close the gas valve. The
power driver circuit opens or closes a gas valve in such a way that the gas valve
is opened when the coil of the gas valve being connected to output contacts of the
power driver circuit is energized with a defined electrical output power of the power
driver circuit. The gas valve is closed when said coil of the gas valve is not energized
with the defined electrical output power of the power driver circuit.
[0003] In order to provide a safe operation of the gas valve, it is necessary to ensure
that a gas valve becomes not opened by a failure of one or more components of the
power driver circuit. So, it is necessary to ensure that the power driver circuit
does not energize the coil of the gas valve with the defined electrical output power
in case of a failure of one or more components of the electric or electronic power
driver circuit. Such a power driver circuit providing fail safe functionality is called
power driver and fail safe circuit.
[0004] US 2005/0218838 A1 discloses a power driver circuit comprising: input contacts to which a power source
providing a defined DC input power level for the circuit is connectable; output contacts
to a which load is connectable; an inductance coil, a transistor and a resistor being
connected in such a way that a switch operated by a switch controller comprising the
transistor in connected in series between the inductance coil and the resistor; an
input capacitor being connected between the input contacts; an output capacitor being
connected between the output contacts; a diode being connected in series to the parallel
connection of the output capacitor and the coil of the gas valve, wherein the anode
of said diode is connected to said output capacitor and to one of the output contacts,
and wherein the cathode of said diode is connected to the inductance coil and to one
of the input contacts; a micro controller; and a peak current detector.
[0006] Against this background, a novel power driver and fail safe circuit for a gas valve
is provided.
[0007] The power driver and fail safe circuit according to the present invention is defined
in claim 1.
[0008] The novel electric or electronic power driver and fail safe circuit ensures that
a gas valve becomes not opened by a failure of one or more components of the power
driver and fail safe circuit. The power driver and fail safe circuit does not need
an extra electrical power. The novel electric or electronic power driver and fail
safe circuit has a low power consumption. The power driver and fail safe circuit provides
a defined DC output power level being fully controlled by the power driver and fail
safe circuit and being independent from the impedance of the coil of the gas valve.
[0009] Preferred developments of the invention are provided by the dependent claims and
the description which follows. Exemplary embodiments are explained in more detail
on the basis of the drawing, in which:
- Figure 1
- shows a power driver and fail safe circuit for a gas valve according to a first embodiment;
- Figure 2
- shows a power driver and fail safe circuit for a gas valve according to a second embodiment;
- Figure 3
- shows a power driver and fail safe circuit for a gas valve according to a third embodiment;
and
- Figure 4
- shows a power driver and fail safe circuit for a gas valve according to a fourth embodiment.
[0010] The invention relates to an electric or electronic power driver and fail safe circuit
for a gas valve. Such a power driver and fail safe circuit is connected to an electrical
power source providing an electrical input power to the power driver and fail safe
circuit. Further on, such a power driver and fail safe circuit is connected by to
a coil of a gas valve to be operated.
[0011] The power driver and fail safe circuit for a gas valve is used to open or close the
gas valve. The power driver circuit and fail safe opens or closes the gas valve in
such a way that the gas valve is opened when the coil of the gas valve being connected
to output contacts of the power driver and fail safe circuit is energized with a defined
electrical output power of the power driver and fail safe circuit. The gas valve is
closed when said coil of the gas valve is not energized with the defined electrical
output power of the power driver and fail safe circuit.
[0012] Figure 1 shows a fist preferred embodiment of a power driver and fail safe circuit
10 for a gas valve. The power driver and fail safe circuit 10 has input contacts 11,
12 to which a power source (not shown) is connected.
[0013] The power source provides a DC input power V
IN with a defined DC input power level to the power driver and fail safe circuit 10.
The input contact 11 corresponds to positive input contact and the input contact 12
corresponds to the negative input contact which is also often called ground contact.
The power driver and fail safe circuit 10 has further output contacts 13, 14 to which
a coil 15 of a gas valve is connected. The gas valve is opened when said coil 15 being
connected to output contacts 13, 14 of the power driver and fail safe circuit 10 is
energized with a DC output power V
OUT having a defined DC output power level. The gas valve is closed when said coil 15
is not energized with the defined DC output power level of the circuit 10.
[0014] The defined DC output power level V
OUT provided by the circuit 10 is fully controlled by the same and is independent from
the impedance of the coil 15 of the gas valve.
[0015] The power driver and fail safe circuit 10 comprises an inductance coil 16, a transistor
17 and a resistor 18 being connected in series to each other. These elements 16, 17
and 18 are connected in series in such a way that said inductance coil 16 is connected
to the drain 19 of the transistor 17 and that said resistor 18 is connected to the
source 20 of the transistor 17.
[0016] As shown in the preferred embodiment of figure 1, a first contact 21 of said inductance
coil 16 is connected to the first input contact 11 of the power driver and fail safe
circuit 10, preferably through a fuse 22 and a diode 23. A second contact 24 of said
inductance coil 16 is connected to the drain 19 of the transistor 17.
[0017] A first contact 25 of the resistor 18 is connected to the source 20 of the transistor
17. A second contact 26 of the resistor 18 is connected to a second input contact
12 of the power driver and fail safe circuit 10 and thereby to input contact or ground
contact.
[0018] The power driver and fail safe circuit 10 further comprises an input capacitor 27
being connected in parallel to the series connection of said inductance coil 16, said
transistor 17 and said resistor 18. As shown in figure 1, the input capacitor 27 is
connected to the first contact 21 of said inductance coil 16 and to the second contact
26 of the resistor 18.
[0019] The power driver and fail safe circuit 10 further comprises an output capacitor 28
being connected between the output contacts 13, 14 of the power driver and fail safe
circuit 10 and thereby in parallel to the coil 15 of the gas valve. The power driver
and fail safe circuit 10 further comprises a diode 29, being connected in series to
the parallel connection of the output capacitor 28 and the coil 15 of the gas valve.
Said series connection is connected in parallel to said inductance coil 16.
[0020] The power driver and fail safe circuit 10 further comprises a micro controller 30
and a peak current detector 31 both being connected to the gate 32 of said transistor
17. The micro controller 30 is connected to the gate 32 of the transistor 17 trough
a capacitor 33 and provides a dynamic, alternating signal to the gate 32. This signal
provided by the transistor 17 depends on a reference DC voltage V
REF.
[0021] The peak current detector 31 is connected with an output contact 34 to the gate 32
of said transistor 17, with a first input contact 35 to the source 20 of said transistor
17 and thereby to the first contact 25 of the resistor 18 and with a second input
contact 36 to the input contact or ground contact. The peak current detector 31 provides
a dynamic signal to the gate 32 of the transistor 17 depending on the current flow
through the resistor 18.
[0022] The transistor 17 can be turned on into a current conducting mode by the signal provided
by the micro controller 30. The transistor 17 can be turned off into the current blocking
mode by a signal provided by the peak current detector 31.
[0023] When the transistor 17 is turned on into the current conducting mode said inductance
coil 16 becomes charged and the current across said resistor 18 being connected to
the source 20 of the transistor 17 reaches its peak. When the transistor 17 is turned
off into the current blocking mode the inductance coil 16 becomes discharged through
the diode 29 thereby charging the output capacitor 28. Between these two modes the
transistor 17 memorizes the state in its gate source capacitance.
[0024] As shown in the preferred embodiment of figure 1, the anode 37 of the diode 29 is
connected to the second contact 24 of said inductance coil 16 and to the drain 19
of the transistor 17. The cathode 38 of said diode 29 is connected to the output capacitor
28 and to a first output contact 13 of the power driver and fail safe circuit 10.
[0025] Said fuse 22 and the diode 23 being connected between the first contact 21 of said
inductance coil 16 and the first input contact 11 of the power driver and fail safe
circuit 10 are connected in series to each other, namely in such a way that the anode
39 of said diode 23 is connected to first input contact 11 of the power driver and
fail safe circuit 10 and that the cathode 40 of said diode 23 is connected to the
fuse 22.
[0026] The transistor 17 is preferably a MOSFET transistor. Most preferably the transistor
17 is a n-channel enhancement mode MOSFET transistor being normally turned off into
the current blocking mode.
[0027] The power driver and fail safe circuit 10 works with a cycle to charge and discharge
the inductance coil 16. The signal provided by the micro controller 30 is preferably
a signal of type on/off with a defined frequency fixed duty cycle. The power driver
and fail safe circuit 10 normally works for a defined time period which depends on
the defined frequency, and for the next defined time period it is off. It should be
noted that the system could in general work also continuously, whereby in this case
the defined off time period would then be zero.
[0028] The micro controller 30 connects quickly capacitor 33 at the positive voltage. The
gate-source capacitor of the transistor 17 being an intrinsic component inside the
transistor 17 is charging and, by a capacitive partition with capacitor 33, transistor
17 conducts. The transistor 17 conducts till the current over inductance coil 16 or
resistor 18 grows up to a maximum value. The peak of the current in the inductance
coil 16 or resistor 18 is detected and positive feedback is activated by the peak
current detector 31 thereby turning off the transistor 17. The output of the peak
current detector 31 switches off the transistor 17, it resets to zero the charge of
the capacitor gate-source of transistor 17 and of the capacitor 33. The capacitor
33 is discharged. The energy of inductance coil 16 is recovered by the diode 29 and
the output capacitor 28. The diode 29 turns on when transistor 17 turns off, so output
capacitor 28 is charging.
[0029] The power driver and fail safe circuit 10 can not provide any output voltage VOUT
to open the gas valve when one component fails. The path to connect the coil 15 of
the gas valve to the input voltage V
IN passes through the diode 29 and transistor 17. The diode 29 and the transistor 17
are able to withstand their failure. A failure of the transistor 17 can not damage
the diode 29 and vice versa. If the transistor 17 would fail, the transistor 17 would
be is in short. In case of the failure of the transistor 17 the power driver and fail
safe circuit 10 can detect the failure because the coil 15 of gas valve can not be
energized.
[0030] In this case the current would flow from the input power source to the diode 23,
to the fuse 22, to the inductance coil 16, to the transistor 17 and than to the resistor
18.
[0031] The Fuse 22 works detecting the failure, because current is limited by the impedance
but exceeds the fuse rating. Inductance coil 16 is able to withstand the current that
breaks the fuse 22. This failure mode shut off the board in safety mode.
[0032] Further on, under the hypothesis that the inductance coil 16 would break down in
an open circuit, the power driver and fail safe circuit 10 can also not provide any
output voltage V
OUT to the coil 15 to open the gas valve.
[0033] Figure 2 shows a second preferred embodiment of a power driver and fail safe circuit
10' having compared to power driver and fail safe circuit 10 according to figure 1
the difference that the input capacitor 27 is connected with a first contact between
said fuse 22 and said diode 23 and with a second contact to ground so that the input
capacitor 27 is connected in parallel to the fuse 22.
[0034] In figure 1 the input capacitor 27 is connected with a first contact between said
fuse 22 and said inductance coil 16 and with a second contact to ground so that the
input capacitor 27 is connected in series to the fuse 22. However, the failure detection
functionality remains the same.
[0035] Figure 3 shows a third preferred embodiment of a power driver and fail safe circuit
10" having compared to power driver and fail safe circuit 10 according to figure 1
as additional component a diode 41. Said diode 41 is connected in parallel to said
output capacitor 28, whereby the cathode 42 of said diode 41 is connected to the cathode
38 of the diode 29 and whereby the anode 43 of said diode 41 is connected to the first
contact 21 of said inductance coil 16.
[0036] In case the diode 29 would fail in short circuits, the electrical current would flow
from the input power source to the diode 23, to the fuse 22, to the diode 42, to the
diode 29, to the transistor 17 and than to the resistor.
[0037] The fuse 22 would work detecting the failure, because current is limited by the impedance
of devices but exceeds the fuse rating. Diode 41 is able to withstand the current
that breaks the fuse 22. This failure mode shut off the power driver and fail safe
circuit 10 in safety mode.
[0038] Figure 4 shows a fourth preferred embodiment of a power driver and fail safe circuit
10"' having compared to power driver and fail safe circuit 10" according to figure
3 as additional components the diodes 44 and preferably the diodes 47 and 48. This
provides redundancy and a higher reliability of the power driver and fail safe circuit.
The diodes 41, 44 are connected in parallel with the coil 15 of the gas valve. The
diode 44 is connected in parallel to said output capacitor 28 and said diode 41, whereby
the cathode 45 of the diode 44 is connected to the cathode 42 of the diode 41 and
whereby the anode 46 of the diode 44 is connected to the anode 43 of the diode 41.
The diodes 47 and 48 are connected in series to diode 29, namely in such a way that
anode of the diode 47 is connected to the cathode of the diode 29, that the anode
of the diode 48 is connected to the cathode of the diode 47 and that the cathode of
the diode 48 is connected to the first output contact 13.
[0039] In connection with the embodiments of figures 3 and 4 it is possible to use the connection
scheme for the input capacitor 27 as shown in figure 2.
[0040] The power driver and fail safe circuits 10, 10' and 10" are all using a transistor
17 working like a switching operator. The transistor 17 is driven by two commands,
one to turn on the transistor 17 and the other to turn off transistor 17. The signal
to turn on the transistor 17 is generated by the micro controller 30 and the signal
to turn off the transistor 17 is provided by the peak current detector 31. Between
the two events the transistor 17 memorizes the state in its gate source capacitance.
[0041] In the power driver and fail safe circuits 10, 10' and 10", the control of the power
can be done electronically by the control of the energy stored into the inductance
coil 16. Current in the inductance coil 16 starts from zero, then the power driver
and fail safe circuits 10, 10' and 10"controls the peak of the current and fixes carefully
its maximum value. A constant flux of energy is assured by repeating the cycle at
a constant frequency.
List of reference signs
[0042]
- 10, 10', 10", 10"'
- power driver and fail safe circuit
- 11
- input contact
- 12
- input contact
- 13
- output contact
- 14
- output contact
- 15
- coil / gas valve
- 16
- inductance coil
- 17
- transistor
- 18
- resistor
- 19
- drain of transistor
- 20
- source of transistor
- 21
- first contact of inductance coil
- 22
- fuse
- 23
- diode
- 24
- second contact of inductance coil
- 25
- first contact of resistor
- 26
- second contact of resistor
- 27
- input capacitor
- 28
- output capacitor
- 29
- diode
- 30
- micro controller
- 31
- peak current detector
- 32
- gate of transistor
- 33
- capacitor
- 34
- output contact of peak current detector
- 35
- input contact of peak current detector
- 36
- input contact of peak current detector
- 37
- anode
- 38
- cathode
- 39
- anode
- 40
- cathode
- 41
- diode
- 42
- cathode
- 43
- anode
- 44
- diode
- 45
- cathode
- 46
- anode
- 47
- diode
- 48
- diode
1. Power driver and fail safe circuit (10, 10', 10", 10"') for a gas valve in order to
open or close the gas valve in such a way that the gas valve is opened when a coil
(15) of the gas valve being connectable to output contacts (13, 14) of the power driver
and fail safe circuit (10, 10', 10", 10"') is energized with a defined, fully controlled
DC output power level of the power driver and fail safe circuit and that the gas valve
is closed when said coil (15) of the gas valve is not energized with the defined DC
output power level of the power driver and fail safe circuit, comprising:
input contacts (11, 12) to which a power source providing a defined DC input power
level for the circuit is connectable;
an inductance coil (16), a transistor (17) and a resistor (18) being connected in
series to each other in such a way that said inductance coil (16) is connected to
the drain (19) of the transistor (17) and that said resistor (18) is connected to
the source (20) of the transistor (17);
an input capacitor (27) being connected in parallel to the series connection of said
inductance coil (16), said transistor (17) and said resistor (18);
an output capacitor (28) being connected between the output contacts (13, 14) to which
the coil (15) of the gas valve being connectable;
a first diode (29) being connected in series to the parallel connection of the output
capacitor (28) and the coil (15) of the gas valve; wherein said series connection
is connected in parallel to said inductance coil (16), wherein the anode (37) of said
first diode (29) is connected to said inductance coil (16) and to the drain (19) of
the transistor (17), and the cathode (38) of said first diode (29) is connected to
the output capacitor (28) and to a first output contact (13);
a micro controller (30) and a peak current detector (31) both being connected to the
gate (32) of said transistor (17) so that the transistor (17) can be turned on into
a current conducting mode by a signal provided by the micro controller (30) and that
the transistor (17) can be turned off into a current blocking mode by a signal provided
by the peak current detector (31);
a fuse (22) connected to said inductance coil (16), wherein a second diode (23) is
connected in series to that fuse (22), whereby the anode (39) of said diode (23) is
connected to first input contact (11), and whereby the cathode (40) of said diode
(23) is connected to the fuse (22).
2. Power driver and fail safe circuit as claimed in claim 1, characterized in that when the transistor (17) is turned on into the current conducting mode said inductance
coil (16) becomes charged and the current across said resistor (18) being connected
to the source (20) of the transistor (17) reaches its peak.
3. Power driver and fail safe circuit as claimed in claim 1 or 2, characterized in that when the transistor (17) is turned off into the current blocking mode the inductance
coil (16) becomes discharged through the first diode (29) thereby charging the output
capacitor (28).
4. Power driver and fail safe circuit as claimed in one of claims 1 to 3, characterized in that said transistor (17) is a MOSFET transistor.
5. Power driver and fail safe circuit as claimed in claim 4, characterized in that the MOSFET transistor is a n-channel MOSFET transistor being normally turned off
into the current blocking mode.
6. Power driver and fail safe circuit as claimed in one of claims 1 to 5, characterized in that the peak current detector (31) is connected with an output contact (34) to the gate
(32) of said transistor (17), with a first input contact (35) to the source (20) of
said transistor (17) and to a contact (25) of the resistor (18), and with a second
input contact (36) to the other contact (26) of the resistor (18) and to ground.
7. Power driver and fail safe circuit as claimed in one of claims 1 to 6, characterized in that the input capacitor (27) is connected with a first contact between said fuse (22)
and said inductance coil (16) and with a second contact to ground so that the input
capacitor (27) is connected in series to the fuse (22).
8. Power driver and fail safe circuit as claimed in one of claims 1-6, characterized in that the input capacitor (27) is connected with a first contact between said fuse (22)
and said diode (23) and with a second contact to ground so that the input capacitor
(27) is connected in parallel to the fuse (22).
9. Power driver and fail safe circuit as claimed in one of claims 1 to 8, characterized in that a third diode (41) is connected in parallel to said output capacitor (28), whereby
the cathode (42) of said third diode (41) is connected to the cathode (38) of the
first diode (29) and whereby the anode (43) of said third diode (41) is connected
to said inductance coil (16).
10. Power driver and fail safe circuit as claimed in claim 9, characterized in that a fourth diode (44) is connected in parallel to said output capacitor (28) and said
third diode (41), whereby the cathode (45) of said fourth diode (44) is connected
to the cathode (42) of the third diode (41) and whereby the anode (46) of said fourth
diode (44) is connected to the anode (43) of the third diode (41).
11. Power driver and fail safe circuit as claimed in one of claims 1 to 10, characterized by a fifth diode (47) and a sixth diode (48) being connected in series to the first
diode (29), namely in such a way that the anode of the fifth diode (47) is connected
to the cathode of the first diode (29), that the anode of the sixth diode (48) is
connected to the cathode of the fifth diode (47) and that the cathode of the sixth
diode (48) is connected to a first output contact (13).
1. Leistungstreiber- und Fail-Safe-Schaltung (10, 10', 10", 10"') für ein Gasventil,
um das Gasventil derart zu öffnen oder zu schließen, dass das Gasventil geöffnet wird,
wenn eine mit den Ausgangskontakten (13, 14) der Leistungstreiber- und Fail-Safe-Schaltung
(10, 10', 10", 10"') verbindbare Spule (15) des Gasventils mit einem definierten,
vollständig gesteuerten Gleichstromausgangsleistungspegel der Leistungstreiber- und
Fail-Safe-Schaltung bestromt wird, und dass das Gasventil geschlossen wird, wenn die
Spule (15) des Gasventils nicht mit dem definierten Gleichstromausgangsleistungspegel
der Leistungstreiber- und Fail-Safe-Schaltung bestromt wird, umfassend:
Eingangskontakte (11,12), mit denen eine einen definierten Gleichstromeingangsleistungspegel
für die Schaltung bereitstellende Stromquelle verbindbar ist;
eine Induktionsspule (16), einen Transistor (17) und einen Widerstand (18), die derart
miteinander in Reihe geschaltet sind, dass die Induktionsspule (16) mit dem Drainanschluss
(19) des Transistors (17) und dass der Widerstand (18) mit dem Sourceanschluss (20)
des Transistors (17) verbunden ist;
einen Eingangskondensator (27), der mit der Reihenschaltung aus der Induktionsspule
(16), dem Transistor (17) und dem Widerstand (18) parallelgeschaltet ist;
einen Ausgangskondensator (28), der zwischen die Ausgangskontakte (13, 14) geschaltet
ist, an die die Spule (15) des Gasventils anschließbar ist;
eine erste Diode (29), die in Reihe mit der Parallelschaltung des Ausgangskondensators
(28) und der Spule (15) des Gasventils geschaltet ist; wobei die Reihenschaltung parallel
zu der Induktionsspule (16) geschaltet ist, wobei die Anode (37) der ersten Diode
(29) mit der Induktionsspule (16) und dem Drainanschluss (19) des Transistors (17)
verbunden ist und die Kathode (38) der ersten Diode (29) mit dem Ausgangskondensator
(28) und einem ersten Ausgangskontakt (13) verbunden ist;
einen Mikrocontroller (30) und einen Spitzenstromdetektor (31), die beide derart mit
dem Gateanschluss (32) des Transistors (17) verbunden sind, dass der Transistor (17)
durch ein von dem Mikrocontroller (30) bereitgestellten Signal in einen stromleitenden
Modus eingeschaltet werden kann und dass der Transistor (17) durch ein von dem Spitzenstromdetektor
(31) bereitgestelltes Signal in einen stromsperrenden Modus ausgeschaltet werden kann;
eine Sicherung (22), die mit der Induktionsspule (16) verbunden ist, wobei eine zweite
Diode (23) mit der Sicherung (22) in Reihe geschaltet ist, wobei die Anode (39) dieser
Diode (23) mit einem ersten Eingangskontakt (11) verbunden ist und wobei die Kathode
(40) dieser Diode (23) mit der Sicherung (22) verbunden ist.
2. Leistungstreiber- und Fail-Safe-Schaltung nach Anspruch 1, dadurch gekennzeichnet, dass, wenn der Transistor (17) in den stromleitenden Modus eingeschaltet wird, die Induktionsspule
(16) geladen wird und der Strom durch den Widerstand (18), der mit dem Sourceanschluss
(20) des Transistors (17) verbunden wird, seine Spitze erreicht.
3. Leistungstreiber- und Fail-Safe-Schaltung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass, wenn der Transistor (17) in den stromsperrenden Modus ausgeschaltet wird, die Induktionsspule
(16) über die erste Diode (29) entladen wird, wodurch der Ausgangskondensator (28)
geladen wird.
4. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, dass der Transistor (17) ein MOSFET-Transistor ist.
5. Leistungstreiber- und Fail-Safe-Schaltung nach Anspruch 4, dadurch gekennzeichnet, dass der MOSFET-Transistor ein n-Kanal-MOSFET-Transistor ist, der im Stromsperrmodus normalerweise
ausgeschaltet ist.
6. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, dass der Spitzenstromdetektor (31) mit einem Ausgangskontakt (34) mit dem Gateanschluss
(32) des Transistors (17), mit einem ersten Eingangskontakt (35) mit dem Sourceanschluss
(20) des Transistors (17) und mit einem Kontakt (25) des Widerstands (18) und mit
einem zweiten Eingangskontakt (36) mit dem anderen Kontakt (26) des Widerstands (18)
und mit Masse verbunden ist.
7. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 6, dadurch gekennzeichnet, dass der Eingangskondensator (27) mit einem ersten Kontakt zwischen der Sicherung (22)
und der Induktionsspule (16) und mit einem zweiten Kontakt mit Masse verbunden ist,
so dass der Eingangskondensator (27) mit der Sicherung (22) in Reihe geschaltet ist.
8. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 6, dadurch gekennzeichnet, dass der Eingangskondensator (27) mit einem ersten Kontakt zwischen der Sicherung (22)
und der Diode (23) und mit einem zweiten Kontakt mit Masse verbunden ist, so dass
der Eingangskondensator (27) parallel zur Sicherung (22) geschaltet ist.
9. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 8, dadurch gekennzeichnet, dass eine dritte Diode (41) parallel zu dem Ausgangskondensator (28) geschaltet ist, wodurch
die Kathode (42) der dritten Diode (41) mit der Kathode (38) der ersten Diode (29)
verbunden ist und wodurch die Anode (43) der dritten Diode (41) mit der Induktionsspule
(16) verbunden ist.
10. Leistungstreiber- und Fail-Safe-Schaltung nach Anspruch 9, dadurch gekennzeichnet, dass eine vierte Diode (44) parallel zum Ausgangskondensator (28) und zur dritten Diode
(41) geschaltet ist, wodurch die Kathode (45) der vierten Diode (44) mit der Kathode
(42) der dritten Diode (41) verbunden ist und wodurch die Anode (46) der vierten Diode
(44) mit der Anode (43) der dritten Diode (41) verbunden ist.
11. Leistungstreiber- und Fail-Safe-Schaltung nach einem der Ansprüche 1 bis 10, dadurch gekennzeichnet, dass eine fünfte Diode (47) und eine sechste Diode (48) in Reihe mit der ersten Diode
(29) geschaltet sind, nämlich derart, dass die Anode der fünften Diode (47) mit der
Kathode der ersten Diode (29) verbunden ist, dass die Anode der sechsten Diode (48)
mit der Kathode der fünften Diode (47) und dass die Kathode der sechsten Diode (48)
mit einem ersten Ausgangskontakt (13) verbunden ist.
1. Circuit d'entraînement de puissance à sûreté intégrée (10, 10', 10", 10"') pour une
soupape de gaz permettant d'ouvrir ou de fermer la soupape de gaz de manière à ce
que la soupape de gaz s'ouvre lorsqu'une bobine (15) de la soupape de gaz connectable
à des contacts de sortie (13, 14) du circuit d'entraînement de puissance à sûreté
intégrée (10, 10', 10", 10"') est excitée par un niveau de puissance de sortie en
courant continu défini totalement commandé du circuit d'entraînement de puissance
à sûreté intégrée, et à ce que la soupape de gaz se ferme lorsque ladite bobine (15)
de la soupape de gaz n'est pas excitée par le niveau de puissance de sortie en courant
continu défini du circuit d'entraînement de puissance à sûreté intégrée, comprenant
:
des contacts d'entrée (11, 12) auxquels une source d'énergie fournissant un niveau
de puissance d'entrée en courant continu défini pour le circuit est connectable ;
une bobine d'inductance (16), un transistor (17) et une résistance (18) connectés
en série les uns avec les autres de manière à ce que ladite bobine d'inductance (16)
soit connectée au drain (19) du transistor (17) et à ce que ladite résistance (18)
soit connectée à la source (20) du transistor (17) ;
un condensateur d'entrée (27) connecté en parallèle avec la connexion en série de
ladite bobine d'inductance (16), dudit transistor (17) et de ladite résistance (18)
;
un condensateur de sortie (28) connecté entre les contacts de sortie (13, 14) auxquels
la bobine (15) de la soupape de gaz est connectable ;
une première diode (29) connectée en série avec la connexion en parallèle du condensateur
de sortie (28) et de la diode (15) de la soupape de gaz ; ladite connexion en série
étant connectée en parallèle avec ladite bobine d'inductance (16), l'anode (37) de
ladite première diode (29) étant connectée à ladite bobine d'inductance (16) et au
drain (19) du transistor (17), et la cathode (38) de ladite première diode (29) étant
connectée au condensateur du sortie (28) et à un premier contact de sortie (13) ;
un microcontrôleur (30) et un détecteur de courant de crête (31) tous deux connectés
à la grille (32) dudit transistor (17) de manière à ce que le transistor (17) soit
déblocable dans un mode de conduction du courant par un signal fourni par le microcontrôleur
(30) et à ce que le transistor (17) soit blocable dans un mode de blocage du courant
par un signal fourni par le détecteur de courant de crête (31) ;
un fusible (22) connecté à ladite bobine d'inductance (16), une deuxième diode (23)
étant connectée en série avec ce fusible (22) de sorte que l'anode (39) de ladite
diode (23) soit connectée au premier contact d'entrée (11) et que la cathode (40)
de ladite diode (22) soit connectée au fusible (22).
2. Circuit d'entraînement de puissance à sûreté intégrée selon la revendication 1, caractérisé en ce que, lorsque le transistor (17) est débloqué dans le mode de conduction du courant, ladite
bobine d'inductance (16) se charge et le courant traversant ladite résistance (18)
connectée à la source (20) du transistor (17) atteint sa valeur de crête.
3. Circuit d'entraînement de puissance à sûreté intégrée selon la revendication 1 ou
2, caractérisé en ce que, lorsque le transistor (17) est bloqué dans le mode de blocage du courant, la bobine
d'inductance (16) se décharge à travers la première diode (29) en chargeant ainsi
le condensateur de sortie (28).
4. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 3, caractérisé en ce que ledit transistor (17) est un transistor MOSFET.
5. Circuit d'entraînement de puissance à sûreté intégrée selon la revendication 4, caractérisé en ce que le transistor MOSFET est un transistor MOSFET à canal N normalement bloqué dans le
mode de blocage du courant.
6. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 5, caractérisé en ce que le détecteur de courant de crête (31) est connecté, avec un contact de sortie (34),
à la grille (32) dudit transistor (17), avec un premier contact d'entrée (35), à la
source (20) dudit transistor (17) et à un contact (25) de la résistance (18) et, avec
un deuxième contact d'entrée (36), à l'autre contact (26) de la résistance (18) et
à la terre.
7. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 6, caractérisé en ce que le condensateur d'entrée (27) est connecté, par un premier contact, entre ledit fusible
(22) et ladite bobine d'inductance (16) et, par un deuxième contact, à la terre de
sorte que le condensateur d'entrée (27) soit connecté en série avec le fusible (22).
8. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 6, caractérisé en ce que le condensateur d'entrée (27) est connecté, par un premier contact, entre ledit fusible
(22) et ladite diode (23) et, par un deuxième contact, à la terre de sorte que le
condensateur d'entrée (27) soit connecté en parallèle avec le fusible (22).
9. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 8, caractérisé en ce qu'une troisième diode (41) est connectée en parallèle avec ledit condensateur de sortie
(28), de sorte que la cathode (42) de ladite troisième diode (41) soit connectée à
la cathode (38) de la première diode (29) et que l'anode (43) de ladite troisième
diode (41) soit connectée à ladite bobine d'inductance (16).
10. Circuit d'entraînement de puissance à sûreté intégrée selon la revendication 9, caractérisé en ce qu'une quatrième diode (44) est connectée en parallèle avec ledit condensateur de sortie
(28) et ladite troisième diode (41), de sorte que la cathode (45) de ladite quatrième
diode (44) soit connectée à la cathode (42) de la troisième diode (41) et que l'anode
(46) de ladite quatrième diode (44) soit connectée à l'anode (43) de la troisième
diode (41).
11. Circuit d'entraînement de puissance à sûreté intégrée selon l'une des revendications
1 à 10, caractérisé par une cinquième diode (47) et une sixième diode (48) connectées en série avec la première
diode (29), plus précisément de manière à ce que l'anode de ladite cinquième diode
(47) soit connectée à la cathode de la première diode (29), à ce que l'anode de la
sixième diode (48) soit connectée à la cathode de la cinquième diode (47) et à ce
que la cathode de la sixième diode (48) soit connectée à un premier contact de sortie
(13).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description