英語 での Electromagnetic force の使用例とその 日本語 への翻訳
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Using the mesh in Fig. 2, the measurement error between the electromagnetic force acting on the magnet and the electromagnetic force acting on the test piece is calculated to be 51.5.
Features of this development 1 High-strength coil structure that bears the electromagnetic force acting on the superconducting wire materials with the coil surface Metallic superconducting coils can withstand electromagnetic force up to around 300 to 400 MPa Note 3.
In the case of axial torsion vibration caused by torque and the noise of gears meshing, torque versus time variations are important, but the electromagnetic force distribution itself does not make any contribution.
Vibration Characteristics Analysis of an Induction Motor In this example, electromagnetic force generated in the induction motor stator core is obtained, and an example of evaluating sound pressure by linking it with the eigenmode of th….
Accurately obtaining electromagnetic force, which is an excitation force in electrical equipment, will become such a basic part of the process that I always have expectations for JMAG.
The newly developed coil has a structure that can withstand electromagnetic force of approximately 2,000 MPa, making it the world's strongest superconducting coil to date.
The name is designed to always remind people that the Replica Watches is designed to withstand greater than 1000 gaussian electromagnetic force.
The less measurable physical properties, such as gravity waves and the weak electromagnetic force, are merely so because they expend a significant portion of their energy into the higher dimensions.
In addition, the analysis results for the magnetic field and electromagnetic force produced using JMAG-Designer 10.3 by modeling the molten metal and superconducting magnets was compared to the test results.
The resonance point can be determined using structural analysis during product design. However, the excitation force-the electromagnetic force synthesized by the influence of the current pulsation caused by the magnetic circuit and the control-changes according to the operating state.
Superconducting coils have conventionally used a structure whereby the electromagnetic force is borne by the wire materials. This meant that the electromagnetic force was limited by the strength of the superconducting wire materials, so development of coils that can withstand even stronger electromagnetic force was desired.
The first supersymmetric theories tried to combine the forces typical of elementary particles, in other words the electromagnetic force with a symmetry known as U(1), the weak force with symmetry SU(2) and the strong force with symmetry SU(3).
Michio Kaku once explained this in a lecture called,"The Universe in a Nutshell," where he says,"String theory is the simple idea that the four forces of the universe-- gravity, the electromagnetic force, and the two strong forces-- can be viewed as music.
Principle of the force balance method that enabled high precision of±0.5 mg to be achieved In the force balance method, the load is balanced with a mechanical balance mechanism using a positioning sensor and an electromagnetic force. The mass is obtained from the size of the force coil current required for balancing.
In particular, since the electromagnetic force on a motor has a different distribution depending on the shape of the motor such as the number of poles and the number of slots in the stator and its frequency order, it is useful to analyze the electromagnetic force distribution using finite element methods.
The new high-strength coil developed by Chubu Electric together with the Tohoku University High Field Laboratory for Superconducting Materials bears the electromagnetic force acting on the superconducting wire materials with the coil surface, so it can withstand an electromagnetic force of approximately 2,000 MPa.
In a superconducting state, a strong electromagnetic force tends to elongate the superconducting wire materials. Superconducting coils conventionally use a structure whereby this electromagnetic force is supported by the wire materials, so the strength of the electromagnetic force is limited by the strength of the wire materials.
Here, the measurement error of the electromagnetic force is calculated as a relative value by dividing the absolute value of electromagnetic force acting on the test piece by the absolute value of the difference between the electromagnetic force acting on the test piece and that of the magnet.
Chubu Electric Power and the Tohoku University High Field Laboratory for Superconducting Materials have jointly developed a revolutionary method(patent pending) for bearing the electromagnetic force acting on the superconducting wire materials with the coil surface. Furthermore, combination with insulating coating technology using liquid resin enabled successful development of a coil that can withstand electromagnetic force twice that of a conventional yttrium-based superconducting coil and six times that of a metallic superconducting coil, making it the world's strongest coil to date.
The copper coils in the suit should protect from the electromagnetic forces.