BACKGROUND TO THE INVENTION
[0001] The present invention relates generally to a system and method for protecting a coil
structure used in a controlled switch. More specifically, the present invention relates
to a system for protecting a coil structure that provides a switching force used to
actuate one or more load switches. The coil structure generates the switching force
in response to a sizable current. However, continual application of the current at
the same level to the coil structure can cause damage to the coil.
[0002] GB 272 012 A discloses a switch circuit according to the preamble of claim 1. This document further
discloses a method of operating a switch circuit comprising a coil structure (1) configured
to actuate at least one load switch (4) and at least one auxiliary switch (2, 3) in
response to a control input, the coil structure comprising (1) a main coil (1) and
a component coil (extending from b to a), the component coil being a portion of the
main coil extending from a first end (b) of the main coil to a tap (a) of the main
coil, the coil structure being switchable between an actuating configuration (see
page 2, lines 100-107 and the figure) for actuating the at least one load switch and
the at least one auxiliary switch from a default position, and a holding configuration
(see from page 2, line 107 to page 3, line 6) for holding the at least one load switch
(4) and the at least one auxiliary switch (2, 3) in a switched position, the method
comprising:providing a switching current to the coil structure;generating, in response
to the switching current, a force for switching the at least one load switch and the
at least one auxiliary switch.
SUMMARY OF THE INVENTION
[0003] Systems and methods are described for protecting a coil structure in a controlled
switch. In many embodiments, the coil structure includes a switching configuration
and a hold configuration. A substantial current can be provided to the coil structure
in the switching configuration while a smaller current can be provided in the hold
configuration. To protect against damage to the coil structure in the switching configuration
caused by the substantial current, a resettable current limiting device can used to
substantially limit current when the current exceeds a threshold over a predetermined
period of time.
[0004] The invention relates to a switch circuit according to claim 1.
[0005] A prefered embodiment of the invention relates to a switch circuit for actuating
one or more load switches and at least an auxiliary switch, each of the one or more
load switches and the auxiliary switches having a default position and a switched
position, where the default position of the auxiliary switch is closed, the switch
circuit including a main coil configured to receive a current from a control power
source and to provide a force for holding the one or more load switches and the auxiliary
switch in the switched position, where the main coil comprises a first end, a second
end and a tap, a resettable current limiting device connected to the first end of
the main coil and to the auxiliary switch, the resettable device configured to limit
current flow when the current exceeds a threshold for a predetermined period of time,
and a component coil comprising a portion of the main coil from the second end to
the tap of the main coil, where the tap is connected to the auxiliary switch, and
where the component coil is configured to provide a force for actuating the one or
more load switches and the auxiliary switch from the default position.
[0006] A development of this switch circuit may further comprise a power source connected
to the one or more load switches, which are connected to a load.
[0007] In another development of the switch circuit, the resettable device may be configured
to substantially limit current flow when the current exceeds the threshold for a predetermined
period of time, and/or may be configured to allow current to flow with minimal resistance
when the current is below the threshold for a predetermined period of time.
[0008] In still another development of the switch circuit, a resistance of the resettable
device may increase at least an order of magnitude when the current exceeds a threshold
for a predetermined period of time.
[0009] Furthermore, the resettable device in the switch circuit may be a thermistor or a
positive temperature coefficient device.
[0010] Furthermore, the invention relates to a method according to claim 11.
[0011] In a development of this method the switch circuit may further comprise a control
power source configured to supply current to the coil structure, wherein the at least
one load switch is connected between a power source and a load.
[0012] Moreover, the control power source and the power source may be aircraft electrical
power sources, the load being an aircraft electrical load.
[0013] The limiting the switching current flowing through the coil structure using the resettable
current limiting device when the switching current exceeds the current threshold for
a predetermined period of time, in the above method, may comprise substantially limiting
the switching current flowing through the coil structure in the actuating configuration
using the resettable current limiting device when the switching current exceeds the
threshold for a predetermined period of time.
[0014] Furthermore, the limiting the switching current flowing through the coil structure
using the resettable current limiting device when the switching current exceeds the
current threshold for a predetermined period of time, in the above method, may be
performed by the resettable current limiting device, with the resistance of resettable
device increasing at least an order of magnitude when the switching current exceeds
the threshold for a predetermined period of time.
[0015] Also, a development of the above method may further comprise allowing the switching
current to flow with minimal resistance when the switching current is below the current
threshold.
[0016] In another development of said method, the switching current supplied by the control
input may actuate the at least one load switch and the at least one auxiliary switch
from the default position; in this development, a holding current supplied by the
control input may hold the at least one load switch and the at least one auxiliary
switch in the switched position, and the switching current may be greater than the
holding current.
[0017] In the above method, furthermore, the default position of the at least one auxiliary
switch may be closed, while the default position of the at least one load switch is,
in one variant, open, or in another variant, closed.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
FIG. 1 is a schematic block diagram of a power control system in accordance with an
embodiment of the present invention.
FIG. 2 is a schematic diagram of a power control system including a controlled switch
with a current limiting device in accordance with an embodiment of the present invention.
FIG. 3 is a schematic diagram of a power control system including a controlled switch
having normally closed load switches in accordance with an embodiment of the present
invention.
FIG. 4 is a schematic diagram of a power control system including a controlled switch
having three load switches in accordance with an embodiment of the present invention.
FIG. 5 is a schematic diagram of a power control system including a controlled switch
having one load switch in accordance with an embodiment of the present invention.
FIG. 6 is a flowchart of a process for operating a controlled switch in accordance
with an embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
[0019] Turning now to the drawings, embodiments of systems and methods for protecting a
coil in a controlled switch such as a contactor or a relay are illustrated. Controlled
switches can be used to connect or disconnect loads of various sizes and phases from
sources of power. Such controlled switches typically include a coil acting as an electromagnet
to provide a force to switch the load when current is applied to the coil. This force
can be used to switch one or more load switches together with an auxiliary switch.
Substantial currents are provided to enable the coil to switch the load and the auxiliary
switches. A hold or "economizer" coil is often used to decrease the amount of current
needed to hold the armature(s) of the controlled switch in the switched position once
the load and auxiliary switches have been actuated. In such case, a portion of the
economizer coil can be used as an actuator or "pull-in" coil.
[0020] In operation, the control power source applies a voltage to generate a substantial
current in the pull-in coil. The hold coil is placed in parallel with the normally
closed auxiliary switch, causing it to short during the switching period. The pull-in
coil can be placed in series with the auxiliary switch and can produce a switching
force proportional to that substantial current supplied by the control power source.
When the controlled switch is actuated by the switching force, the auxiliary contacts
open and the economizer (hold) coil is placed in the current path. The economizer
coil generally has a larger impedance than the pull-in coil, decreasing the current
required from the control power source to keep the controlled switch in the switched
position.
[0021] In the event that the auxiliary switch fails to operate, continuation of the substantial
actuation current can cause permanent damage to, and the subsequent failure of, the
coils. To avoid destruction of the coils and the controlled switch (e.g. relay) when
the auxiliary switch fails to operate, a resettable current limiting device is placed
in series with the pull-in coil and auxiliary switch. This resettable current limiting
device substantially limits the current passing through the device when the current
exceeds a threshold for a predetermined period of time. When the current drops below
the threshold, the resettable device returns to its original state in which it conducts
current with minimal limitation.
[0022] In one embodiment, the controlled switch can control the distribution of power in
an aircraft electrical system. Power can be distributed using any of DC or AC (single,
two or three phase) systems, or any combination thereof. In one embodiment, the controlled
switch has two load switches that switch DC power sources. In several embodiments,
the DC power sources operate at 28 volts, 26 volts or 270 volts. In one embodiment,
DC power sources operate in the range of 11 to 28 volts. In other embodiments, the
controlled switch has three load switches that switch AC power sources. In one embodiment,
the AC power source operates at 115 volts and at a frequency of 400 hertz. In other
embodiments, the controlled switch has a single load switch that can switch a DC power
source or a single phase of an AC power source. In other embodiments, the power sources
operate at other voltages and other frequencies. In one embodiment, the DC power sources
can include batteries, auxiliary power units and/or external DC power sources. In
one embodiment, the AC power sources can include generators, ram air turbines and/or
external AC power sources.
[0023] A schematic block diagram of a power control system in accordance with an embodiment
of the present invention is shown in FIG. 1. The power control system 200 includes
a controlled switch 202 connected to a power source 204, a load 206 and a control
power source 208. In operation, if the controlled switch 202 receives a signal from
the control power source 208, the switch 202 connects or disconnects the load 206
from the power source 204.
[0024] In one embodiment, the power control system 200 is a subsystem of an aircraft electrical
system. The power source 204 can be a generator, a battery or other AC or DC power
sources. The load 206 can include aircraft flight instruments, essential systems such
as landing gear, exterior lights, aircraft motor controls and the like, and/or passenger
services such as lights, air conditioning and entertainment systems. In one embodiment,
the loads range from requiring 1 to 400 amps. In another embodiment, the loads typically
require 50 to 60 amps. The control power source 208 can be a signal generated in response
to either automated systems or manual systems. In many embodiments, the control power
source is capable of supplying an amount of current adequate to operate the controlled
switch 202. In one embodiment, 6 to 7 amps from the control power source is sufficient
to cause the controlled switch to connect or disconnect the load. In one embodiment,
the controlled switch is a contactor. In another embodiment, the controlled switch
is a relay.
[0025] A schematic block diagram of a power control system including a controlled switch
with a current limiting device in accordance with an embodiment of the present invention
is shown in FIG. 2. The power control system 300 includes a controlled switch 302,
a power source 304, a load 306 and a control power source 308. The controlled switch
302 includes a pull-in coil 310, an economizer coil 312, an auxiliary switch 320,
a first load switch 322, a second load switch 324, and a current limiting device 330.
The economizer coil 312 includes a first end 314, a tap 316, and a second end 318,
where the pull-in coil consists of the portion of the economizer coil extending from
the second end 318 to the tap 316.
[0026] The power source 304 is connected to the first load switch 322 and the second load
switch 324. The first load switch 322 and the second load switch 324 are connected
to the load 306. The control power source 308 is connected to both the first end 314
and the second end 318 of the economizer coil 312. The auxiliary switch and first
and second load switches each include a switch arm (armature) and a switch contact.
The tap 316 is connected to the auxiliary switch 320. In the illustrated embodiment,
the auxiliary switch 320 is normally closed and operates complimentary to the load
switches that are normally open. The three switches are arranged such that all three
are switched together. The auxiliary switch 320 is connected to the current limiting
device 330. The first end 314 of the economizer coil 312 is connected to the current
limiting device 330.
[0027] In operation, the control power source 308 provides a voltage and switching current
to the pull-in coil 310 at the second end 318. At this time, the current limiting
device 330 has minimal resistance to current flowing through the device. Thus, nearly
all of the switching current initially travels through the pull-in coil 310 and out
of the tap 316, through the auxiliary switch 320 and current limiting device 330,
and returns to the current power source 308 via the first end 314. In one embodiment,
the switching current provided by the control power source 308 enters at the first
end 314 of the economizer coil 312 and returns via the second end 318.
[0028] The initial switching current can be substantial in order to facilitate switching
using the pull-in coil. In one embodiment, the initial switching current or inrush
current is approximately 6 to 7 amps. The pull-in coil acts as an electromagnet to
create a force that physically switches or actuates the auxiliary switch and both
of the load switches. Upon successful switching of the auxiliary switch, the switching
current supplied by the control power source can be reduced as the force required
to hold the switch in the switched position is generally less than the force required
to operate the switch. This is accomplished by opening the auxiliary contact in parallel
to the hold coil and therefore placing the hold coil, with greater impedance, in the
path of the current.
[0029] The auxiliary switch can fail to open because of failed switch contacts, low voltage
from the control power source or another reason. In any such case, the current limiting
device senses the continuing switching current and acts to limit the current flowing
through the device. In one embodiment, the current limiting device is a resettable
fuse such as a thermistor or a polymer positive temperature coefficient (PPTC) fuse.
In such case, the resettable fuse has a threshold or trip current such that when the
threshold is exceeded for a predetermined period of time, the resettable fuse begins
to heat up quickly. The heat changes the resistive properties of the resettable fuse
such that the resistance of the device increases dramatically when the threshold is
exceeded. In one embodiment, the resistance increases by at least an order of magnitude.
In another embodiment, the resistance increases exponentially. However, when the current
through the resettable fuse returns to a level below the threshold, the resistance
of the fuse becomes minimal again as though it had been reset. In this way, the resettable
fuse can be used any number of times to prevent switch failures from destroying the
switching coil.
[0030] In one embodiment, the current limiting device can be a combination of components
capable of comparing an input current level and a threshold over some period of time,
and changing the overall impedance seen by the input current based on the comparison.
The combination can include any number of devices including integrated circuits, processors
and/or discrete devices coupled to one another.
[0031] In one embodiment, the threshold current must be exceeded for a period of time greater
than 20 to 30 milliseconds before the resettable fuse heats up quickly to limit current
flow. In one embodiment, the resettable fuse can be a POLYFUSE® resettable positive
temperature coefficient fuse such as any of the 60R250, 60R300, and 60R375 fuses made
by Littlefuse, Inc. of Des Plaines, Illinois. In such case, the threshold current
can be 5, 6, and 7.5 amps, respectively. In one embodiment, the inrush current is
greater than 6 to 7 amps. In another embodiment, the threshold current must be exceeded
for a period of time much greater than 20 to 30 milliseconds. In one embodiment, two
or more resettable fuses can be used together in parallel to increase the current
capability and to extend the time for the combination of favor to substantially change
their impedance. In another embodiment, two or more resettable fuses can be used together
in series.
[0032] Returning briefly to FIG. 1, the controlled switch 202 functions in the same manner
described above for the controlled switch 302 of FIG. 2, in one embodiment of the
invention.
[0033] A schematic block diagram of a power control system including a controlled switch
having normally closed load switches in accordance with an embodiment of the present
invention is shown in FIG. 3. The power control system 400 includes a controlled switch
402, a power source 404, a load 406 and a control power source 408. The controlled
switch 402 includes a pull-in coil 410, an economizer coil 412, an auxiliary switch
420, a first load switch 422, a second load switch 424, and a current limiting device
430. The economizer coil 412 includes a first end 414, a tap 416, and a second end
418, where the pull-in coil consists of the portion of the economizer coil extending
from the second end 418 to the tap 416.
[0034] The power source 404 is connected to the first load switch 422 and the second load
switch 424. The first load switch 422 and the second load switch 424 are connected
to the load 406. The control power source 408 is connected to both the first end 414
and the second end 418 of the economizer coil 412. The auxiliary switch and first
and second load switches each include a switch arm and a switch contact. The tap 416
is connected to the auxiliary switch 420. In the illustrated embodiment, the auxiliary
switch 420 and the load switches are normally closed. The three switches are arranged
such that all three are switched together. The auxiliary switch is connected to the
current limiting device 430. The first end 414 of the economizer coil 412 is connected
to the current limiting device 430.
[0035] The power control system 400 of FIG. 4 is identical to the embodiment shown in FIG.
3, except that load switch 422 and load switch 424 are normally closed switches. The
power control system 400 can operate as described previously for the embodiment shown
in FIG. 3.
[0036] A schematic block diagram of a power control system including a controlled switch
having three load switches in accordance with an embodiment of the present invention
is shown in FIG. 4. The power control system 500 includes a controlled switch 502,
a power source 504, a load 506 and a control power source 508. The controlled switch
502 includes a pull-in coil 510, an economizer coil 512, an auxiliary switch 520,
a first load switch 522, a second load switch 524, a third load switch 526, and a
current limiting device 530. The economizer coil 512 includes a first end 514, a tap
516, and a second end 518, where the pull-in coil consists of the portion of the economizer
coil extending from the second end 518 to the tap 516.
[0037] The power source 504 is connected to the first load switch 522, the second load switch
524, and the third load switch 526. The first load switch 522, the second load switch
524 and the third load switch 526 are connected to the load 506. The control power
source 508 is connected to both the first end 514 and the second end 518 of the economizer
coil 512. The auxiliary switch and first and second load switches each include a switch
arm and a switch contact. The tap 516 is connected to the auxiliary switch 520. In
the illustrated embodiment, the auxiliary switch 520 is normally closed and the load
switches are normally open. The four switches are arranged such that all three are
switched together. The auxiliary switch is connected to the current limiting device
530. The first end 514 of the economizer coil 512 is connected to the current limiting
device 530.
[0038] The power control system 500 of FIG. 5 is nearly identical to the embodiment shown
in FIG. 3, except that it includes an additional load switch. The power control system
500 can operate as described previously for the embodiment shown in FIG. 3.
[0039] A schematic block diagram of a power control system including a controlled switch
having one load switch in accordance with an embodiment of the present invention is
shown in FIG. 5. The power control system 600 includes a controlled switch 602, a
power source 604, a load 606 and a control power source 608. The controlled switch
602 includes a pull-in coil 610, an economizer coil 612, an auxiliary switch 620,
a load switch 622, and a current limiting device 630. The economizer coil 612 includes
a first end 614, a tap 616, and a second end 618, where the pull-in coil consists
of the portion of the economizer coil extending from the second end 618 to the tap
616.
[0040] The power source 604 is connected to the load switch 622. The load switch 622 is
connected to the load 606. The control power source 608 is connected to both the first
end 614 and the second end 618 of the economizer coil 612. The auxiliary switch and
the load switch each include a switch arm and a switch contact. The tap 616 is connected
to the auxiliary switch 620. In the illustrated embodiment, the auxiliary switch 620
is normally closed and the load switch is normally open. The two switches are arranged
such that they are both switched together. The auxiliary switch is connected to the
current limiting device 630. The first end 614 of the economizer coil 612 is connected
to the current limiting device 630.
[0041] The power control system 600 of FIG. 5 is nearly identical to the embodiment shown
in FIG. 2, except that it includes only one load switch. The power control system
600 can operate as described previously for the embodiment shown in FIG. 2.
[0042] In one embodiment, any number of load switches can be used in conjunction with at
least one auxiliary switch in any number of arrangements of normally open or normally
closed default switch settings.
[0043] A flowchart of a process for operating a controlled switch in accordance with an
embodiment of the present invention is shown in FIG. 6. The process 750 begins when
it provides (752) switching current to a coil (e.g. a pull-in coil). The process then
generates (754) a force for switching one or more load switches and an auxiliary switch.
In one embodiment, the force is proportional to, or a function of, the switching current.
The process then determines (756) whether the auxiliary switch failed to operate.
In one embodiment, the determination is made based on the amount of current flowing
through the current limiting device and the coil. If the auxiliary switch fails to
operate, then the process limits (758) the current flowing through the coil and returns
to determining (756) whether the auxiliary switch failed to open. In one embodiment,
the current flowing through the coil is limited using a resettable fuse. If the auxiliary
switch does not fail to operate, then the process allows (760) the full amount of
current to flow through the coil.
[0044] While the above description contains many specific embodiments of the invention,
these should not be construed as limitations on the scope of the invention, but rather
as an example of one embodiment thereof. Accordingly, the scope of the invention should
be determined not by the embodiments illustrated, but by the appended claims.
1. A switch circuit comprising:
at least one load switch (322, 324, 422, 424, 522, 524, 526, 622) connectable between
a power source (304, 404, 504, 604) and a load (306, 406, 506, 606) and at least one
auxiliary switch (320, 420, 520, 620), each switch actuable between a default position
and a switched position;
a coil structure comprising a main coil (312, 412, 512, 612) and a component coil
(310, 410, 510, 610), the component coil being a portion of the main coil extending
from a first end (318, 418, 518, 618) of the main coil to a tap (316, 416, 516, 616)
of the main coil, the coil structure being configured to actuate the at least one
load switch and at least one auxiliary switch in response to a control input, the
coil structure being switchable between:
an actuating configuration for actuating the at least one load switch and the at least
one auxiliary switch from the default position, and
a holding configuration for holding the at least one load switch and the at least
one auxiliary switch in the switched position;
wherein the at least one auxiliary switch is configured to switch the coil structure
from the actuating configuration to the holding configuration,
characterized in that the switch circuit comprises a resettable current limiting device (330, 430, 530,
630) configured to limit the current flow in the actuating configuration of the coil
structure if the current flow exceeds a threshold for a predetermined period of time,
wherein the resettable current limiting device is coupled to a second end (314, 414,
514, 614) of the main coil and the tap through the auxiliary switch.
2. The switch circuit of claim 1:
wherein the control input and the power source are aircraft electrical power sources;
and
wherein the load is an aircraft electrical load.
3. The switch circuit of claim 1, wherein an impedance of the resettable current limiting
device increases at least an order of magnitude when the current exceeds the threshold
for the predetermined period of time.
4. The switch circuit of claim 1, wherein the resettable current limiting device is configured
to allow current to flow with minimal impedance when the current is below the threshold
for another predetermined period of time.
5. The switch circuit of claim 1:
wherein a first current supplied by the control input actuates the at least one load
switch and the at least one auxiliary switch from the default position;
wherein a second current supplied by the control input holds the at least one load
switch and the at least one auxiliary switch in the switched position; and
wherein the first current is greater than the second current.
6. The switch circuit of claim 1, wherein the resettable current limiting device is one
of a thermistor and a positive temperature coefficient device.
7. The switch circuit of claim 1:
wherein the default position of the at least one auxiliary switch is closed; and
wherein the default position of the at least one load switch is open.
8. The switch circuit of claim 1:
wherein the default position of the at least one auxiliary switch is closed; and
wherein the default position of the at least one load switch is closed.
9. The switch circuit of claim 1, wherein the component coil is used in the actuating
configuration for actuating the at least one load switch and the at least one auxiliary
switch from the default position; and
wherein the main coil is used in the holding configuration for holding the at least
one load switch and the at least one auxiliary switch in the switched position.
10. The switch circuit of claim 9, wherein the default position of the at least one auxiliary
switch is closed.
11. A method of operating a switch circuit comprising a coil structure configured to actuate
at least one load switch (322, 324, 422, 424, 522, 524, 526, 622) and at least one
auxiliary switch (320, 420, 520, 620) in response to a control input, the coil structure
comprising a main coil (312, 412, 512, 612) and a component coil (310, 410, 510, 610),
the component coil being a portion of the main coil extending from a first end (318,
418, 518, 618) of the main coil to a tap (316, 416, 516, 616) of the main coil, the
coil structure being switchable between an actuating configuration for actuating the
at least one load switch and the at least one auxiliary switch from a default position,
and a holding configuration for holding the at least one load switch and the at least
one auxiliary switch in a switched position, and a resettable current limiting device
(330, 430, 530, 630) having a current threshold, the resettable current limiting device
being coupled to a second end (314, 414, 514, 614) of the main coil and the tap through
the auxiliary switch outside of a flow of a holding current provided when the coil
structure is in the holding configuration, the method comprising:
providing a switching current to the coil structure;
generating, in response to the switching current, a force for switching the at least
one load switch and the at least one auxiliary switch; and
limiting the switching current flowing through the coil structure using the resettable
current limiting device when the switching current exceeds the current threshold for
a predetermined period of time.
12. The method of claim 11:
wherein the switch circuit further comprises a control power source configured to
supply current to the coil structure; and
wherein the at least one load switch is connected between a power source and a load.
13. The method of claim 12:
wherein the control power source and the power source are aircraft electrical power
sources; and
wherein the load is an aircraft electrical load.
14. The method of claim 11, wherein the limiting the switching current flowing through
the coil structure using the resettable current limiting device when the switching
current exceeds the current threshold for the predetermined period of time comprises
substantially limiting the switching current flowing through the coil structure in
the actuating configuration using the resettable current limiting device when the
switching current exceeds the threshold for the predetermined period of time.
15. The method of claim 11, wherein the limiting the switching current flowing through
the coil structure using the resettable current limiting device when the switching
current exceeds the current threshold for the predetermined period of time is performed
by the resettable current limiting device, where a resistance of the resettable current
limiting device increases at least an order of magnitude when the switching current
exceeds the threshold for the predetermined period of time.
1. Schaltstromkreis, umfassend:
mindestens einen Lastschalter (322, 324, 422, 424, 522, 524, 526, 622), der zwischen
eine Leistungsquelle (304, 404, 504, 604) und einen Verbraucher (306, 406, 506, 606)
schaltbar ist, und mindestens einen Hilfsschalter (320, 420, 520, 620), wobei jeder
Schalter zwischen einer Normalstellung und einer Umschaltstellung verstellt werden
kann;
eine Spulenstruktur, die eine Hauptspule (312, 412, 512, 612) und eine Nebenspule
(310, 410, 510, 610) umfasst, wobei die Nebenspule ein Abschnitt der Hauptspule ist,
der sich von einem ersten Ende (318, 418, 518, 618) der Hauptspule zu einem Abgriff
(316, 416, 516, 616) der Hauptspule erstreckt, wobei die Spulenstruktur so gestaltet
ist, dass sie den mindestens einen Lastschalter und den mindestens einen Hilfsschalter
als Reaktion auf einen Steuerungseingang verstellt, wobei die Spulenstruktur umschaltbar
ist zwischen:
einer Betätigungskonfiguration zum Verstellen des mindestens einen Lastschalters und
des mindestens einen Hilfsschalters aus der Normalstellung, und
einer Haltekonfiguration zum Halten des mindestens einen Lastschalters und des mindestens
einen Hilfsschalters in der Umschaltstellung, und
wobei der mindestens eine Hilfsschalter so gestaltet ist, dass er die Spulenstruktur
aus der Betätigungskonfiguration in die Haltekonfiguration umschaltet,
dadurch gekennzeichnet, dass der Schaltstromkreis eine zurücksetzbare Strombegrenzungsvorrichtung (330, 430, 530,
630) umfasst, die so gestaltet ist, dass sie den Stromfluss in der Betätigungskonfiguration
der Spulenstruktur begrenzt, wenn der Stromfluss für eine vorgegebene Zeitspanne einen
Schwellenwert überschreitet,
wobei die zurücksetzbare Strombegrenzungsvorrichtung durch den Hilfsschalter mit einem
zweiten Ende (314, 414, 514, 614) der Hauptspule und dem Abgriff verbunden ist.
2. Schaltstromkreis nach Anspruch 1:
wobei der Steuerungseingang und die Leistungsquelle Stromquellen für ein Flugzeug
sind; und wobei der Verbraucher ein elektrischer Verbraucher an einem Flugzeug ist.
3. Schaltstromkreis nach Anspruch 1, wobei eine Impedanz der zurücksetzbaren Strombegrenzungsvorrichtung
um mindestens eine Größenordnung zunimmt, wenn der Strom den Schwellenwert für die
vorgegebene Zeitspanne überschreitet.
4. Schaltstromkreis nach Anspruch 1, wobei die zurücksetzbare Strombegrenzungsvorrichtung
so gestaltet ist, dass sie einen Strom mit minimaler Impedanz fließen lässt, wenn
der Strom für eine andere vorgegebene Zeitspanne unter dem Schwellenwert bleibt.
5. Schaltstromkreis nach Anspruch 1:
wobei ein erster Strom, der vom Steuerungseingang geliefert wird, den mindestens einen
Lastschalter und den mindestens einen Hilfsschalters aus der Normalstellung verstellt,
und
wobei ein zweiter Strom, der vom Steuerungseingang geliefert wird, den mindestens
einen Lastschalter und den mindestens einen Hilfsschalters in der Umschaltstellung
hält, und
wobei der erste Strom stärker ist als der zweite Strom.
6. Schaltstromkreis nach Anspruch 1, wobei die zurücksetzbare Strombegrenzungsvorrichtung
eine Thermistor und/oder eine Vorrichtung auf Basis eines positiven Temperaturkoeffizienten
ist.
7. Schaltstromkreis nach Anspruch 1:
wobei die Normalstellung des mindestens einen Hilfsschalters Geschlossen ist; und
wobei die Normalstellung des mindestens einen Lastschalters Offen ist.
8. Schaltstromkreis nach Anspruch 1:
wobei die Normalstellung des mindestens einen Hilfsschalters Geschlossen ist; und
wobei die Normalstellung des mindestens eien Lastschalters Geschlossen ist.
9. Schaltstromkreis nach Anspruch 1, wobei die Nebenspule in der Betätigungskonfiguration
verwendet wird, um den mindestens einen Lastschalter und den mindestens einen Hilfsschalter
aus der Normalstellung umzuschalten; und
wobei die Hauptspule in der Haltekonfiguration verwendet wird, um den mindestens einen
Lastschalter und den mindestens einen Hilfsschalter in der Umschaltstellung zu halten.
10. Schaltstromkreis nach Anspruch 9, wobei die Normalstellung des mindestens einen Hilfsschalters
geschlossen ist.
11. Verfahren zum Betreiben eines Schaltstromkreises, der aufweist: eine Spulenstruktur,
die so gestaltet ist, dass sie als Reaktion auf einen Steuerungseingang mindestens
einen Lastschalter (322, 324, 422, 424, 522, 524, 526, 622) und mindestens einen Hilfsschalter
(320,420,520, 620) betätigt, wobei die Spulenstruktur eine Hauptspule (312,412, 512,
612) und eine Nebenspule (310,410, 510, 610) umfasst, wobei die Nebenspule ein Abschnitt
der Hauptspule ist, der sich von einem ersten Ende (318,418,518,618) der Hauptspule
zu einem Abgriff (316,416,516,616) der Hauptspule erstreckt, wobei die Spulenstruktur
umschaltbar ist zwischen einer Betätigungskonfiguration zum Verstellen des mindestens
einen Lastschalters und des mindestens einen Hilfsschalters aus eine Normalstellung
und einer Haltekonfiguration zum Halten des mindestens einen Lastschalters und des
mindestens einen Hilfsschalters in einer Umschaltstellung, und eine zurücksetzbare
Strombegrenzungsvorrichtung (330,430, 530, 630) mit einem Stromschwellenwert, wobei
die zurücksetzbare Strombegrenzungsvorrichtung durch den Hilfsschalter außerhalb eines
Stroms eines Haltestroms, der bereitgestellt wird, wenn die Spulenstruktur in der
Haltekonfiguration ist, mit einem zweiten Ende (314,414,514,614) der Hauptspule und
dem Abgriff verbunden ist, wobei das Verfahren umfasst:
Liefern eines Umschaltstroms zur Spulenstruktur;
Erzeugen einer Kraft zum Umschalten des mindestens einen Lastschalters und des mindestens
einen Hilfsschalters als Reaktion auf den Umschaltstrom; und
Begrenzen des Umschaltstroms, der durch die Spulenstruktur fließt, unter Verwendung
der zurücksetzbaren Strombegrenzungsvorrichtung, wenn der Umschaltstrom den Stromschwellenwert
für eine vorgegebene Zeitspanne überschreitet.
12. Verfahren nach Anspruch 11:
wobei der Schaltstromkreis ferner eine Steuerungsleistungsquelle umfasst, die so gestaltet
ist, dass sie Strom zur Spulenstruktur liefert; und
wobei der mindestens eine Lastschalter zwischen eine Leistungsquelle und einen Verbraucher
geschaltet ist.
13. Verfahren nach Anspruch 12:
wobei die Steuerungsleistungsquelle und die Leistungsquelle Stromquellen für ein Flugzeug
sind; und
wobei der Verbraucher ein elektrischer Verbraucher an einem Flugzeug ist.
14. Verfahren nach Anspruch 11, wobei das Begrenzen des Umschaltstroms, der durch die
Spulenstruktur fließt, unter Verwendung der zurücksetzbaren Strombegrenzungsvorrichtung,
wenn der Umschaltstrom für die vorgegebene Zeitspanne den Stromschwellenwert überschreitet,
das wesentliche Begrenzen des Umschaltstroms, der durch die Spulenstruktur fließt,
in der Betätigungskonfiguration unter Verwendung der zurücksetzbaren Strombegrenzungsvorrichtung,
wenn der Umschaltstrom den Schwellenwert für die vorgegebene Zeitspanne überschreitet,
umfasst.
15. Verfahren nach Anspruch 11, wobei das Begrenzen des Umschaltstroms, der durch die
Spulenstruktur fließt, unter Verwendung der zurücksetzbaren Strombegrenzungsvorrichtung,
wenn der Umschaltstrom für die vorgegebene Zeitspanne den Stromschwellenwert überschreitet,
von der zurücksetzbaren Strombegrenzungsvorrichtung durchgeführt wird, wobei ein Widerstand
der zurücksetzbaren Strombegrenzungsvorrichtung um mindestens eine Größenordnung steigt,
wenn der Umschaltstrom den Schwellenwert für die vorgegebene Zeitspanne überschreitet.
1. Circuit de commutation comprenant :
au moins un commutateur de charge (322, 324, 422, 424, 522, 524, 526, 622) pouvant
être connecté entre une source de puissance (304, 404, 504, 604) et une charge (306,
406, 506, 606) et au moins un commutateur auxiliaire (320, 420, 520, 620),
chaque commutateur pouvant être actionné entre une position par défaut et une position
commutée ;
une structure de bobines comprenant une bobine principale (312, 412, 512, 612) et
une bobine de composant (310, 410, 510, 610), la bobine de composant étant une partie
de la bobine principale s'étendant d'une première extrémité (318, 418, 518, 618) de
la bobine principale vers une prise (316, 416, 516, 616) de la bobine principale,
la structure de bobines étant configurée pour actionner ledit au moins un commutateur
de charge et au moins un commutateur auxiliaire en réponse à une entrée de commande,
la structure de bobines pouvant être commutée entre :
une configuration d'actionnement pour actionner ledit au moins un commutateur de charge
et ledit au moins un commutateur auxiliaire à partir de la position par défaut, et
une configuration de maintien pour maintenir ledit au moins un commutateur de charge
et ledit au moins un commutateur auxiliaire dans la position commutée ;
dans lequel ledit au moins un commutateur auxiliaire est configuré pour commuter la
structure de bobines de la configuration d'actionnement vers la configuration de maintien,
caractérisé en ce que le circuit de commutation comprend un dispositif de limitation de courant réarmable
(330, 430, 530, 630) configuré pour limiter la circulation de courant dans la configuration
d'actionnement de la structure de bobines si la circulation de courant dépasse un
seuil pendant une période de temps prédéterminée,
dans lequel le dispositif de limitation de courant réarmable est couplé à une deuxième
extrémité (314, 414, 514, 614) de la bobine principale et à la prise par l'intermédiaire
du commutateur auxiliaire.
2. Circuit de commutation selon la revendication 1,
dans lequel l'entrée de commande et la source de puissance sont des sources de puissance
électrique d'avion ; et
dans lequel la charge est une charge électrique d'avion.
3. Circuit de commutation selon la revendication 1, dans lequel une impédance du dispositif
de limitation de courant réarmable augmente d'au moins un ordre de grandeur lorsque
le courant dépasse le seuil pendant la période de temps prédéterminée.
4. Circuit de commutation selon la revendication 1, dans lequel le dispositif de limitation
de courant réarmable est configuré pour permettre la circulation du courant avec une
impédance minimale lorsque le courant est au-dessous du seuil pendant une autre période
de temps prédéterminée.
5. Circuit de commutation selon la revendication 1,
dans lequel un premier courant délivré par l'entrée de commande actionne ledit au
moins un commutateur de charge et ledit au moins un commutateur auxiliaire à partir
de la position par défaut ;
dans lequel un deuxième courant délivré par l'entrée de commande maintient ledit au
moins un commutateur de charge et ledit au moins un commutateur auxiliaire dans la
position commutée ; et
dans lequel le premier courant est plus grand que le deuxième courant.
6. Circuit de commutation selon la revendication 1, dans lequel le dispositif de limitation
de courant réarmable est l'un d'une thermistance et d'un dispositif à coefficient
de température positif.
7. Circuit de commutation selon la revendication 1,
dans lequel la position par défaut dudit au moins un commutateur auxiliaire est la
position fermée ; et
dans lequel la position par défaut dudit au moins un commutateur de charge est la
position ouverte.
8. Circuit de commutation selon la revendication 1,
dans lequel la position par défaut dudit au moins un commutateur auxiliaire est la
position fermée ; et
dans lequel la position par défaut dudit au moins un commutateur de charge est la
position fermée.
9. Circuit de commutation selon la revendication 1, dans lequel la bobine de composant
est utilisée dans la configuration d'actionnement pour actionner ledit au moins un
commutateur de charge et ledit au moins un commutateur auxiliaire à partir de la position
par défaut ; et
dans lequel la bobine principale est utilisée dans la configuration de maintien pour
maintenir ledit au moins un commutateur de charge et ledit au moins un commutateur
auxiliaire dans la position commutée.
10. Circuit de commutation selon la revendication 9, dans lequel la position par défaut
dudit au moins un commutateur auxiliaire est la position fermée.
11. Procédé de mise en oeuvre d'un circuit de commutation comprenant une structure de
bobines configurée pour actionner au moins un commutateur de charge (322, 324, 422,
424, 522, 524, 526, 622) et au moins un commutateur auxiliaire (320, 420, 520, 620)
en réponse à une entrée de commande, la structure de bobines comprenant une bobine
principale (312, 412, 512, 612) et une bobine de composant (310, 410, 510, 610), la
bobine de composant étant une partie de la bobine principale s'étendant d'une première
extrémité (318, 418, 518, 618) de la bobine principale jusqu'à une prise (316, 416,
516, 616) de la bobine principale, la structure de bobines pouvant être commutée entre
une configuration d'actionnement pour actionner ledit au moins un commutateur de charge
et ledit au moins un commutateur auxiliaire à partir d'une position par défaut et
une configuration de maintien pour maintenir ledit au moins un commutateur de charge
et ledit au moins un commutateur auxiliaire dans une position commutée, et un dispositif
de limitation de courant réarmable (330, 430, 530, 630) ayant un seuil de courant,
le dispositif de limitation de courant réarmable étant couplé à une deuxième extrémité
(314, 414, 514, 614) de la bobine principale et à la prise par l'intermédiaire du
commutateur auxiliaire à l'extérieur d'une circulation d'un courant de maintien fourni
lorsque la structure de bobines est dans la configuration de maintien, le procédé
comprenant :
la fourniture d'un courant de commutation à la structure de bobines ;
la génération, en réponse au courant de commutation, d'une force pour commuter ledit
au moins un commutateur de charge et ledit au moins un commutateur auxiliaire ; et
la limitation du courant de commutation circulant à travers la structure de bobines
en utilisant le dispositif de limitation de courant réarmable lorsque le courant de
commutation dépasse le seuil de courant pendant une période de temps prédéterminée.
12. Procédé selon la revendication 11,
dans lequel le circuit de commutation comprend en outre une source de puissance de
commande configurée pour fournir du courant à la structure de bobines ; et
dans lequel ledit au moins un commutateur de charge est connecté entre une source
de puissance et une charge.
13. Procédé selon la revendication 12,
dans lequel la source de puissance de commande et la source de puissance sont des
sources de puissance électrique d'avion ; et
dans lequel la charge est une charge électrique d'avion.
14. Procédé selon la revendication 11, dans lequel la limitation du courant de commutation
circulant à travers la structure de bobines en utilisant le dispositif de limitation
de courant réarmable lorsque le courant de commutation dépasse le seuil de courant
pendant la période de temps prédéterminée comprend la limitation sensiblement du courant
de commutation circulant à travers la structure de bobines dans la configuration d'actionnement
en utilisant le dispositif de limitation de courant réarmable lorsque le courant de
commutation dépasse le seuil pendant la période de temps prédéterminée.
15. Procédé selon la revendication 11, dans lequel la limitation du courant de commutation
circulant à travers la structure de bobines en utilisant le dispositif de limitation
de courant réarmable lorsque le courant de commutation dépasse le seuil de courant
pendant la période de temps prédéterminée est effectuée par le dispositif de limitation
de courant réarmable, dans lequel une résistance du dispositif de limitation de courant
réarmable augmente d'au moins un ordre de grandeur lorsque le courant de commutation
dépasse le seuil pendant la période de temps prédéterminée.