IP Library Granted Patent US 10,283,313
Granted Patent B2
US 10,283,313 · App. 15/145,107 · Granted May 7, 2019

X-ray generator and adjustment method therefor

Inventors: Masahiro Nonoguchi (Tachikawa, JP); Manabu Noguchi (Tachikawa, JP); Koichi Kato (Fussa, JP); Ryuji Nishida (Higashikurume, JP); Yuji Kusaka (Hokuto, JP); Masashi Kageyama (Hachioji, JP); Tomohiro Chaki (Tachikawa, JP)
Assignee: RIGAKU CORPORATION
H01J35/14H01J35/025H01J35/08H05G1/02H05G1/26H01J2235/081H01J2235/086H01J2235/088
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,283,313
App. No.
15/145,107
Granted
May 7, 2019
Kind
B2
Abstract

Provided are an X-ray generator capable of easily measuring a beam size of an electron beam on an electron target, and an adjustment method therefor. The X-ray generator includes an electron target including a first metal, a second metal different from the first metal, and a third metal different from the second metal, which are sequentially arranged side by side along a first direction in a continuous manner.

Claims (22)

1. An X-ray generator, comprising:

an electron target comprising a first metal, a second metal different from the first metal, and a third metal different from the second metal, which are sequentially arranged side by side along a first direction in a continuous manner;

an electron-beam generating unit configured to emit an electron beam to be radiated on the electron target;

an electron-beam adjusting unit, which is arranged between the electron-beam generating unit and the electron target, and is configured to adjust the electron beam emitted from the electron-beam generating unit;

an electron-beam deflecting unit, which is arranged between the electron-beam adjusting unit and the electron target, is configured to deflect the electron beam to be radiated on the electron target in the first direction and further comprising an electron beam cross-section shaping unit; and

an electron detector, which is arranged between the electron-beam adjusting unit and the electron target, and is configured to detect electrons emitted from the electron target

wherein the X-ray generator is configured to perform:

a first measurement including:

scanning, by the electron-beam deflecting unit, the electron beam so that a position of the electron beam on the electron target is moved from the first metal to the third metal; and

detecting, by the electron detector, the electrons emitted from the electron target at each of a plurality of the positions of the electron beam on the electron target;

test electron beam generation including generating, by the electron beam cross-section shaping unit, a test electron beam, of which a cross section on the electron target has a shape obtained by rotating the sectional shape of the electron beam on the electron target so that the first direction of the cross section of the test electron beam is coincident with a second direction, intersecting with the first direction, of the sectional shape of the electron beam; and

a second measurement including:

scanning, by the electron-beam deflecting unit, the test electron beam so that a position of the test electron beam on the electron target is moved from the first metal to the third metal; and detecting, by the electron detector, the electrons emitted from the electron target at each of a plurality of the positions of the test electron beam on the electron target.

2. An adjustment method for an X-ray generator, the X-ray generator comprising an electron target comprising a first metal, a second metal different from the first metal, and a third metal different from the second metal, which are sequentially arranged side by side along a first direction in a continuous manner, the adjustment method comprising:

performing a first measurement including:

scanning the electron beam so that a position of the electron beam on the electron target is moved in the first direction from the first metal to the third metal; and

detecting electrons emitted from the electron target at each of a plurality of the positions of the electron beam on the electron target; and

acquiring a first width of a cross section of the electron beam along the first direction based on results of detection in the performing of the first measurement; generating a test electron beam, of which a cross section on the electron target has a shape obtained by rotating the sectional shape of the electron beam on the electron target so that the first direction of the cross section of the test electron beam is coincident with a second direction, intersecting with the first direction, of the sectional shape of the electron beam;

performing a second measurement including:

scanning the test electron beam so that a position of the test electron beam on the electron target is moved in the first direction from the first metal to the third metal; and

detecting electrons emitted from the electron target at each of a plurality of the positions of the test electron beam on the electron target; and

acquiring a second width of the cross section of the electron beam along the second direction based on results of detection in the performing of the second measurement.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 3, 2016
From: NONOGUCHI, MASAHIRO; NOGUCHI, MANABU; KATO, KOICHI; NISHIDA, RYUJI; KUSAKA, YUJI; KAGEYAMA, MASASHI; CHAKI, TOMOHIRO
To: RIGAKU CORPORATION
Reel/Frame 038445/0104 →
Priority Claims (1)
JP 2015-096316 · May 11, 2015 · national
Continuity (1)
Related Publication 20160336140A1 · Nov 17, 2016