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Featured researches published by Q. F. Zhou.


Review of Scientific Instruments | 2012

Intense beams from gases generated by a permanent magnet ECR ion source at PKU

Haitao Ren; Shixiang Peng; P. N. Lu; Yan S; Q. F. Zhou; J. Zhao; Z. X. Yuan; Z. Y. Guo; J. E. Chen

An electron cyclotron resonance (ECR) ion source is designed for the production of high-current ion beams of various gaseous elements. At the Peking University (PKU), the primary study is focused on developing suitable permanent magnet ECR ion sources (PMECRs) for separated function radio frequency quadrupole (SFRFQ) accelerator and for Peking University Neutron Imaging Facility. Recently, other kinds of high-intensity ion beams are required for new acceleration structure demonstration, simulation of fusion reactor material irradiation, aviation bearing modification, and other applications. So we expanded the ion beam category from O(+), H(+), and D(+) to N(+), Ar(+), and He(+). Up to now, about 120 mA of H(+), 83 mA of D(+), 50 mA of O(+), 63 mA of N(+), 70 mA of Ar(+), and 65 mA of He(+) extracted at 50 kV through a φ 6 mm aperture were produced by the PMECRs at PKU. Their rms emittances are less than 0.2 π mm mrad. Tungsten samples were irradiated by H(+) or He(+) beam extracted from this ion source and H∕He holes and bubbles have been observed on the samples. A method to produce a high intensity H∕He mixed beam to study synergistic effect is developed for nuclear material irradiation. To design a He(+) beam injector for coupled radio frequency quadruple and SFRFQ cavity, He(+) beam transmission experiments were carried out on PKU low energy beam transport test bench and the transmission was less than 50%. It indicated that some electrode modifications must be done to decrease the divergence of He(+) beam.


Review of Scientific Instruments | 2010

The deuteron injector progress of the Peking University Neutron Imaging Facility project.

Haitao Ren; Shixiang Peng; M. Zhang; Q. F. Zhou; Zhizhong Song; Z. X. Yuan; P. N. Lu; R. Xu; J. Zhao; Jinxiang Yu; Yuanrong Lu; Z. Y. Guo; J. E. Chen

A deuteron radio frequency quadrupoles injector h has been developed at Peking University. A permanent magnetic electron cyclotron resonance (ECR) ion source is used in the injector system. A 50 keV 100 mA proton beam has been extracted from the ECR ion source and the measured normalized rms emittance is 0.11-0.14pi mm mrad. A deuteron beam has also been extracted at 50 kV with 83 mA total current and its emittance is less than 0.18pi mm mrad. The proton beam transmission has been investigated on a low energy beam transport test bench, and up to 93% transmission can be reached. The new injector with two solenoids has been designed and is being constructed. All the development results will be presented in this paper.


Review of Scientific Instruments | 2012

Deuteron injector for Peking University Neutron Imaging Facility project.

Haitao Ren; Shixiang Peng; P. N. Lu; Q. F. Zhou; Z. X. Yuan; J. Zhao; M. Zhang; Zhizhong Song; Jinxiang Yu; Z. Y. Guo; J. E. Chen

The deuteron injector developed for the PKUNIFTY (Peking University Neutron Imaging Facility) has been installed and commissioned at Peking University (PKU). The injector system must transfer 50 keV 50 mA of D(+) ion beam to the entrance of the 2 MeV radio frequency quadrupole (RFQ) with 10% duty factor (1 ms, 100 Hz). A compact 2.45 GHz permanent magnet electron cyclotron resonance (PMECR) ion source and a 1.36 m long low energy beam transport (LEBT) line using two solenoids was developed as the deuteron injector. A φ5 mm four-quadrant diaphragm was used to simulate the entrance of RFQ electrodes. The beam parameters are measured after this core with an emittance measurement unit (EMU) and a bending magnet for ion fraction analysis at the end of injector. During the commissioning, 77 mA of total deuteron beam was extracted from PMECR and 56 mA of pure D(+) beam that passed through the φ5 mm four-quadrant diaphragm was obtained at the position of RFQ entrance with the measured normalized rms emittance 0.12-0.16π mm mrad. Ion species analysis results show that the deuteron fraction is as high as 99.5%. All of the parameters satisfy PKUNIFTYs requirements. In this paper, we will describe the deuteron injector design and report the commissioning results as well as the initial operation.


Review of Scientific Instruments | 2010

Upgrade of the extraction system of permanent magnet electron cyclotron resonance ion source

M. Zhang; Shixiang Peng; Haitao Ren; Zhizhong Song; Z. X. Yuan; Q. F. Zhou; P. N. Lu; R. Xu; J. Zhao; Jinxiang Yu; J. E. Chen; Z. Y. Guo; Yuanrong Lu

A set of new ion extraction electrodes have been designed for the permanent magnetic electron cyclotron resonance ion source at Peking University to improve beam quality and transmission. PBGUNS has been used to optimize the extraction electrodes and simulate the beam behavior at the extraction region. The experiments showed that with the new system, the beam half divergence angle can be less than 40 mrad and the normalized rms emittance is about 0.13pi mm mrad when the extracted current is 100 mA at 50 keV in pulse mode. The voltage of the suppression electrode has great effect on beam divergence. The effect of the microwave power and gas flow is also studied.


Review of Scientific Instruments | 2014

Commissioning and operation of the deuteron injector for PKUNIFTY project.

Haitao Ren; Shixiang Peng; P. N. Lu; J. Zhao; Q. F. Zhou; Zhizhong Song; Z. X. Yuan; Jinxiang Yu; Z. Y. Guo; J. E. Chen

PKUNIFTY (PeKing University Neutron Imaging FaciliTY), a thermal neutron imaging facility based on a 2 MeV RFQ accelerator, has been constructed at Peking University. Its deuteron injector, which consists of a 2.45 GHz permanent magnet electron cyclotron resonance (PMECR) deuteron ion source and a two-solenoid low energy beam transport (LEBT), aims at producing and delivering 50 mA, 50 keV deuteron beam with a duty factor of 10% (1 ms, 100 Hz). In the preliminary tests of RFQ accelerator, the ECR ion source and LEBT are required to operate at various duty factors (from 1% to 10%). The deuteron ion source has been tested with different pulse widths for this reason. In order to optimize the transmission parameters, the beam current at the exit of RFQ as a function of solenoids tuning and steering magnets tuning are carefully studied. The beam emittance at the entrance of RFQ has been measured with space charge compensation by different argon gas (RG) pressure from 1.6 × 10(-4) Pa to 4.7 × 10(-3) Pa. The measuring results show the best compensating pressure is 3.5 × 10(-3) Pa with a minimal normalized rms emittance of 0.12 pi mm mrad. During the commissioning, we found the purity of deuteron gas is an important factor which severely affects ECR discharge and plasma intensity inside the ion source chamber. The detailed experimental results obtained during the commissioning are discussed in this paper.


Review of Scientific Instruments | 2014

Handling radiation generated during an ion source commissioning

Haitao Ren; J. Zhao; Shixiang Peng; P. N. Lu; Q. F. Zhou; Yizhuang Xu; Jia’er Chen; Tao Zhang; Ailin Zhang; Z. Y. Guo; J. E. Chen

Radiation is an important issue, which should be carefully treated during the design and commissioning of an ion source. Measurements show that X-rays are generated around the ceramics column of an extraction system when the source is powered up to 30 kV. The X-ray dose increases greatly when a beam is extracted. Inserting the ceramic column into a metal vacuum box is a good way to block X-ray emission for those cases. Moreover, this makes the online test of an intense H(+) ion beam with energy up to 100 keV possible. However, for deuteron ion source commissioning, neutron and gamma-ray radiation become a serious topic. In this paper, we will describe the design of the extraction system and the radiation doses of neutrons and gamma-rays measured at different D(+) beam energy during our 2.45 GHz deuteron electron cyclotron resonance ion source commissioning for PKUNIFTY (PeKing University Neutron Imaging FaciliTY) project at Peking University.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011

PKUNIFTY: A neutron imaging facility based on an RFQ accelerator☆

Yubin Zou; Weiwei Wen; Z. Y. Guo; Yuanrong Lu; Shixiang Peng; Kun Zhu; Xueqing Yan; Shuli Gao; J. Zhao; Hang Li; Q. F. Zhou; Haitao Ren; M. Zhang; P. N. Lu; Jimei Guo; Guoyou Tang; Dawei Mo; Jiaer Chen


Physics Procedia | 2013

Progress of PKUNIFTY – a RFQ Accelerator based Neutron Imaging Facility at Peking University☆

Z. Y. Guo; Yuanrong Lu; Yubin Zou; Kun Zhu; Shixiang Peng; J. Zhao; Shuli Gao; Weiwei Wen; Hang Li; Q. F. Zhou; Haitao Ren; P. N. Lu; Hongjin zeng; Sheng Wang; Guoyou Tang; Dawei Mo; Zhongxi Yuan; Dalin Xie; Xueqing Yan; Jiaer Chen


Archive | 2011

CONCEPTUAL DESIGN OF LINEAR INJECTOR FOR SSC OF HIRFL

Yuan He; Hongwei Zhao; Jiawen Xia; Minglei Kang; Zhi-Jun Wang; Chen Xiao; Liepeng Sun; Wei Chang; Zhouli Zhang; Sheng Hu Zhang; X. F. Du; Yuanrong Lu; Q. F. Zhou; Yun Ma; Yaqing Yang; Jiaer Chen; Kun Zhu


Science China-physics Mechanics & Astronomy | 2011

Tuner design and RF test of a four-rod RFQ

Q. F. Zhou; Kun Zhu; Zhiyu Guo; Minglei Kang; Shuli Gao; Yuanrong Lu; Jiaer Chen

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