Patents Assigned to LM WP Patent Holdings A/S
  • Patent number: 10782128
    Abstract: The present disclosure relates to a method for detecting a fibre misalignment in an elongated structure, such as a wind turbine blade component. The elongated structure has a length along a longitudinal direction and comprises a plurality of stacked reinforcing fibre layers. The plurality of fibre layers comprises fibres having an orientation aligned, unidirectionally, substantially in the longitudinal direction. The method comprises scanning the elongated structure along at least a part of the length by emitting an x-ray beam in an angle compared to the orientation of the fibres. The method comprises detecting scattered rays, and determining an intensity of the detected scattered rays. The method comprises estimating a size of the fibre misalignment based on the determined intensity.
    Type: Grant
    Filed: December 19, 2016
    Date of Patent: September 22, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Lars Nielsen, Klavs Jespersen
  • Patent number: 10781790
    Abstract: A bulkhead assembly for a wind turbine blade is described, wherein a pressure relief conduit is provided at the bulkhead to allow for pressure to equalise across the bulkhead. This helps to prevent faults or cracks in the bulkhead assembly due to differences in pressure on either side of the bulkhead. Furthermore, liquid traps and/or filter media can be accommodated in the conduit to prevent the passage of liquids or other matter across the bulkhead.
    Type: Grant
    Filed: September 11, 2018
    Date of Patent: September 22, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Aanchal Saini, Utsa Majumder, Christian Munk Christensen, Christian Roed Lysemose, Peter Hansen, Finn Kjaer Nielsen
  • Patent number: 10781834
    Abstract: A transportation and storage system for at least two wind turbine blades include a first wind turbine blade and a second wind turbine blade is described. The wind turbine blades each have a root end and a tip end. The system includes a packaging system adapted to place the first wind turbine blade so that the tip end of the first wind turbine blade points in a first direction, with the tip end of the second wind turbine blade pointing in a second direction, which is substantially opposite to the first direction. The tip end of the second wind turbine blade extends beyond the root end of the first wind turbine blade, and the tip end of the first wind turbine blade extends beyond the root end of the second wind turbine blade, when the first and the second wind turbine blades are arranged in the packaging system.
    Type: Grant
    Filed: June 16, 2016
    Date of Patent: September 22, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Jacobus Van Der Zee, Anders Nielsen, Kenth Skipper-Mortensen
  • Patent number: 10774815
    Abstract: A wind turbine blade comprising a system for monitoring the deflection of a wind turbine blade is described. The system comprises a wireless range-measurement system, having at least one wireless communication device located towards the root end of the blade and at least one wireless communication device located towards the tip end of the blade, the communication devices comprising antennas polarized substantially perpendicular to the suction side of the blade and substantially parallel to the leading edge of the wind turbine blade.
    Type: Grant
    Filed: February 21, 2017
    Date of Patent: September 15, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Shuai Zhang, Claus Byskov, Gert Frølund Pedersen
  • Patent number: 10746158
    Abstract: A wind turbine blade (10) for a rotor of a wind turbine (2) having a substantially horizontal rotor shaft is disclosed. The rotor comprises a hub (8), from which the blade (10) extends substantially in a radial direction when mounted to the hub (8), the blade having a longitudinal direction (r) with a tip end (16) and a root end (14) and a transverse direction. The wind turbine blade comprises a blade shell defining a profiled contour of the blade and having an inner shell wall, wherein the blade is provided with a bulkhead mounted to the inner shell wall at the root end of the blade via an attachment part, the bulkhead comprising a first side and a second side. The attachment part is integrally formed with or connected to the bulkhead, and the attachment part comprises an elastomeric material.
    Type: Grant
    Filed: April 10, 2017
    Date of Patent: August 18, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventor: Kore Bjarke Berg
  • Patent number: 10731626
    Abstract: A wind turbine blade is described, as well as a trailing edge plate for a wind turbine blade. A flexible flow modulation device, e.g. an acoustic flap or a plurality of serrations, is arranged at the trailing edge of a wind turbine blade, wherein the flexible device is coupled to at least one aerodynamic device, preferably vortex generators. As the flexible device is bent by action of flow over the wind turbine blade, the at least one aerodynamic device is deployed to provide for attached flow over the bent flexible device.
    Type: Grant
    Filed: December 18, 2014
    Date of Patent: August 4, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Carlos Arce, Martin Dahl, Jesper Madsen
  • Patent number: 10730247
    Abstract: A method of manufacturing a wind turbine blade component in form of a shear web is described. The method comprising the steps of: a) providing a pre-manufactured shear web body having a first side and a second side as well as a first end and a second end; b) providing a first pre-formed web foot flange comprising a fibre-reinforcement material; c) arranging a first fibre layer from the first pre-formed web foot flange and to a part of the first side of the shear web body; d) arranging a second fibre layer from the first pre-formed web foot flange and to a part of the second side of the shear web body; e) supplying a resin to said first fibre layer and second fibre layer simultaneous with or subsequent to steps c) and d); and f) allowing the resin to cure so as to form the shear web.
    Type: Grant
    Filed: December 1, 2014
    Date of Patent: August 4, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Tim Moller Hansen, Kim Ansholm Rasmussen, Christian Lundsgaard-Larsen, Steven Hauge Pedersen
  • Patent number: 10723089
    Abstract: A method of manufacturing a composite laminate structure of a wind turbine blade part is performed by resin transfer moulding. The fibre-reinforcement material is impregnated with liquid resin in a mould cavity which includes a rigid mould part having a mould surface defining a surface of the wind turbine blade part. The method includes alternately stacking on the rigid mould part: i) a number of fibre-reinforcement layers including electrically conductive fibres and ii) a flow strip layer in form of a layer of flow strips having a strip width and which are arranged so as to form voids having a void width between two juxtaposed strips. The method includes sealing a second mould part against the rigid mould part in order to form the mould cavity, optionally evacuating the mould cavity, supplying a resin to the mould cavity, and curing the resin to form the composite laminate structure.
    Type: Grant
    Filed: December 19, 2016
    Date of Patent: July 28, 2020
    Assignee: LM WP PATENT HOLDINGS A/S
    Inventors: Lars Nielsen, Klavs Jespersen
  • Patent number: 10723090
    Abstract: The present disclosure provides a method of manufacturing a composite laminate structure of a wind turbine blade part by means of resin transfer moulding, preferably vacuum-assisted resin transfer moulding. In a resin transfer moulding, fibre-reinforcement material is impregnated with liquid resin in a mould cavity. The mould cavity comprises rigid mould part having a mould surface defining a surface of the wind turbine blade part. The method comprises alternately stacking on the rigid mould part: i. a number of unidirectional fibre-reinforcement layers comprising electrically conductive fibres, such as carbon fibres, and ii.
    Type: Grant
    Filed: February 21, 2017
    Date of Patent: July 28, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Lars Nielsen, Klavs Jespersen
  • Patent number: 10718314
    Abstract: The present invention relates to a modular transportation and storage system for a wind turbine rotor blade comprising a first and a second tip end receptacle (112, 160) for supporting the blade, a tip end frame (111) for receiving any of the first and second tip end receptacles, wherein the first tip end receptacle (112) is adapted for supporting the blade (10) in a substantially vertical position, and wherein the second tip end receptacle (160) is adapted for supporting the blade in a substantially horizontal position.
    Type: Grant
    Filed: April 11, 2016
    Date of Patent: July 21, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Jacobus Van Der Zee, Anne Rothe Hakansson
  • Patent number: 10690113
    Abstract: The present disclosure relates to a wind turbine blade. The wind turbine blade comprises a load carrying structure made of a fibre-reinforced polymer material. The load carrying structure comprises a plurality of stacked fibre layers or fibre mats in a thickness of the load carrying structure. The plurality of said stacked fibre layers or fibre mats are made of hybrid material comprising both carbon fibres and glass fibres and having a carbon fibre ratio. The carbon fibre ratio is defined as a volume of the carbon fibres divided by a total volume of the glass fibres and carbon fibres. At least a number of said stacked fibre layers or fibre mats have different carbon fibre ratios such that the carbon fibre ratio of fibre material varies through the thickness of the load carrying structure.
    Type: Grant
    Filed: December 19, 2016
    Date of Patent: June 23, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Lars Nielsen, Klavs Jespersen
  • Patent number: 10690117
    Abstract: The present invention relates to a method for controlling a wind turbine, in particular a method for controlling pitch of one or more blades of a wind turbine and related system. The method comprises collecting first data indicative of a dynamic condition of the first wind turbine blade and the rotor, the first data comprising rotor data and first deflection data, the rotor data being indicative of the azimuth position and rotational velocity of the rotor in a rotor plane perpendicular to the rotor axis, and the first deflection data being indicative of the position, speed and acceleration of one or more parts of the first wind turbine blade.
    Type: Grant
    Filed: March 1, 2017
    Date of Patent: June 23, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventor: Mark Olaf Slot
  • Patent number: 10662807
    Abstract: Method and blade monitoring system for monitoring bending moment of a wind turbine blade. The method comprises obtaining a first sensor set signal indicative of a first bending moment at a first sensor position different from the tip end along the longitudinal axis of the wind turbine blade, and estimating a bending moment at a first estimation position along the longitudinal axis based on the first sensor set signal, wherein the first sensor position is different from the first estimation position along the longitudinal axis. The blade monitoring system comprises a processing unit and an interface connected to the processing unit, the processing unit being configured for performing the method.
    Type: Grant
    Filed: January 5, 2017
    Date of Patent: May 26, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventor: Casper Skovby
  • Patent number: 10639856
    Abstract: A method for manufacturing a part for a wind turbine blade, and in particular a part of a shear web for a wind turbine blade, is described. The method comprises pultruding the part, wherein an in-line shaping of the part is performed, to provide a part having a cross-sectional profile which varies in the longitudinal length of the part. Providing a shear web having a portion which varies in cross-sectional profile results in production of a wind turbine blade part which can be accurately controlled to have precise geometrical profile corresponding to a desired blade profile, with minimal waste of materials.
    Type: Grant
    Filed: March 30, 2015
    Date of Patent: May 5, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventor: Lars Nielsen
  • Patent number: 10589941
    Abstract: A transportation and storage system for at least two wind turbine blades and comprising a first wind turbine blade and a second wind turbine blade is described. The wind turbine blades each having a root end and a tip end, said system comprising a packaging system that is adapted to placing the first wind turbine blade so that the tip end of the first wind turbine blade points in a first direction, and placing the second wind turbine blade so that the tip end of the second wind turbine blade points in a second direction, which is substantially opposite to the first direction. The tip end of the second wind turbine blade extends beyond the root end of the first wind turbine blade, and the tip end of the first wind turbine blade extends beyond the root end of the second wind turbine blade, when the first and the second wind turbine blades are arranged in the packaging system.
    Type: Grant
    Filed: June 16, 2017
    Date of Patent: March 17, 2020
    Assignee: LM WP PATENT HOLDINGS A/S
    Inventor: Jacobus Van Der Zee
  • Patent number: 10584684
    Abstract: A wind turbine blade, extending longitudinally root end to tip end, having a load carrying structure, a shell body and a lightning protection system is described. The load carrying structure is fiber-reinforced polymer in a plurality of stacked layers comprising electrically conductive fibers. The lightning protection system comprises a lightning receptor arranged freely accessible in or on the shell body and a lightning down-conductor electrically connected to the lightning receptor and is configured to be electrically connected to a ground connection. The blade further comprises a potential equalisation system providing a potential equalising connection between a number of the electrically conductive fibers of the load carrying structure and the lightning protection system.
    Type: Grant
    Filed: December 19, 2016
    Date of Patent: March 10, 2020
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Lars Nielsen, Klavs Jespersen
  • Patent number: 10513810
    Abstract: A method of producing a single assembled longitudinally extending fibre layer for use in a later resin infusion process for manufacturing a fibre-reinforced composite structure is described including steps: a) providing a first fibre mat comprising unidirectional reinforcement fibres oriented in a longitudinal direction of the first fibre mat, b) providing a second fibre mat comprising unidirectional reinforcement fibres oriented in a longitudinal direction of the second fibre mat, c) arranging the first fibre mat and the second fibre mat so that unidirectional fibres of one end of the first fibre mat adjoin one end of the second fibre mat in a single plane at a common boundary, and d) splicing unidirectional fibres of the first fibre mat at one end of the first fibre mat to unidirectional fibres of the second fibre mat at one end of the second fibre mat in order to form a splicing joint.
    Type: Grant
    Filed: June 16, 2014
    Date of Patent: December 24, 2019
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Dhinagaran Ramachandran, Shalu Thadathazhath, Sathiyagopi Madurai, Rohin Sushil, Rajesh Aithal, Hannah Priyadarshini B, Mohammad Imdad Basha, Christian Lundsgaard-Larsen, Rasmus C Østergaard, Torben Krogsdal Jacobsen
  • Patent number: 10487662
    Abstract: A wind turbine blade 2 for a rotor has a longitudinal direction extending from a root region 26 to a blade region. The wind turbine blade 2 is formed of a fibre-reinforced polymer material comprising a polymer matrix and a first and a second reinforcement fibre material being embedded in the polymer matrix. The wind turbine blade further comprises a first region being reinforced predominantly with the first reinforcement fibre material, a second region being reinforced predominantly with the second reinforcement fibre material, and a transition region between the first and the second region. The first region extends in the root region 26 and the first reinforcement fibre material is a metal.
    Type: Grant
    Filed: April 11, 2012
    Date of Patent: November 26, 2019
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Martin Dahl, Bjarne Krab Mortensen, Benjamin Hornblow
  • Patent number: 10479034
    Abstract: A method of manufacturing a fibre-reinforced polymer object by means of vacuum-assisted resin transfer moulding (VARTM), wherein fibre material is impregnated with liquid resin in a mould cavity comprising a rigid mould part having a mould surface defining an outer surface of the object, is described. One or more pressure sensors are connected to resin inlets of the VARTM system. A control unit is used for controlling a polymer supply unit based on measured resin pressure and is adapted to adjusting a resin flow rate, if pressure measured by the pressure sensors is below a lower threshold level or above a higher threshold level.
    Type: Grant
    Filed: July 4, 2013
    Date of Patent: November 19, 2019
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Poul Erik Hansen, Harsha Tummala
  • Patent number: 10480483
    Abstract: A serrated panel (70) for a wind turbine blade is disclosed. The panel (70) is configured to be attached to the trailing edge of a blade to form a plurality of serrations (71) at the trailing edge of the blade. The serrated panel comprises a base part (72) for attaching the panel (70) to the trailing edge of the blade. An exterior surface (78) of the base part comprises a corrugated surface in direction between longitudinal ends of the panel such that the exterior surface comprises crests (82) aligned substantially with midpoints of bases (80) of the serrations (71) and valleys (83) aligned substantially between serrations (71).
    Type: Grant
    Filed: February 7, 2017
    Date of Patent: November 19, 2019
    Assignee: LM WP PATENT HOLDING A/S
    Inventors: Jesper Høeg, Kim Ansholm Rasmussen, Casper Kildegaard, Kristian Lehmann Madsen