Beam energy dispersion adjusting mechanism for superconducting proton cyclotron
10390418 ยท 2019-08-20
Assignee
Inventors
- Yuntao Song (Anhui, CN)
- Jinxing Zheng (Anhui, CN)
- Manfen Han (Anhui, CN)
- Wuquan Zhang (Anhui, CN)
- Junsong Shen (Anhui, CN)
- Yonghua Chen (Anhui, CN)
- Feng Jiang (Anhui, CN)
- Bo Zhi (Anhui, CN)
- Ming Li (Anhui, CN)
- Xianhu Zeng (Anhui, CN)
Cpc classification
H05H2007/004
ELECTRICITY
H05H13/02
ELECTRICITY
International classification
Abstract
Disclosed is a beam energy dispersion adjusting mechanism for superconducting proton cyclotron. The adjusting mechanism includes a vacuum cavity, bases are symmetrically mounted on outer walls of four faces of the vacuum cavity in horizontal and vertical directions, an electric cylinder and a transmission mechanism are mounted on each of the four bases, a jaws block and a position fixing plate are correspondingly provided on an inner wall of the vacuum cavity at each face. The transmission mechanism includes an oil-free sleeve, a moving connecting rod onto which the position fixing plate is fixed, a corrugated pipe, and an electric cylinder connecting block whose both ends are screwed with the moving connecting rod and the electric cylinder, the jaws block is fixedly connected with the position fixing plate. The disclosure utilizes the electric cylinder to drive the jaws block to complete specified linear displacement, and satisfies back-end beam quality requirements.
Claims
1. A beam energy dispersion adjusting mechanism for a superconducting proton cyclotron, comprising a vacuum cavity; wherein bases are symmetrically mounted on four sides of an outer wall of the vacuum cavity; an electric cylinder and a transmission mechanism are mounted on each of the four bases; a jaws block and a position fixing plate are correspondingly provided on an inner wall of the vacuum cavity at each face; the transmission mechanism comprises an oil-free sleeve, a moving connecting rod, a corrugated pipe and an electric cylinder connecting block; both ends of the electric cylinder connecting block are respectively connected with the moving connecting rod and the electric cylinder through threads; the position fixing plate is fixed onto the moving connecting rod; and the jaws block is fixedly connected with the position fixing plate.
2. The beam energy dispersion adjusting mechanism according to claim 1, wherein a front cover and a rear cover are respectively mounted on a first side and a second side of the vacuum cavity; a lower part of the vacuum cavity is mounted on a support device; the support device comprises an upper support square tube and a lower support square tube; and the upper support square tube and the lower support square tube are connected through a screw.
3. The beam energy dispersion adjusting mechanism according to claim 1, wherein the oil-free sleeve is fixed onto the inner wall of the vacuum cavity; both ends of the corrugated pipe are respectively fixed to the outer wall of the vacuum cavity and the electric cylinder connecting block through flanges; and the moving connecting rod is provided within the corrugated pipe and the oil-free sleeve.
4. The beam energy dispersion adjusting mechanism according to claim 1, wherein the jaws block is insulated from the position fixing plate by a non-metallic material coated on a surface of the jaws block; the position fixing plate is mounted on a guide rod; and the guide rod is fixed onto the inner wall of the vacuum cavity.
5. The beam energy dispersion adjusting mechanism according to claim 1, wherein the electric cylinder drives the moving connecting rod so as to drive the jaws block to perform a linear motion.
6. A method for adjusting the beam energy dispersion adjusting mechanism of claim 1, comprising: 1) connecting the electric cylinder to a controller; reading a positional data from a database and sending a position command to the electric cylinder by the controller; 2) performing a corresponding action and driving the moving connecting rod by the electric cylinder according to the position command so as to drive the jaws block to perform the linear motion; and 3) independently driving the each jaws block placed in the horizontal and vertical directions by the electric cylinder; and recording a linear displacement of the jaws block through a self-contained encoder of the electric cylinder and feeding it back into the controller, so as to control the energy spread of proton beam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to facilitate the understanding of those skilled in the art, the present disclosure will be further described below in combination with the accompanying drawings.
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE DISCLOSURE
(5) The technical solution of the present disclosure will be clearly and completely described below with reference to the embodiments. It is obvious that the described embodiments are only a part of the embodiments of the present disclosure, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present disclosure without creative efforts are within the scope of protection of the present disclosure.
(6) As shown in
(7) Bases 4 are symmetrically mounted on outer walls of the vacuum cavity 1 at four faces, and an electric cylinder 5 and a transmission mechanism are mounted on each of the four bases 4; and a jaws block 6 and a position fixing plate 7 are correspondingly provided on an inner wall of the vacuum cavity 1 at each face.
(8) As shown in
(9) As shown in
(10) As shown in
(11) The specific working principle of the present disclosure is as follows: the electric cylinder 5 is connected to a controller, the controller reads positional data from a database and sends a position command to the electric cylinder 5; the electric cylinder 5 makes a corresponding action and drives the moving connecting rod 11 to drive the linear motion of the jaws block 6; two sets of jaws blocks in the present disclosure are respectively placed in the horizontal and vertical directions, respectively adjusting the energy spread of proton beams in the two directions, and each jaws block is independently driven by the electric cylinder, and the electric cylinder has a self-contained encoder which can record the linear displacement of the jaws block and feed it back into the control system so as to precisely control the energy spread of proton beam and to obtain an ideal Bragg peak.
(12) The preferred embodiments of the disclosure disclosed above are merely illustrative of the disclosure. The preferred embodiments have not specified all the details, and the present disclosure is not limited to the above-described specific embodiments. Obviously, many modifications and variations can be made according to the contents of the disclosure. These embodiments are selected and specifically described to explain the principle and practical applications of the disclosure, such that those skilled in the art can better understand and use the disclosure. The disclosure is only limited 1w the claims and their full scopes and equivalents.