Title of Invention

A SYSTEM FOR AXIALLY SECURING ROTATING BLADES IN A ROTOR

Abstract An arrangement (10 is presented for axially securing rotating blades (14) in a rotor, having a shaft collar (21) on whose external circumference (52) rotating blade securing grooves (12) which extend in the axial direction of the rotor are provided. At one end side face (56) of the shaft collar (21) a projection is arranged : in the region of the securing grooves, in which projection a circumferential groove (20) which is open radially towards the outsid< is provided and said projection having securing grooves (24) which are arranged in each rotating blade (14), sheet-metal-shaped sealing element (42) which each engage in the circumferential groove (20) and in the securing groove (24) and form an end side sealing ring in the circumferential direction (U) being provided for axially securing the rotating blades (14),and at least one of the sealing elements (42) cor mprising a sheet metal strip (60) which is attached to said sealing r: elements (42) against displacement in the circumferential direction (U). It is proposed that the sheet metal strips (60) which are attached to the radially inner end of the sealing element (42) be shaped in an L-like manner and be supported on the rotor disc (19).
Full Text PCT/EP2006/065512 - 1 -
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Description
Arrangement for axially securing rotating blades in a rotor,
sealing element for such an arrangement, and use of such an
arrangement
The invention relates to an arrangement for axially securing
rotating blades in a rotor, comprising a shaft collar, on whose
outer circumference rotating-blade retaining slots running in
the axial direction of the rotor are provided, in which
rotating-blade retaining slots respective rotating blades
having blade roots corresponding to the rotating-blade
retaining slots are arranged, comprising a projection which is
arranged on a front-end side face of the shaft collar in the
region of the retaining slots and in which an encircling slot
which is open radially outward is provided, wherein sheet-
metal-like sealing elements engaging in each case in the
encircling slot are provided for axially securing the rotating
blades, said sealing elements forming a front-end sealing ring
in the circumferential direction, wherein, to secure the
sealing elements against a displacement in the circumferential
direction, at least one of the sealing elements comprises a
sheet-metal strip fastened to said sealing element. The
invention also relates to the use of such an arrangement and to
a sealing element having a sheet-metal strip fastened to said
sealing element.
Rotors of gas turbines are known in which turbine rotating
blades arranged at the outer circumference in rotating-blade
retaining slots are secured against axial displacement by means
of sealing plates.
To this end, different constructions are known from the prior
art. For example, GB 954,323 shows an arrangement of sealing
plates of the generic type on a rotor. To secure the moving
blades against an axial displacement inside their retaining
AMENDED SHEET

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slot, sealing plates are provided which are hooked both to the
rotor disk and to the platform underside of the rotating
blades. On account of
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the construction selected, a sealing plate lock is necessary,
which has to be inserted last into the rotor slots in order to
complete the ring of sealing plates. In this case, two sealing
plate halves which are split transversely to the radial
direction are provided. The two sealing plate halves and the
adjacent sealing elements directly to the left and right of
them are secured against detachment by means of a sheet-metal
strip which can be placed against the sealing plate halves and
can be secured in the sealing plate ring by two auxiliary
elements.
Furthermore, GB 2 043 796 and GB 1 209 419 disclose different
sealing plate fastenings which are in each case restrained with
the rotor disk via a screw or bolt on said rotor disk.
In addition, fig. 1 shows a further known fastening of sealing
plates on rotor disks in plan view and fig. 2 shows such a
fastening in cross section along section line II-II in fig. 1.
Two adjacent sealing plates 16 are provided for each rotating
blade 14 to be secured against an axial displacement inside its
rotating-blade retaining slot 12, said sealing plates 16 each
covering half the front-end opening of the rotating-blade
retaining slot 12. Each sealing plate 16 is inserted at its
radially inner end 18 in a slot 2 0 provided at the front end on
a rotor disk 19 and at its radially outer end 22 in a securing
slot 24 which is provided on the underside 26 of a platform 28
of the rotating blade 14. In order to secure each sealing plate
16 against a displacement in the circumferential direction U, a
rectilinear sheet-metal strip 3 0 extending essentially in the
radial direction of the rotor 23 is fastened to each sealing
plate 16. Each sheet-metal strip 30 ends at its radially outer
end 32 in an evenly converging tip 34. There are chamfered
edges 3 6 on the platforms 28 of the rotating blades 14, two
opposite edges 3 6 of directly adjacent rotating blades 14 in
each case forming a recess 3 8 which tapers to a point and into
which the tip 34 of the sheet-metal strip 30 can project
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and come into contact for securing the sealing plates 16
against a displacement in the circumferential direction U.
In addition, the sealing plates 16 provide for separation of
two regions 37, 3 9 in which cooling air can occur on the one
hand and an undesirable hot-gas flow can occur on the other
hand.
To fasten the sheet-metal strips 30 to the sealing plate 16,
two parallel slots 40, through which the sheet-metal strip 3 0
already pre-bent in a U shape is inserted, are provided in said
sealing plate 16. That end 41 of the sheet-metal strip 30 which
is opposite the tip 34 is bent into the position shown in fig.
2 for fastening the sheet-metal strip 3 0 before the sealing
plate 16 is fitted on the rotor disk 19.
After the fitting of the rotating blades 14 in the rotor disks
19, the sealing plates 16 together with the pre-fitted sheet-
metal strips 3 0 are fitted into the endlessly encircling slot
20 arranged on the rotor disk 19 and into the securing slot 24
arranged on the underside 26 of the platform 28. The sealing
plates 16 are positioned along the circumference of the slot 20
in such a way that each sheet-metal strip 3 0 is opposite a
recess 38. The tips 34 of the sheet-metal strips 30 are then
bent into the recesses 38 in order to
AMENDED SHEET

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rule out the possibility of a displacement of the sealing
plates 16 in the circumferential direction U.
An object of the present invention is to specify an alternative
arrangement for securing the sealing elements against a
displacement threatening to take place in the circumferential
direction. A further object of the invention is to provide a
sealing element which can be used for this purpose and to
specify the use of such an arrangement.
The object relating to the arrangement for axially securing
rotating blades in a rotor is achieved by the features of claim
1.
The invention proposes that the sheet-metal strip be of
essentially L-shaped design in its extent, wherein its first
leg extending in the circumferential direction is fastened to
the sealing element and its second leg extending inward in the
radial direction engages in a securing pocket, which securing
pocket is provided in the front-end region of the shaft collar.
The invention thus deviates from the previous solution in which
a displacement of the sealing elements in the circumferential
direction is prevented by the sheet-metal strip bearing against
the rotating blades, i.e. in the region of the radially outer
end of the sealing element. In contrast, the invention proposes
that the sheet-metal strip engage in a securing pocket which
now lies radially on the inside with respect to the sealing
element and is provided on the side face or front end of the
shaft collar.
The invention is based on the knowledge that, if the securing
pocket were to be shifted merely from radially on the outside
to radially on the inside while retaining a rectilinear sheet-
metal strip, the sheet-metal strip can bend up during operation
of the gas turbine on account of the centrifugal force acting
on it and can thus become detached from the securing pocket. In

PCT/EP2006/065512 - 3b -
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order to prevent this, the invention goes one essential step
further. The sheet-metal strip is no

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longer of rectilinear design as hitherto, but rather has, in a
plane essentially parallel to the sheet-metal-like sealing
element, a shape bent at right angles like an L with two legs.
A first leg, extending in the circumferential direction, of the
sheet-metal strip is fastened to the sealing element, for
example in a manner already known, and a second leg extending
inward in the radial direction engages in the fitted position
in the securing pocket provided on the side face of the shaft
collar. On account of the bent section of the sheet-metal strip
between the two legs rectilinear per se, bending-up of the
sheet-metal strip due to centrifugal force during operation of
the gas turbine is effectively and reliably prevented.
Since both the securing of the rotating blades against an axial
displacement by means of the sealing element and the design
principle of the hooking of the sheet-metal strip to the
sealing element through two slots provided therein have proved
successful, the principle has been retained in order to
continue to be able to fit and remove the rotating blades. To
this end, the sealing elements are to be displaced in the
circumferential direction and the sheet-metal strips are to be
correspondingly bent when fitting into the securing pocket or
when removing from the securing pocket. Furthermore, there are
no screwed connections or pin connections, which possibly have
to be bored out during dismantling.
Furthermore, each sheet-metal strip bent at right angles,
compared with the sheet-metal strips known from the prior art,
sits at a noncritical point for the sealing elements and thus
improves the buckling behavior of the sealing elements. In
addition, the temperature occurring at the sealing element
during operation of the gas turbine decreases with decreasing
radius, a factor which can be essentially attributed to the
lower intake of hot gas at this point. Since the sheet-metal
strips are now provided at the inner radius, and not as
hitherto at the outer radius, of the sealing element, said

PCT/EP2006/065512 - 4a -
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sheet-metal strips are also advantageously

PCT/EP2006/065512 - 5 -
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subjected to a lower temperature. This leads to increased and
improved rigidity of the sheet-metal strip and to a prolonged
service life. In addition, due to the bending process, i.e.
when the sheet-metal strips are being bent into the securing
pocket, compressive stresses are introduced at the points of
the sheet-metal strip subjected to the highest load during
operation of the gas turbine, and these compressive stresses
are superimposed with tensile stresses during the operation of
the gas turbine and therefore at least partly neutralize one
another. In the prior art, tensile stresses have been
superimposed here in an adverse manner.
Furthermore, once the sealing elements have been used and then
removed, the construction enables said sealing elements to be
used again, only the sheet-metal strips then having to be
renewed.
A further advantage of the subject matter according to the
invention is that each rotating blade can be secured merely by
one sealing element assigned to it, such that, during an
exchange of an individual rotating blade of the blade ring,
only one sealing element now has to be removed and not two
sealing plates as in the closest prior art. This reduces the
duration of maintenance work and downtimes of the gas turbine
thus equipped.
Advantageous configurations are specified in the subclaims.
It has turned out to be especially advantageous if at least
every second sealing element or every sealing element has a
sheet-metal strip of identical construction to the sheet-metal
strip and intended for securing against its displacement in the
circumferential direction. Therefore the sealing ring formed by
all the sealing elements is secured against a displacement in
the circumferential direction at a plurality of positions
distributed over the circumference.

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In a development, the side regions of the second leg of each
sheet-metal strip bear against the respective side walls,
extending in the radial direction, of the securing pocket,
which constitutes an effective measure against a displacement
of the sealing elements in the circumferential direction. It is
especially advantageous if the slot encircling at the front
end, in which slot the sealing elements are held radially on
the inside, is arranged radially further on the inside with
respect to the rotating-blade retaining slots. A cost-
effective, endlessly encircling slot which is especially simple
to produce can therefore be obtained during the production of
the shaft collar.
According to a further configuration, the securing pocket which
is provided on the end face of the shaft collar is formed by
two spaced-apart teeth which are arranged at the front end and
extend radially outward.
A securing slot which is arranged in each rotating blade and in
which the sealing element can engage radially outward is
expediently provided on an underside of a platform of the
rotating blade. In this way, the sealing element is securely
fixed and positioned at two radially spaced-apart points.
The shaft collar is expediently formed by a rotor disk.
In an alternative configuration, the slot encircling at the
front end is arranged radially at the level of the rotating-
blade retaining slots. A further slot which is open outward is
provided radially further on the inside, the sealing element
engaging in both slots and in addition bearing against the root
of the rotating blade at the front end. In this way, reliable
hooking of the sealing element at at least two radially spaced-
apart points is achieved, such that a force occurring in the
axial direction due to the displacement of the rotating blade
can be reliably compensated by the sealing element.

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The object which relates to the sealing element is achieved by
the features of claim 9. The advantages resulting for the
sealing element correspond to the advantages of the
arrangement.
The arrangement is used in an especially advantageous manner in
an axial-flow, stationary gas turbine whose rotating blades
arranged on the rotor are each secured against an axial
displacement by sealing elements.
The invention is explained with reference to an exemplary
embodiment shown in a drawing. Further advantages and features
follow from the explanation.
Fig. 1 shows the arrangement for axially securing rotating
blades in a rotor according to the prior art,
Fig. 2 shows the cross-sectional view according to fig. 1 along
section line II-II,
Fig. 3 shows the sealing element according to the invention in
a plan view, and
Fig. 4 shows, in an alternative configuration, a further
sealing element according to the invention in cross
section.
Fig. 3 shows a detail of the front-end plan view of the shaft
collar 21, formed by a rotor disk 19, of a rotor 23 of a gas
turbine. At its outer circumference 52, the rotor 23, which is
rotatable about the rotation axis 50, has rotating-blade
retaining slots 12 which are distributed over the circumference
U and extend in the axial direction and into which a respective
rotating blade 14 having a blade root 54 designed to correspond
to the rotating-blade retaining slot 12 can be pushed. A
rotating blade 14 is already

PCT/EP2006/065512 - 8 -
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pushed into place in the rotating-blade retaining slot 12 shown
centrally in fig. 3. As in the prior art shown in figs 1 and 2,
an axially extending projection 58 or widened portion having an
encircling slot 2 0 which is open radially outward therein is
arranged on a front end of the rotor disk 19 or on a front-end
side face 56 of the shaft collar 21. The slot 20 is arranged,
for example, radially further on the inside than the rotating-
blade retaining slots 12. The rotating blade 14 has a platform
2 8 which is arranged between the blade root 54 and the profiled
airfoil and on whose underside a securing slot 24, open toward
the encircling slot 20, is provided and is at the same time
located opposite the latter. In a manner analogous to the prior
art, a sealing element 42 is inserted into the endlessly
encircling slot 20 and into the securing slot 24, said sealing
element securing the rotating blade 14 against a displacement
along the rotating-blade retaining slot.
In contrast to the closest prior art, each sealing element 42,
as shown in fig. 3, completely covers the front-end opening of
one of the rotating-blade retaining slots 12 and thus secures
in each case the relevant rotating blade 14 against a
displacement along the rotating-blade retaining slot 12.
If necessary, as in the prior art, the sealing elements 42 may
also be distributed over the circumference in such a way that
one half of each sealing element 42 secures one of the rotating
blades 14.
As in the prior art, a fully fitted ring of sealing elements 42
forms a sealing ring which separates a region 37 through which
a coolant can flow from a further region 39 in which a hot gas
can possibly appear.
In order to secure the sealing element 42 against a
displacement in the circumferential direction U, said sealing
element 42 comprises

PCT/EP2006/065512 - 9 -
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a sheet-metal strip 60. The sheet-metal strip 60 is preferably
provided at the inner end 61 of the sealing element 42 and, in
an identical manner as in the prior art, is fastened to the
sealing element 42. In deviation from the prior art, however,
the slots 40 necessary for this purpose and provided in the
sealing element 42 extend in the radial direction. The sheet-
metal strip 60 passed through these slots 40 and thus hooked to
the sealing element 42 is bent at right angles and is therefore
of essentially L-shaped design, provided the sheet-metal strip
60 is viewed in a plane essentially parallel to the sheet-
metal-like sealing element 42. In its extent, it has a first
leg 62 which extends in the circumferential direction U of the
rotor 23 and with which the sheet-metal strip 60 is fastened to
the sealing element 42. The second leg 64, extending inward in
the radial direction, of the sheet-metal strip 60 engages in a
securing pocket 66 which is provided on the side face 56 of the
shaft collar 21. On account of the shape of the sheet-metal
strip 60 bent at right angles and of its comparatively short
second leg 64, bending-up of the displacement securing
arrangement under centrifugal force can be avoided.
The securing pocket 66 is formed by two spaced-apart teeth 68
which project radially outward on the outer edge of the
projection 58. Of course, the securing pocket 66 could also be
formed by a recess 69, given a corresponding length of the
second leg 64.
Since the side regions of the second leg 64 bear against the
side walls, in each case extending in the radial direction, of
the securing pocket 66 or against the teeth 68, the sealing
element 42 according to the invention is reliably secured
against displacement in the circumferential direction U.
Although not shown, every second sealing element or also every
sealing element of the sealing ring can be secured by a sheet-
metal strip 60 against a displacement along

PCT/EP2006/065512 - 10 -
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the slot 20.
In an alternative configuration, fig. 4 shows the slot 20,
encircling at the front end, radially at the level of the
rotating-blade retaining slots 12. Radially further on the
inside, a further slot 70 which is open outward is provided in
a region adjacent to the shaft collar 21, for example in an
adjacent rotor disk 72. The sealing element 42 is inserted into
the inner slot 7 0 and has a hook 71 on its surface facing the
shaft collar, said hook 71 engaging in the outer slot 20. In
the process, it bears with its outer end 75 against the root 73
and/or against the neck of the rotating blade 14 at the front
end. In order to obtain an especially favorable configuration,
the distance, as viewed in the radial direction, between the
slot 2 0 and the point at which the sealing element 42 bears
against the root 73 is substantially smaller than the distance
of the slot 20 from the further slot 70. The force acting in
the axial direction on the sealing element 42 from the
displacement of the rotating blade 14 therefore acts over a
short distance or lever relative to the "pivot point" in the
region of the slot 20. The long distance or lever, which in
addition is locally thickened in section 74 for stiffening, is
provided in order to produce a sufficient counterforce in a
simple manner. In this case, the sealing element 42 is secured
against displacement in the circumferential direction in a
manner analogous to the configuration shown in fig. 3, the
teeth for reinforcing the front-end region of the shaft collar
21 being provided on the adjacent rotor disk 72.
On the whole, a novel arrangement 10 and securing of the
sealing elements is specified by the invention, in which the
sheet-metal strips provided for preventing a displacement of
the sealing elements in the circumferential direction are of L-
like shape and are supported on the rotor disk in the region of
the radially inner end of the sealing element.

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Patent claims
1. An arrangement (10) for axially securing rotating blades
(14) in a rotor (23),
comprising a shaft collar (21), on whose outer circumference
(52) rotating-blade retaining slots (12) running in the axial
direction of the rotor (23) are provided, in which rotating-
blade retaining slots (12) respective rotating blades (14)
having blade roots corresponding to the rotating-blade
retaining slots (12) are arranged,
comprising a projection (58) which is arranged on a front-end
side face (56) of the shaft collar (21) in the region of the
rotating-blade retaining slots (12) and in which an encircling
slot (20) which is open radially outward is provided,
wherein sheet-metal-like sealing elements (42) engaging in each
case in the encircling slot (20) are provided for axially
securing the rotating blades (14), said sealing elements (42)
forming a front-end sealing ring in the circumferential
direction (U),
wherein, to secure the sealing elements (42) against a
displacement in the circumferential direction (U), at least one
of the sealing elements (42) comprises a sheet-metal strip (60)
fastened to said sealing element (42),
characterized in that
the sheet-metal strip (60) is of essentially L-shaped design in
its extent,
wherein its first leg (62) extending in the circumferential
direction (U) is fastened to the sealing element (42) and its
second leg (64) extending inward in the radial direction
engages in a securing pocket (66) provided in the region of the
shaft collar (21).
2. The arrangement (10) as claimed in claim 1, in which at
least every second sealing element (42) has a sheet-metal strip
(60) of identical construction to the sheet-metal strip and

PCT/EP2006/065512 - lla -
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intended for securing against its displacement in the
circumferential direction (U) , which sheet-metal strip (60)
engages in a respective securing pocket (66) provided for this
purpose and arranged on the side face (56) of the shaft collar
(21) .

PCT/EP2006/065512 - 12 -
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3. The arrangement (10) as claimed in claim 1 or 2, in which
the side regions of the second leg (64) of the sheet-metal
strip (60) bear against the respective side walls, extending in
the radial direction, of the securing pocket (66).
4. The arrangement (10) as claimed in claim 1, 2 or 3, in
which the securing pocket (66) is formed by two spaced-apart
teeth (68) arranged on the projection (58).
5. The arrangement (10) as claimed in one of the preceding
claims, in which the slot (20) encircling at the front end is
arranged radially further on the inside with respect to the
rotating-blade retaining slots (12).
6. The arrangement (10) as claimed in claim 5, in which a
securing slot (24) arranged in each rotating blade (14) is
provided on an underside (26) of a platform (28) of the
rotating blade (14), and the sealing element (42) engages in
said securing slot (24).
7. The arrangement (10) as claimed in one of the preceding
claims, in which the shaft collar (21) is formed by a rotor
disk (19).
8. The arrangement (10) as claimed in one of claims 1 to 4,
in which the slot (20) encircling at the front end is arranged
radially at the level of the rotating-blade retaining slots
(12), and a further slot (70) which is open outward is provided
radially further on the inside, the sealing element (42)
engaging in both slots (20, 70) and bearing against the root of
the rotating blade at the front end.

PCT/EP2006/065512 -13-
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Patent claims
9. A sheet-metal-like sealing element (42) having a sheet-
metal strip (60) which can be fastened therein, in particular
for an arrangement (10) as claimed in one of claims 1 to 8,
which sheet-metal strip (60) , for fastening to the sealing
element (42), extends through two slots (40) provided in the
sealing element (42),
characterized in that
the sheet-metal strip (60) is of essentially L-shaped design in
its extent,
wherein its first leg (62) extending in the circumferential
direction (U) - as viewed in the fitted position of the sealing
element (42) - is fastened to the sealing element (42) and its
second leg (64) extends inward in the radial direction - as
viewed in the fitted position of the sealing element (42).
10. The use of an arrangement (10) as claimed in one of claims
1 to 8 or of a sealing element (42) as claimed in claim 9 for
securing rotating blades (14) of an axial-flow gas turbine.

An arrangement (10 is presented for axially securing
rotating blades (14) in a rotor, having a shaft collar (21) on whose
external circumference (52) rotating blade securing grooves (12)
which extend in the axial direction of the rotor are provided. At one
end side face (56) of the shaft collar (21) a projection is arranged :
in the region of the securing grooves, in which projection a
circumferential groove (20) which is open radially towards the outsid is provided and said projection having securing grooves (24) which
are arranged in each rotating blade (14), sheet-metal-shaped sealing
element (42) which each engage in the circumferential groove (20) and
in the securing groove (24) and form an end side sealing ring in the
circumferential direction (U) being provided for axially securing the
rotating blades (14),and at least one of the sealing elements (42) cor
mprising a sheet metal strip (60) which is attached to said sealing r:
elements (42) against displacement in the circumferential
direction (U). It is proposed that the sheet metal strips (60)
which are attached to the radially inner end of the sealing element
(42) be shaped in an L-like manner and be
supported on the rotor disc (19).

Documents:

00764-kolnp-2008-abstract.pdf

00764-kolnp-2008-claims.pdf

00764-kolnp-2008-correspondence others.pdf

00764-kolnp-2008-description complete.pdf

00764-kolnp-2008-drawings.pdf

00764-kolnp-2008-form 1.pdf

00764-kolnp-2008-form 2.pdf

00764-kolnp-2008-form 3.pdf

00764-kolnp-2008-form 5.pdf

00764-kolnp-2008-gpa.pdf

00764-kolnp-2008-international exm report.pdf

00764-kolnp-2008-international publication.pdf

00764-kolnp-2008-international search report.pdf

00764-kolnp-2008-pct priority document notification.pdf

00764-kolnp-2008-pct request form.pdf

00764-kolnp-2008-translated copy of priority document.pdf

764-KOLNP-2008-(28-02-2013)-ABSTRACT.pdf

764-KOLNP-2008-(28-02-2013)-ANNEXURE TO FORM-3.pdf

764-KOLNP-2008-(28-02-2013)-CLAIMS.pdf

764-KOLNP-2008-(28-02-2013)-CORRESPONDENCE.pdf

764-KOLNP-2008-(28-02-2013)-DESCRIPTION (COMPLETE).pdf

764-KOLNP-2008-(28-02-2013)-DRAWINGS.pdf

764-KOLNP-2008-(28-02-2013)-FORM-1.pdf

764-KOLNP-2008-(28-02-2013)-FORM-2.pdf

764-KOLNP-2008-(28-02-2013)-OTHERS.pdf

764-KOLNP-2008-(28-02-2013)-PETITION UNDER RULE 137.pdf

764-KOLNP-2008-CORRESPONDENCE OTHERS 1.1.pdf

764-KOLNP-2008-CORRESPONDENCE OTHERS 1.2.pdf

764-kolnp-2008-form 18.pdf

764-KOLNP-2008-OTHERS.pdf

764-KOLNP-2008-PRIORITY DOCUMENT.pdf

abstract-00764-kolnp-2008.jpg


Patent Number 260108
Indian Patent Application Number 764/KOLNP/2008
PG Journal Number 14/2014
Publication Date 04-Apr-2014
Grant Date 31-Mar-2014
Date of Filing 21-Feb-2008
Name of Patentee SIEMENS AKTIENGESELLSCHAFT
Applicant Address WITTELSBACHERPLATZ 2, 80333 MUNCHEN
Inventors:
# Inventor's Name Inventor's Address
1 DIETER BRILLERT ALTER WEG 30 63110 RODGAU
2 ARMIN HULFENHAUS GOETHESTR. 52, 40764 LANGENFELD
3 CLAUS VOGELIN GRACHT 192, 45472 MULHEIM AN DER RUHR
4 HARALD HOELL WOLFGRABENSTR. 56, 63607 WACHTERSBACH
PCT International Classification Number F01D 5/32, F01D 5/30
PCT International Application Number PCT/EP2006/065512
PCT International Filing date 2006-08-21
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 102005042597.6 2005-09-07 Germany