The following are the annotations for the reference numerals in the above Figures: 1—motor; 2—mounting rack; 3—moving rod; 4—rotors; 5—high-voltage contacts; 6—insulating frame; 7—pull rod; 8—compression spring; 9—position contact block; 10—limit switches; 11—control circuit board; 12—fixed frame; 13—fuse; 14—relay.
The further detailed description of an embodiment of the high-voltage automatic changeover switch according to this disclosure is provided below, without the purpose of limiting the scope of the claimed invention.
Referring to
Four spring guide posts are fixed on each of two opposite plates of the U-shaped insulating frame 6, four spring guide posts on the same plate being pair-to-pair arranged, the spring guide posts at the corresponding positions of two plates being pair-to-pair arranged. A compression spring 8 is sheathed on each spring guide post, one terminal of which is fixed to the plate and the other is fixed with a high-voltage contact 5. A mounting distance between two adjacent high-voltage contacts 5 on the same plate is 6 cm, and the mounting distance between any two high-voltage contacts 5 on two plates is not smaller than 5 cm. The foregoing mounting distance is usually in the range of 5 cm-10 cm or can be much bigger with the permission of the structure and volume, so that the voltage-resistance between the contacts is not less than 50 KV.
The mounting rack 2 is provided with a motor 1 thereon and an output shaft of the motor 1 is connected with a horizontal rod which extends into the U-shaped insulating frame 6 and a terminal portion of which is fixed with a moving rod 3 perpendicular thereto. Both ends of the moving rod 3 are fixed with a rotor 4 respectively, and said rotors 4 work in cooperation with the high-voltage contacts 5. Both sides of a contact surface between the high-voltage contact 5 and the rotor 4 are processed to have a circular arc slope and both ends of the rotor 4 are processed to an elliptic shape, thereby facilitating keeping good contact between the rotor 4 and the high-voltage contact 5. The rotor 4 and the high-voltage contact 5 are made of a material having a good electrically conductive performance and are coated with silver or gold to improve the electrically conductive performance. The rotors 4 are cylindrical, with a diameter of 10 mm. Usually, the diameter of the rotors 4 is greater than 8 mm so as to assure the pulse current allowed to pass through to be not less than 500 A. A compression spring 8 makes the contact between the high-voltage contact 5 and the rotor 4 more reliable. A position contact block 9 is mounted fixedly on the output shaft of the motor 1, and limit switches 10a, 10b are respectively provided on the mounting rack 2 and at both sides of the output shaft of the motor. The two limit switches 10a, 10b are mounted on the support by means of an elongate mounting hole and a bolt, and their positions are adjustable. The position contact block 9 works in cooperation with the two limit switches 10. During working, the motor 1 drives the moving rod 3 and two rotors 4 on the moving rod 3 to rotate, thereby causing the rotors 4 to connect or disconnect the high-voltage contacts 5 in pair.
Refer to
When a control signal is input to the control circuit board 11, the relay coil is attracted and the motor obtains a forward power supply and rotates forwardly to drive the rotor to cause the high-voltage contacts A1 and B1, A4 and B4 to be connected; meanwhile, the position contact block 9 on the moving rod contacts the limit switch 10a, and the limit switch 10a is disconnected and the motor stops rotation, the high-voltage contacts A1 and B1, A4 and B4 keeping connected. When the control signal is disconnected, the relay coil is released and the motor obtains a backward power supply and rotates backwardly to drive the rotor to cause the high-voltage contacts A2 and B2, A3 and B3 to be connected; meanwhile, the position contact block 9 on the moving rod leaves the limit switch 10a and contacts the limit switch 10b, and the limit switch 10a is closed and the limit switch 10b is disconnected, and the motor stops rotation, the high-voltage contacts A2 and B2, A3 and B3 keeping connected. Consequently, the control signal is connected or disconnected to realize connection or disconnection between different sets of high-voltage contacts, thereby realizing the automatic changeover function.
The high-voltage automatic changeover switch according to the present invention has a voltage-resistance of above 50 KV, allows a pulse current of not less than 500 A to pass through, has a good contact performance and a high stability, and is capable of realizing automatic switching. The high-voltage automatic changeover switch according to the present invention performs automatic switching of high voltages of the power sources in an accelerator system, so that the accelerator obtains electron beams with different energies. This plays an important role in expanding the applicable scope of the accelerator, updating and upgrading of an industry non-destructive testing system, custom container inspection system and high-energy CT system. The high-voltage automatic changeover switch according to the present invention is further applicable to the similar industry system in which high-voltage switching is required.
Although the particular description has been made for the present invention, those skilled in the art can modify the particular structure or conceive other equivalent structures. Accordingly, the present invention is not limited by the particular structure in the above embodiment, and the high-voltage automatic changeover switch according to the present invention can have other structures as long as the control circuit can control the rotation of the motor mounted on the support to fulfill the automatically switching of the high-voltage contact pair.
The above provides various aspects of embodiment of the invention. According to the contents disclosed by this disclosure, some similar and alternate solutions which can be obviously envisaged by those skilled in the art should fall within the scope of the claimed invention.
Number | Date | Country | Kind |
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200610098856.2 | Jul 2006 | CN | national |