Abstract:
The present disclosure relates to a turbine including a central axis, a variable pitch blade, and a frame link operably coupled with the central axis and the blade, the blade configured such that as the blade rotates about the central axis, the blade may be pivoted relative the frame link from a first position to a second position. The present disclosure also relates to a method for reducing the negative torque on a wind turbine including providing a turbine having variable pitch blade for rotation about a central axis, the blade operably coupled with the central axis via a frame link, and positioning the blade, frame link, and central axis, such that the blade is pivoted relative the frame link from a first position to a second position so as to reduce negative torque on the central axis caused by the blade heading generally into oncoming wind.
Abstract:
The present disclosure relates to a magnetic motor including a drive magnet, a motion magnet, and an acceleration field. The drive magnet includes magnetic shielding, typically on a portion thereof, altering the magnetic field of the drive magnet. In some embodiments, the motion magnet has a cross-section that is generally in the shape of a ‘V’ or ‘A’. The acceleration field is created by the interaction between the drive magnet and the motion magnet as the motion magnet is passed through the altered magnetic field of the drive magnet. The altered magnetic field of the drive magnet may often be near a first end of the drive magnet. In further embodiments, the motion magnet can be operably coupled to an output shaft and rotate around the central axis of the output shaft. The present disclosure, also relates to a device, including the magnetic motor, for generating energy from a turbine.
Abstract:
The present invention relates to a magnetic propulsion motor comprising a magnetic drive assembly comprising a drive magnet, a rotating hub, and a motion magnet attached to the rotating hub to rotate the motion magnet proximate to the magnetic drive assembly. A driving force is applied to the magnetic drive assembly, which causes the drive magnet to rotate to a position proximal to the motion magnet when the motion magnet is in a position proximate to the magnetic drive assembly. This arrangement exerts a repelling force on the motion magnet from the drive magnet as the motion magnet rotates away from the magnetic drive assembly. The rotation of the drive magnet also rotates the drive magnet to a position distal to the motion magnet as the motion magnet approaches the position proximate to the magnet drive assembly thereby minimizes the repelling force exerted on the motion magnet from the drive magnet as the motion magnet rotates towards the magnetic drive assembly.
Abstract:
The present disclosure relates to systems and methods for storing energy, such as wind energy, and/or generating generally efficient energy from hydrogen peroxide (H2O2). A method for creating electricity may include receiving hydrogen peroxide and decomposing the it to produce steam, which may be used to drive a steam engine. The method may include generating electricity from a wind turbine for use in the production of the hydrogen peroxide. The steam engine may be coupled to a magnetic drive assembly, which may include a first drive magnet having magnetic shielding on a portion thereof, a first motion magnet, and a first acceleration field created by the interaction between the first drive magnet and first motion magnet as the first motion magnet is passed through an altered magnetic field of the first drive magnet. The output of the magnetic drive assembly may be used to drive a generator for creating electricity.
Abstract translation:本公开涉及用于存储诸如风能的能量的系统和方法,和/或从过氧化氢(H 2 O 2)产生通常有效的能量。 用于产生电力的方法可以包括接收过氧化氢并将其分解以产生可用于驱动蒸汽发动机的蒸汽。 该方法可以包括从用于生产过氧化氢的风力涡轮发电。 蒸汽机可以耦合到磁驱动组件,该磁驱动组件可以包括在其一部分上具有磁屏蔽的第一驱动磁体,第一运动磁体和由第一驱动磁体和第一运动磁体之间的相互作用产生的第一加速度场 因为第一运动磁体通过第一驱动磁体的改变的磁场。 磁驱动组件的输出可用于驱动发电机以产生电力。
Abstract:
The present invention relates to a magnetic propulsion motor comprising a magnetic drive assembly comprising a drive magnet, a rotating hub, and a motion magnet attached to the rotating hub to rotate the motion magnet proximate to the magnetic drive assembly. A driving force is applied to the magnetic drive assembly, which causes the drive magnet to rotate to a position proximal to the motion magnet when the motion magnet is in a position proximate to the magnetic drive assembly. This arrangement exerts a repelling force on the motion magnet from the drive magnet as the motion magnet rotates away from the magnetic drive assembly. The rotation of the drive magnet also rotates the drive magnet to a position distal to the motion magnet as the motion magnet approaches the position proximate to the magnet drive assembly thereby minimizes the repelling force exerted on the motion magnet from the drive magnet as the motion magnet rotates towards the magnetic drive assembly.
Abstract:
The present invention relates to a magnetic propulsion motor comprising a magnetic drive assembly comprising a drive magnet, a rotating hub, and a motion magnet attached to the rotating hub to rotate the motion magnet proximate to the magnetic drive assembly. A driving force is applied to the magnetic drive assembly, which causes the drive magnet to rotate to a position proximal to the motion magnet when the motion magnet is in a position proximate to the magnetic drive assembly. This arrangement exerts a repelling force on the motion magnet from the drive magnet as the motion magnet rotates away from the magnetic drive assembly. The rotation of the drive magnet also rotates the drive magnet to a position distal to the motion magnet as the motion magnet approaches the position proximate to the magnet drive assembly thereby minimizes the repelling force exerted on the motion magnet from the drive magnet as the motion magnet rotates towards the magnetic drive assembly.
Abstract:
An apparatus and method for generating power from a fluid current. The apparatus can include a power drive assembly (200) for converting the flowing energy of a fluid current into rotational energy, an acceleration chamber (106) configured to increase an entering flow of fluid to an accelerated flow, and pontoons (102) for supporting at least a portion of the power drive assembly in the acceleration chamber, such that the power drive assembly is positioned to receive the flowing energy of the accelerated flow. The method may include accelerating a flow of fluid to an accelerated flow, positioning at least a portion of a power drive assembly within the accelerated flow, the power drive assembly configured for converting the flowing energy of a fluid current into rotational energy, and supporting the power drive assembly with pontoons, such that the power drive assembly may be floated on a moving body of fluid.
Abstract:
The present disclosure relates to a magnetic motor including a drive magnet, a motion magnet, and an acceleration field. The drive magnet includes magnetic shielding, typically on a portion thereof, altering the magnetic field of the drive magnet. In some embodiments, the motion magnet has a cross-section that is generally in the shape of a ‘V’ or ‘A’. The acceleration field is created by the interaction between the drive magnet and the motion magnet as the motion magnet is passed through the altered magnetic field of the drive magnet. The altered magnetic field of the drive magnet may often be near a first end of the drive magnet. In further embodiments, the motion magnet can be operably coupled to an output shaft and rotate around the central axis of the output shaft. The present disclosure, also relates to a device, including the magnetic motor, for generating energy from a turbine.
Abstract:
The present disclosure relates to a magnetic motor including a drive magnet, a motion magnet, and an acceleration field. The drive magnet includes magnetic shielding, typically on a portion thereof, altering the magnetic field of the drive magnet. In some embodiments, the motion magnet has a cross-section that is generally in the shape of a ‘V’ or ‘A’. The acceleration field is created by the interaction between the drive magnet and the motion magnet as the motion magnet is passed through the altered magnetic field of the drive magnet. The altered magnetic field of the drive magnet may often be near a first end of the drive magnet. In further embodiments, the motion magnet can be operably coupled to an output shaft and rotate around the central axis of the output shaft. The present disclosure, also relates to a device, including the magnetic motor, for generating energy from a turbine.
Abstract:
The present disclosure relates to a magnetic motor including a drive magnet, a motion magnet, and an acceleration field. The drive magnet includes magnetic shielding, typically on a portion thereof, altering the magnetic field of the drive magnet. In some embodiments, the motion magnet has a cross-section that is generally in the shape of a ‘V’ or ‘A’. The acceleration field is created by the interaction between the drive magnet and the motion magnet as the motion magnet is passed through the altered magnetic field of the drive magnet. The altered magnetic field of the drive magnet may often be near a first end of the drive magnet. In further embodiments, the motion magnet can be operably coupled to an output shaft and rotate around the central axis of the output shaft. The present disclosure, also relates to a device, including the magnetic motor, for generating energy from a turbine.