In this paper, the principle of energy storage of the mechanical elastic energy storage technology on spiral spring is stated, the method of improving the energy storage density is
As far as mechanical energy storage is concerned, in addition to pumped hydroelectric power plants, compressed air energy storage and flywheels which are suitable for large-size and medium-size applications, the latest research has demonstrated that also mechanical springs have potential for energy storage application [14].
In this work, we analyze the application potential of adequate FRPs for the storage and handling of mechanical energy and power. We demonstrate that the elastic deformation of certain FRPs in adequate shapes can give rise to energy storage and power handling systems with similar or even
In this paper, the principle of energy storage of the mechanical elastic energy storage technology on spiral spring is stated, the method of improving the energy storage density is discussed, and two kinds of section of spiral springs are designed, such as rectangular cross section and special cross section of spiral spring.
Although springs were initially used for motion control, it has emerged widely as an energy storage reservoir for elastic potential energy. The mechanical elastic energy storage technology in a flat spiral spring is a novel technology employed in various machineries.
Elastic energy storage technology balances supply and demand of energy. Spiral spring energy storage provides strong moment impact and rapid start. Spiral spring energy storage controls
Elastic energy storage using spiral spring can realize the balance between energy supply and demand in some applications. Continuous input–spontaneous output working style can provide simple energy sources for short-time energy supply, and provide strong moment impact and rapid start, or realize the energy conservation for reciprocating movement.
In this work, we analyze the application potential of adequate FRPs for the storage and handling of mechanical energy and power. We demonstrate that the elastic deformation of certain FRPs
To store energy from the grid into spiral torsion spring (STS) smoothly and efficiently via PMSM, a multi-objective control problem of flexible load''s vibration, PMSM''s torque ripple, and
Elastic energy storage using spiral spring can realize the balance between energy supply and demand in some applications. Continuous input–spontaneous output working style can provide simple energy sources for short-time energy supply, and provide strong moment impact and rapid start, or realize the energy conservation for reciprocating movement.
Elastic energy storage technology balances supply and demand of energy. Spiral spring energy storage provides strong moment impact and rapid start. Spiral spring energy storage controls energy output with uniform speed. Spiral spring energy storage harvests and stores random mechanical energy.
With the elastic energy storage–electric power generation system, grid electrical energy can drive electric motors to wind up a spiral spring group to store energy when power grid is adequate, and the stored energy can drive electric generators to generate electrical energy when power grid is insufficient.
Elastic energy storage using spiral spring can realize the balance between energy supply and demand in some applications. Continuous input–spontaneous output working style can provide
In this paper, the principle of energy storage of the mechanical elastic energy storage technology on spiral spring is stated, the method of improving the energy storage density is discussed,
Based on energy storage and transfer in space and time, elastic energy storage using spiral spring can realize the balance between energy supply and demand in many applications, such as energy adjustment of power grid. Continuous input–spontaneous output working style.
Spiral spring energy storage harvests and stores random mechanical energy. Harvesting and storing energy is a key problem in some applications. Elastic energy storage technology has the advantages of wide-sources, simple structural principle, renewability, high effectiveness and environmental-friendliness.
For the energy output process of a spiral spring, when a tightly wound spiral spring is freely released, the stored energy can create a strong impact moment to drive a load with a rapid start. Alternatively, with certain control mechanisms, the stored energy can be released with a uniform velocity.
Energy storage in elastic deformations in the mechanical domain offers an alternative to the electrical, electrochemical, chemical, and thermal energy storage approaches studied in the recent years. The present paper aims at giving an overview of mechanical spring systems’ potential for energy storage applications.
A power generation system based on the coupling of a flat spiral spring with a double-fed motor was theoretically proposed in [15-17] but not developed and tested experimentally. Grid electrical energy drives the motor to coil tightly the spring through the transmission system, in order to store deformation energy.
The mechanical property of the spiral spring is the functional relation of the input/output process between the rotational angular displacement and the corresponding torque. Literature depicted the mechanical property of a contact type spiral spring.
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