Prior Art
[0001] The present invention relates to a planar inductive element, in particular to a planar
transformer. In particular, the invention relates to a low power transformer operating
with high voltages. Such transformers are used for example for DC/DC converting in
switch mode which involves switching the input voltage with high frequency which leads
to high voltages at the secondary windings.
[0002] EP1811530 discloses a planar inductive element according to the preamble of claim 1.
[0003] Peak voltages occurring at inductive elements which are operated at high frequencies,
e.g. switch mode transformers, are causing serious insulation problems even for applications
with low input or output voltages. For example, according to the standard UL60950-1,
2
nd ed., the minimum required clearance for double or reinforced insulation is 1.4 mm
for working voltages between 70 and 140 V in absence of transients. The resulting
required thickness by solid insulation for this working voltage is 0.4 mm. Such insulation
has to be provided between the windings and the exterior of the inductive element
as well as between the windings and the core structure, in particular if conductive
core material is used. These minimum distances substantially decrease the package
density which, however, is crucial for low power applications, e.g. electronics or
in automotive applications. Further, the layout of the circuit using such inductive
elements is impaired by additional insulation gaps and is required to address insulation
problems when placing the elements around the inductive element. In particular, this
relates to minimum gaps in horizontal direction which have to be provided due to the
high voltages.
[0004] Further, extra insulation material or elements involve additional costs and manufacturing
steps and, at the same time, do not reduce the space requirements for inductive operating
at high voltages.
[0005] It is therefore an object of the invention to provide an inductive element with reduced
space requirements and increased electrical properties as regards insulation.
Summary of the Invention
[0006] The planar inductive element, the electric power supply circuit as well as the method
according to the independent claims substantially decrease the required space for
an inductive element operating at high voltages and, at the same time, provide increased
insulation properties. The insulation properties are significantly increased without
additional manufacturing steps and, in particular, without a need for additional insulation
elements or material. The insulation properties are significantly increased by an
inventive shielding conductor which can be provided by a manufacturing step, which
is already carried out when producing inductive elements, wherein only slight modifications
are necessary to the manufacturing step. In particular, the risk involved with high
voltages at the outer surface of an inductive element which has to be addressed when
creating the layout of a printed circuit board and the pertaining placement of adjacent
electronic components is reduced to zero when using the inventive structure. Further,
when using a conductive core, no additional space has to be provided for insulation
materials. Rather, the complete space within the core structure can be used for windings,
which significantly increases the efficiency of the inductive element. In particular,
when using the invention for providing a switching power supply, the effectiveness
can be substantially increased which leads to significantly increased battery lifetime
for mobile applications.
[0007] According to the invention, a planar inductive element is provided which comprises
at least one planar winding as well as a core structure. The core structure is encompassed
by the at least one winding of the inductive element such that the flux produced by
the inductive element is focused within the core structure. According to the invention,
the inductive element comprises at least one shielding conductor, wherein the at least
one shielding conductor comprises an inner shielding conductor which encloses a leg
of the core structure. In particular, the inner shielding conductor is arranged between
the at least one planar winding and the core structure. Such an inner shielding conductor
is particularly useful if a non-insulating material is used for the core structure,
e.g. conducting ferrite material. The at least one shielding conductor comprises an
outer shielding conductor which is at least partly enclosing the at least one winding.
Thus, the outer shielding conductor is arranged between the winding and the exterior
of the planar inductive element. The at least one shielding conductor can comprise
the inner shielding conductor only or the outer shielding conductor only and, in particular,
can comprise the inner shielding conductor as well as the outer shielding conductor.
In embodiments in which the core structure substantially houses the at least one winding,
it is essential to provide the inner shielding conductor between winding and core
structure (in particular the inner leg of the core structure) since in these embodiments,
the insulation between outer core structure and exterior of the inductive element
is substantial. However, if only the inner shielding conductor, the outer shielding
conductor or both shielding conductors are provided within the inventive planar inductive
element, the shielding conductor is defined by the insulation requirements for the
planar inductive element and depends on the application and the electronic elements
surrounding the planar inductive element within the application.
[0008] According to an embodiment of the invention, the at least one planar winding and
the at least one shielding conductor are coplanar, i.e. extend in the same plane.
The at least one planar winding and the at least one shielding conductor can also
be arranged on a substrate supporting both, the at least one winding and the at least
one shielding conductor. In another alternative, the at least one winding and the
at least one shielding conductor are provided by tracks of a printed circuit board.
The thickness of the windings can be defined by their application. For example, the
tracks providing the winding can have a thickness of 70 µm copper, 100 µm copper,
or more. Since the at least one shielding conductor does not conduct any substantial
current, the track providing the shielding conductor can be thinner than the track
providing the windings. However, according to a preferred embodiment, the tracks providing
the winding and the shielding conductor have the same thickness which allows both,
one single manufacturing step as well as using a circuit board with a conductive layer
having a constant thickness. Nevertheless, the width of the shielding conductor can
be smaller than the width of the winding.
[0009] However, if only the winding is provided by a printed circuit board and the shielding
conductor is added by an additional manufacturing step, e.g. by a step arranging a
thin wire or applying a conductive layer onto a printed circuit board, the shielding
conductor can be thinner than the winding. In another embodiment, the at least one
winding and the at least one shielding conductor are provided as conductive layers
extending around the at least one winding and a leg of the core structure, respectively,
as well as parallel to the leg of the core structure in form a sheet. The winding
and/or the shielding conductor can be provided as sheets which are wound around the
leg (or another part) of the core structure, wherein the wound-up layer providing
the winding has a cross-section in form of a spiral, and the shielding conductor is
in form of a cylindrically bound conductive sheet. Preferably, in all of these embodiments,
the ends of the shielding conductor are not connected with each other and are provided
as an open circuit. This can be provided by a shielding conductor which does not encompass
a complete circumference or by insulating the ends of the shielding conductor at sections
at which parts of the shielding conductor overlap each other.
[0010] Advantageously, the at least one shielding conductor forms an open circuit. Further,
the shielding conductor preferably comprises a tap or another connection element which
allows to connect the shielding conductor to a defined potential. In this way, the
core and/or the external region of the inductive element adjoining the shielding conductor
are confronted with the shielding conductor as a conductor at low potential which
does not produce any insulation problems but is provided at a defined low voltage.
[0011] According to a particular embodiment of the invention, the planar inductive element,
in particular its windings, are provided as tracks on several circuit boards. In such
an inductive element, the at least one winding comprises a plurality of windings as
tracks on distinct, stacked circuit boards. These stacked circuit boards are aligned
to each other and have identical shapes. The windings of the distinct circuit boards
can be connected in parallel, in series or can be grouped in series as well as in
parallel. Similarly, the shielding conductor is provided on the stacked circuit boards,
preferably on all stacked circuit boards as inner shielding conductor, as outer shielding
conductor, or as both. Thus, in this preferred embodiment, the stacked circuit boards
are identical, each of them carrying an inner and an outer shielding conductor which
is formed of the tracks of a conductive layer of the printed circuit board, wherein
this conductive layer also forms tracks providing the windings.
[0012] The inductive element can be provided as a coil or can be provided as a transformer.
In particular, all of the windings are connected with each other within the inductive
element providing the inductive element as a coil or as an autotransformer. An autotransformer
is a transformer having a primary winding, the primary winding also comprising a secondary
winding forming a voltage divider. Further, some of the plurality of windings can
be mutually insulated, which provides secondary and primary windings (or further windings)
which are not electrically connected with each other but are connected by encompassing
the same magnetic flux.
[0013] In a further embodiment, the inductive element of the invention is provided for through-hole
mounting and comprises terminals only at one side which adjoins to a printed circuit
board after mounting the inductive element onto such a printed circuit board which
also supports additional electronic or electrical elements. Thus, the inductive element
comprises connection terminals (electrically connected to the winding and, if applicable,
to the at least one shielding conductor). Thus, the inductive element further comprises
connection terminals suitable for connecting the inductive element with external circuits,
external substrates or external circuit boards. The connection terminals are preferably
arranged only at one side of the inductive element, i.e. the mounting side of the
inductive element. This side can also be considered as a connection plane. The connection
terminals extend through such a connection plane, wherein the at least one shielding
conductor partly extends in parallel to the connection plane. In this way, the shielding
conductor shields the one winding within the inductive element with regard to the
external circuit, external substrate or external circuit board on which the inductive
element is mounted. The shielding conductor comprises a shielding section which is
formed of all parts of the shielding conductor which are located at or on the connection
plane (apart from any gaps which may be present). This section of the shielding conductor,
preferably including a small gap between ends of the shielding conductor, located
at the connection plane is formed of a continuous conductor and provides a continuously
conducting shielding section. In particular, the shielding conductor is provided as
an open circuit having two ends which are not directly connected with each other.
In one embodiment, these ends are not arranged at the connection plane but at a location
in distance to the connection plane.
[0014] However, if the insulation standards do not require a very strict insulation (in
particular due to reasonable operating voltages within the windings), the open ends
can also be provided within or at the connection plane. In this case, the layout of
the external circuit board on which the inductive element is mounted does not provide
a conductor or a sensitive electronic element directly at both ends of the shielding
conductor. If the ends of the shielding conductor are arranged at or on the connection
plane, the external substrate or the external circuit board on which the inductive
element is mounted provides an insulation area between these ends and between the
ends and other electrical components of the external circuit provided by the external
substrate or external circuit board and the residual electrical components mounted
thereon.
[0015] According to a particular application of the inductive element, the inventive inductive
element is used within an electric power supply circuit. Such an inventive electric
power supply circuit comprises the inventive inductive element. The inductive element
comprises at least two mutually insulated windings, wherein the inductive element
is connected as a transformer. In this embodiment of the at least one shielding conductor
is connected to ground or to a low supply potential or voltage of the electric power
supply circuit. In this way, the shielding conductor can be guaranteed to be below
a critical voltage. In another embodiment, the inductive element is provided as a
coil, as for example in step-up or step-down converters or other switching current
circuits. In a simple embodiment, the electric power supply circuit comprises the
inventive inductive element provided as a coil with two terminals, wherein the inductive
element is switched to deliver magnetic field energy from one electric potential to
another electric potential according to controlled switching. In general, the electric
power supply circuit according to the invention can comprise the inventive inductive
element which is provided as transformer or as a coil.
[0016] In a preferred embodiment of the electric power supply circuit, the circuit is a
switching circuit power supply which comprises a chopper unit. This chopper unit or
any other similar switching converting unit is supplied by an input power supply.
The chopper unit drives at least one of the windings, preferably by switching a semiconductor
switch, e.g. a MOSFET. The chopper unit switches the input power and forwards this
input power to the windings, wherein at each increasing edge of the switched input
power a magnetic field is induced within the inventive inductive element. When switching
off the input power, the magnetic energy is stored in the core structure of the inductive
element or is discharged into another part of the switching circuit power supply for
providing the input power at a distinct voltage. By switching the input power, peak
voltages occur within the windings. Therefore, the at least one shielding conductor
is connected to a potential of the input power supply. This potential can be V
CC, ground, -V
CC or any other potential insuring the accommodation of voltage/current peaks resulting
from switched inductivities. In particular the pertaining potential should be stable
and should not respond to a peak voltage occurring in the shielding with a substantial
voltage change.
[0017] According to a further aspect of the invention, the invention can be realized by
a method for shielding a planar inductive element, in particular the planar inductive
element provided by the core structure and the at least one winding as defined above.
The method provides for shielding a planar inductive element having at least one planar
winding as well as a core structure. The method comprises to arrange at least one
shielding conductor around a leg of the core structure or around the at least one
winding of the planar inductive element, or both. The at least one shielding conductor
and the winding (i.e. the at least one planar winding of the planar inductive element)
are arranged in the same plane. Further, the method comprises to apply a low potential
or a ground potential to the at least one shielding conductor. This results in shielding
the surrounding and the core structure of the inductive element
versus high voltages within the inductive element which occur when switching the inductive
element. Since the core structure is close to the at least one winding, any shielding
of the winding only indirectly leads to shielding the core structure. Further, due
to the closeness of the core structure and the at least one planar winding, shielding
the winding indirectly leads to shielding of the core structure. Of course, the shielding
can be arranged as inner shielding conductor or as outer shielding conductor as described
above with regard to the inventive planar inductive element. In a particular embodiment
of the inventive method for shielding a planar inductive element, the planar inductive
element is operated at a voltage or current comprising a substantial high frequency
component. The application of the low potential or the ground potential to the at
least one shielding conductor comprises conducting high voltages and high voltage
peaks to the low potential or the to the ground potential. In this way, any peaks
resulting as induction results within the shielding conductor are derived from potentials
accommodating the peak currents without substantially increasing the potential.
Short Description of the Drawings
[0018]
- Figure 1
- is a top view of an embodiment of the inventive planar inductive element; and
- Figure 2
- is a sectional view of an embodiment similar to the embodiment of Figure 1.
Detailed Description of the Drawings
[0019] Figure 1 is a cross-sectional view of an embodiment of the inventive planar inductive
element. The planar inductive element of Figure 1 comprises a planar winding 10 as
well as a core structure 12, 14a, b, wherein the core structure comprises a centre
leg 12 which is encompassed by the winding 10. The core structure comprises three
legs, a middle leg 12 and two outer legs 14a, b, wherein the outer legs 14a, b are
provided for closing the magnetic circuit. The flux within the core structure is produced
by the planar winding 10 inducing a magnetic flux into centre leg 12. This flux is
focused within the core structure and is fed by outer legs 14a, b.
[0020] The embodiment of Figure 1 comprises at least one shielding conductor in form of
an outer shielding conductor 16 and an inner shielding conductor 18. As can be seen
form Figure 1, the inner and the outer shielding conductor 16, 18 are thinner than
the planar winding 10. Further, it can be seen that the inner and the outer shielding
conductor 16, 18 are arranged in the same plane in which also the planar winding 10
is arranged. The inner and the outer shielding conductor 16, 18 as well as the winding
10 are provided by tracks formed of a structured conductive layer of a printed circuit
board (not shown). The circuit board (not shown) has a shape which allows to fit within
the core structure. In particular, the circuit board comprises an opening through
which the centre leg 12 extends. Additionally, the planar winding comprises two ends
10a, b which are connected to the connectors (not shown) extending perpendicular to
the plane of projection of Figure 1. These connectors (not shown) connect the shown
planar winding to other windings and/or to terminals of the planar inductive element
for external connection. In addition, the inner shielding conductor 18 follows the
shape of the centre leg 12 and comprises two ends which are not connected with each
other, one end of which, referenced as 18a, comprises a connector. This connector
18a is connected to other parts of the planar inductive element or other elements
external to the planar inductive element for defining the potential of inner shielding
conductor 18 onto a low voltage. As can be seen, a small gap is provided between both
ends of inner shielding conductor 18 to avoid any currents to be introduced into the
inner shielding conductor 18. If the shielding conductor would be a closed circuit,
the alternating magnetic flux within centre leg 12 would induce an undesired substantial
current into the inner shielding conductor 18.
[0021] The planar inductive element of Figure 1 further comprises the outer shielding conductor
16 which partly encloses the planar winding 10. As can be seen, also the outer shielding
conductor 16 is provided as open loop and comprises two ends 16a, b which are not
connected to each other. In the embodiment of Figure 1, the shielding of the planar
winding to the left side is not necessary (e.g. due to other insulation mechanisms,
e.g. gaps, which are not shown). However, the outer shielding conductor 16 provides
shielding of the planar winding 10 with regard to the outer legs 14a, b and also with
regard to the right side of the planar inductive element shown in Figure 1. As can
be seen from Figure 1, also the outer shielding conductor 16 comprises a connection
element 16c which allows connection to ground or low potentials. Firstly, the connection
elements of the shielding conductors 16, 18 can be connected to other connectors (not
shown) of the planar element in order to connect the respective shielding with external
potentials. Alternatively, the connection elements 16c and 18a of the inner end the
outer shielding conductor 16, 18 can also be connected with one and of the planar
winding if it is ensured by external connection that the end of the winding 10 to
which the shielding conductor is connected to is connected to a low potential or to
ground during operation.
[0022] Since the shielding conductors 16, 18 provide a surface with a defined, low potential,
the gaps 20, 22 between the respective core structure section and the planar winding
10 are comparably small and allow high density packaging of the winding within the
core structure resulting in a high efficiency of the planar inductive element.
[0023] Additional interlayer connections are shown as circles which provide connection between
layers of the inductive element perpendicular to the plane of projection of Figure
1.
[0024] Figure 2 shows an embodiment of the inventive planar inductive element similar to
the embodiment shown in Figure 1 in side view. The embodiment shown in Figure 2 comprises
a core structure provided by core elements15a, 15b in form of an El-core shape. The
core structure 15a, 15b comprises two outer legs 14a, b as well as a centre leg 12.
The windings are defined by tracks of a plurality of stacked, printed circuit boards
30 sandwiched between insulation layers 32 which can also be provided by (unlayered)
circuit boards. Figure 2 is not drawn to scale. In particular, the thickness of the
tracks arranged on the circuit board 30 are not drawn to scale. The embodiment of
Figure 2 is comparable to the embodiment shown in Figure 1, wherein the cross section
shown in Figure 2 is similar to the view of a cross section along A-A' as shown in
Figure 1. In Figure 2, the printed circuit boards comprise a double-layered circuit
board (the upper circuit board referenced as circuit board 30) as well as a single-layered
printed circuit board (the lower circuit board of the circuit boards 30). Between
each of the conductive layers of the circuit boards 30, insulating substrate is given.
The tracks formed by the conductive layer of the printed circuit boards 30 form a
first structure 10 (only some of which are referred to by reference signs 10 in Figure
2) providing wide tracks. Structure 10 defines the planar winding which is spirally
wound around centre leg 12. Further, the conductive layer of printed circuit boards
30 defines an outer shielding conductor 16 at the outer periphery of the printed circuit
board 30 as well as an inner shielding conductor 18, both of which are provided by
a track which is significantly thinner than the tracks providing the planar winding
10. Preferably, the thickness and the width of the tracks providing the winding, the
inner shielding and the outer shielding, are constant of the length of the respective
tracks.
[0025] In addition to tracks providing conductors extending in the plane of the windings,
the planar inductive element of Figure 2 further comprises intra- or interlayer connectors
which allow the connection of the windings, inner shielding conductor or outer shielding
conductor of distinct surfaces of the same circuit board or between surfaces of distinct
circuit boards. In Figure 2, an intra-circuit board connector 24 connects the outer
shielding conductor of two opposed sides of a double-sided printed circuit board.
Further conducting elements can be provided which connect the shielding conductors
with each other, with a terminal of the planar inductive element, or with a particular
end of the planar winding, which are not shown in Figure 2. Further, an intra-circuit
board connection 26 connects tracks providing planar windings of the circuit board
located on opposed sides of the circuit board.
[0026] Terminals for connecting the shielding conductor(s) or the planar windings to internal
circuitry are not shown in Figure 2. In general, such connection elements or terminals
extend along the direction of extension of the centre leg 12 outside the core structure
15a, 15b.
[0027] Again referring to Figure 1, such terminals or intra-element connectors could be
provided at places like connector 16c and connection 10b, or other. In addition, intra-inductive
element connectors could be provided within or outside the core structure between
circuit boards or between distinct surfaces of circuit boards. In addition, such intra-inductive
element conductors and connectors external to the circuit board element could be connected
by tracks provided by the printed circuit boards. Terminals for external connection
can be provided below or above the core structure or outside the core structure at
locations like 16c or 10b (cf. Figure 1) extending from the planar inductive element
towards additional printed circuit boards on which the inventive planar inductive
element is arranged together with other electric or electronic components.
[0028] According to one aspect of the invention, the inductive element according to the
invention can be manufactured by structuring at least one printed circuit board, wherein
structuring the circuit board comprises providing an inner shielding conductor, an
outer shielding conductor or both at the same structuring step in which the planar
winding is structured in form of a spiral. Further, this method can comprise to stack
similar or comparable circuit boards onto each other. After providing the circuit
board or the stack of circuit boards, at least a part of the core structure is introduced
into a central opening of the circuit boards. Adding the core to the planar inductive
element can comprise introducing a first part of the core structure into the opening
of the printed circuit board as well as around the printed circuit board (or stacked
thereon) and to add a complementary component closing the magnetic path of the part
which has already been introduced into the opening of the circuit board.
[0029] By providing the shielding conductor(s) when structuring the at least one winding
of the inductive element (as known by the prior art), no additional step is necessary
for providing the inventive manufacturing method. Rather, only the structure has to
be slightly modified in order to introduce the inner or the outer shielding conductor
or both.
1. Planar inductive element, the inductive element comprising at least one planar winding
(10) and a core structure (12, 14a, b) encompassed by the at least one winding of
the inductive element, wherein the inductive element is further characterized by at least one shielding conductor, wherein the at least one shielding conductor comprises
an outer shielding conductor (16) at least partly enclosing the at least one winding,
characterised in that
it also comprises an inner shielding conductor (18) at least partly enclosing a leg
(12) of the core structure.
2. Inductive element according to claim 1, wherein the at least one planar winding (10)
and the at least one shielding conductor (16, 18) extend coplanar or are arranged
on a substrate supporting both, the at least one winding and the at least one shielding
conductor, or wherein the at least one winding and the at least one shielding conductor
are provided by tracks of a printed circuit board (30), or wherein the at least one
winding and the at least one shielding conductor are provided as conductive layers
extending around the at least one winding and a leg of the core structure, respectively,
as well as parallel to the leg (12) of the core structure.
3. Inductive element according to claim 1 or 2, wherein the at least one shielding conductor
forms an open circuit and comprises an electrical derivation connection suited to
connect the at least one shielding conductor (16, 18) to a low potential internal
or external to the inductive element.
4. Inductive element according to one of the preceding claims, wherein the at least one
winding comprises a plurality of windings as tracks on a distinct, stacked circuit
board (30, 32), wherein all of the windings are connected to each other within the
inductive element providing the inductive element as a coil or an autotransformer,
or wherein some of the plurality of windings are mutually insulated providing the
inductive element as a transformer.
5. Inductive element according to one of the preceding claims, further comprising connection
terminals suitable for connecting the inductive element to external circuits, external
substrates or external circuit boards, the connection terminals extending through
a connection plane, wherein the at least one shielding conductor partly extends in
parallel to the connection plane, the section of the shielding conductor extending
in parallel to the connection plane forming a continuously conducting shielding section.
6. Electric power supply circuit comprising the inductive element according to one of
the preceding claims, the inductive element comprising at least two mutually insulated
windings, wherein the inductive element is connected as a transformer and wherein
the at least one shielding conductor is connected to ground or a low supply potential
of the electric power supply circuit.
7. Electric power supply circuit according to claim 6, wherein the electric power supply
circuit is a switching circuit power supply comprising a chopper unit supplied by
an input power supply, the chopper unit driving at least one of the windings, wherein
the at least one shielding conductor is connected to a potential of the input power
supply.
8. Method for shielding a planar inductive element according to claim 1 having at least
one planar winding as well as a core structure, the method comprising: arranging at
least one shielding conductor (16, 18) around a leg (12) of the core structure and
around the at least one winding, wherein the at least one shielding conductor and
the winding are arranged in the same plane, and applying a low potential or a ground
potential to the at least one shielding conductor (16, 18), thereby shielding the
surrounding and the core structure (12, 14a, b) of the inductive element from high
voltages within the inductive element.
9. Method for shielding a planar inductive element according to claim 8, wherein the
planar inductive element is operated at a voltage or current comprising a substantial
high frequency component, wherein the application of the low potential or a ground
potential to the at least one shielding conductor (16, 18) comprises conducting high
voltages and high voltage peaks induced into the shielding conductor by the high frequency
component to the low potential or to the ground potential.
1. Planares induktives Element, wobei das induktive Element mindestens eine Planarwicklung
(10) und eine Kernstruktur (12, 14a, b) umfasst, die von der mindestens einen Wicklung
des induktiven Elements umschlossen ist, wobei das induktive Element ferner durch
mindestens einen Abschirmleiter gekennzeichnet ist, wobei der mindestens eine Abschirmleiter
einen äußeren Abschirmleiter (16) umfasst, der die mindestens eine Wicklung wenigstens
teilweise umgibt,
dadurch gekennzeichnet, dass
er außerdem einen inneren Abschirmleiter (18) umfasst, der einen Schenkel (12) der
Kernstruktur wenigstens teilweise umgibt.
2. Induktives Element nach Anspruch 1, wobei die mindestens eine Planarwicklung (10)
und der mindestens eine Abschirmleiter (16, 18) sich koplanar erstrecken oder auf
einem Substrat angeordnet sind, das sowohl die mindestens eine Wicklung als auch den
mindestens einen Abschirmleiter trägt, oder wobei die mindestens eine Wicklung und
der mindestens eine Abschirmleiter durch Leiterbahnen einer gedruckten Leiterplatte
(30) vorgesehen sind, oder wobei die mindestens eine Wicklung und der mindestens eine
Abschirmleiter als leitende Schichten vorgesehen sind, die sich um die mindestens
eine Wicklung bzw. einen Schenkel der Kernstruktur sowie parallel zum Schenkel (12)
der Kernstruktur erstrecken.
3. Induktives Element nach Anspruch 1 oder 2, wobei der mindestens eine Abschirmleiter
einen offenen Kreis bildet und eine elektrische Ableitungsverbindung umfasst, die
zum Verbinden des mindestens einen Abschirmleiters (16, 18) mit einem niedrigen Potenzial
innerhalb oder außerhalb des induktiven Elements geeignet ist.
4. Induktives Element nach einem der vorhergehenden Ansprüche, wobei die mindestens eine
Wicklung eine Mehrzahl von Wicklungen als Leiterbahnen auf einer eigenen gestapelten
Leiterplatte (30, 32) umfasst, wobei alle der Wicklungen innerhalb des induktiven
Elements miteinander verbunden sind und das induktive Element als eine Spule oder
einen Autotransformator bereitstellen, oder wobei einige der Mehrzahl von Wicklungen
voneinander isoliert sind und das induktive Element als einen Transformator bereitstellen.
5. Induktives Element nach einem der vorhergehenden Ansprüche, ferner umfassend Verbindungsanschlüsse,
die zum Verbinden des induktiven Elements mit externen Kreisen, externen Substraten
oder externen Leiterplatten geeignet sind, wobei sich die Verbindungsanschlüsse durch
eine Verbindungsebene erstrecken, wobei sich der mindestens eine Abschirmleiter teilweise
parallel zur Verbindungsebene erstreckt, wobei der Abschnitt des Abschirmleiters,
der sich parallel zu Verbindungsebene erstreckt, einen durchgehend leitenden Abschirmabschnitt
bildet.
6. Stromversorgungskreis, umfassend das induktive Element nach einem der vorhergehenden
Ansprüche, wobei das induktive Element mindestens zwei voneinander isolierte Wicklungen
umfasst, wobei das induktive Element als ein Transformator angeschlossen ist, und
wobei der mindestens eine Abschirmleiter mit Masse oder einem niedrigen Versorgungspotenzial
des Stromversorgungskreises verbunden.
7. Stromversorgungskreis nach Anspruch 6, wobei der Stromversorgungskreis eine Schaltkreisstromversorgung
ist, die eine Zerhackereinheit umfasst, die durch eine Eingangsstromversorgung versorgt
wird, wobei die Zerhackereinheit mindestens eine der Wicklung ansteuert, wobei der
mindestens eine Abschirmleiter mit einem Potenzial der Eingangsstromversorgung verbunden
ist.
8. Verfahren zur Abschirmung eines planaren induktiven Elements nach Anspruch 1 mit mindestens
einer Planarwicklung sowie einer Kernstruktur, wobei das Verfahren umfasst: Anordnen
mindestens eines Abschirmleiters (16, 18) um einen Schenkel (12) der Kernstruktur
und um die mindestens eine Wicklung, wobei der mindestens eine Abschirmleiter und
die Wicklung in der gleichen Ebene angeordnet werden, und Anlegen eines niedrigen
Potenzials oder eines Massepotenzials an den mindestens einen Abschirmleiter (16,
18), um dadurch die Umgebung und die Kernstruktur (12, 14a, b) des induktiven Elements
gegen hohe Spannungen innerhalb des induktiven Elements abzuschirmen.
9. Verfahren zur Abschirmung eines planaren induktiven Elements nach Anspruch 8, wobei
das planare induktive Element bei einer Spannung oder einem Strom betrieben wird,
die/der eine wesentliche Hochfrequenzkomponente umfasst, wobei das Anlegen des niedrigen
Potenzials oder eines Massepotenzials an den mindestens einen Abschirmleiter (16,
18) ein Leiten von hohen Spannungen und hohen Spannungsspitzen, die durch die Hochfrequenzkomponente
in den Abschirmleiter eingeführt werden, zum niedrigen Potenzial oder zum Massepotenzial
umfasst.
1. Élément inductif plan, l'élément inductif comprenant au moins un enroulement plan
(10) et une structure de noyau (12, 14a,b) encerclée par l'au moins un enroulement
de l'élément inductif, l'élément inductif étant en outre caractérisé par au moins un conducteur écran, l'au moins un conducteur écran comprenant un conducteur
écran extérieur (16) entourant au moins partiellement l'au moins un enroulement,
caractérisé en ce qu'il comprend également un conducteur écran intérieur (18) entourant au moins partiellement
une colonne (12) de la structure de noyau.
2. Élément inductif selon la revendication 1, dans lequel l'au moins un enroulement plan
(10) et l'au moins un conducteur écran (16, 18) s'étendent de façon coplanaire ou
sont disposés sur un substrat supportant à la fois l'au moins un enroulement et l'au
moins un conducteur écran, ou dans lequel l'au moins un enroulement et l'au moins
un conducteur écran sont fournis par des pistes d'une carte de circuit imprimé (30),
ou dans lequel l'au moins un enroulement et l'au moins un conducteur écran sont fournis
sous forme de couches conductrices s'étendant autour de l'au moins un enroulement
et d'une colonne de la structure de noyau, respectivement, ainsi que parallèlement
à la colonne (12) de la structure de noyau.
3. Élément inductif selon la revendication 1 ou 2, dans lequel l'au moins un conducteur
écran forme un circuit ouvert et comprend un raccord de dérivation électrique approprié
pour raccorder l'au moins un conducteur écran (16, 18) à un faible potentiel interne
ou externe à l'élément inductif.
4. Élément inductif selon une des revendications précédentes, dans lequel l'au moins
un enroulement comprend une pluralité d'enroulements sous forme de pistes sur une
carte de circuit distincte, empilée (30, 32), tous les enroulements étant raccordés
les uns aux autres à l'intérieur de l'élément inductif, fournissant l'élément inductif
sous la forme d'une bobine ou d'un autotransformateur, ou dans lequel certains de
la pluralité d'enroulements sont mutuellement isolés, fournissant l'élément inductif
sous la forme d'un transformateur.
5. Élément inductif selon une des revendications précédentes, comprenant en outre des
bornes de raccordement appropriées pour raccorder l'élément inductif à des circuits
externes, des substrats externes ou des cartes de circuit externes, les bornes de
raccordement s'étendant à travers un plan de raccordement, dans lequel l'au moins
un conducteur écran s'étend partiellement parallèlement au plan de raccordement, la
section du conducteur écran s'étendant parallèlement au plan de raccordement formant
une section écran continûment conductrice.
6. Circuit d'alimentation électrique comprenant l'élément inducteur selon une des revendications
précédentes, l'élément inducteur comprenant au moins deux enroulements mutuellement
isolés, l'élément inducteur étant raccordé comme un transformateur et l'au moins un
conducteur écran étant raccordé à la terre ou un faible potentiel d'alimentation du
circuit d'alimentation électrique.
7. Circuit d'alimentation électrique selon la revendication 6, le circuit d'alimentation
électrique étant une alimentation à circuit de découpage comprenant une unité de hachage
fournie par une alimentation d'entrée, l'unité de hachage commandant au moins un des
enroulements, l'au moins un conducteur écran étant raccordé à un potentiel de l'alimentation
d'entrée.
8. Procédé de blindage d'un élément inductif plan selon la revendication 1 ayant au moins
un enroulement plan ainsi qu'une structure de noyau, le procédé comprenant les étapes
suivantes : disposer au moins un conducteur écran (16, 18) autour d'une colonne (12)
de la structure de noyau et autour de l'au moins un enroulement, l'au moins un conducteur
écran et l'enroulement étant disposés dans le même plan, et appliquer un faible potentiel
ou un potentiel de terre à l'au moins un conducteur écran (16, 18) pour protéger ainsi
l'environnement et la structure de noyau (12, 14a,b) de l'élément inducteur contre
les hautes tensions à l'intérieur de l'élément inducteur.
9. Procédé de blindage d'un élément inductif plan selon la revendication 8, dans lequel
l'élément inductif plan est utilisé à une tension ou un courant comprenant une importante
composante haute fréquence, l'application du faible potentiel ou d'un potentiel de
terre à l'au moins un conducteur écran (16, 18) comprenant la conduction des hautes
tensions et des pics de haute tension induits dans le conducteur écran par la composante
haute fréquence jusqu'au faible potentiel ou jusqu'au potentiel de terre.