This application claims the priority of Chinese Patent Application No. 201110210439.3, filed on Jul. 26, 2011 in the SIPO (State Intellectual Property Office of the P.R.C). Further, this application is the National Phase application of International Application No. PCT/CN2012/079204 filed Jul. 26, 2012, which designates the United States and was published in Chinese.
The present invention relates to an object positioning system, particularly to a contactless system for positioning an object having six degrees of freedom in space.
Precise and quick positioning of an object having six degrees of freedom in space, represented by a silicon table and mask table of a lithography machine, is a necessary condition for implementing the precise movement control of the object. Currently, the object positioning in a space generally adopts a photoelectric encoder, a grating ruler, a magnetic encoder, a ultrasonic sensor, a vision sensor, a quadrant, an electric eddy current sensor, a laser interferometer and a laser ranging sensor, etc., but in positioning systems constituted by these sensors, either the sensor has a cable connection (the cable inevitably interferes with movement precision), or the positioning system has disadvantages of high cost and large volume. Therefore, there is desperately needed a contactless system for positioning an object in space without a cable connection while having characteristics of great positioning precision, expedited response, simple structure, and reduced cost.
An object of the present invention is to suggest a contactless system for positioning an object having six degrees of freedom in space, of great positioning precision, expedited response, and simple structure, with respect to the technical requirements for a silicon table and mask table of an existing lithography machine.
The technical solution of the present invention is as follows:
A two-dimensional position-sensitive sensor-based system for positioning an object having six degrees of freedom in space, characterized in that the system comprises a semiconductor laser, an optical fiber collimator, an input optical fiber, an optical fiber splitter, a first output optical fiber, a first filter plate, a first PSD sensor, a second output optical fiber, a second filter plate, a second PSD sensor, a third output optical fiber, a third filter plate, a third PSD sensor and a signal processing system; wherein laser emitted by the semiconductor laser is irradiated onto the optical fiber collimator, divided into three paths via the optical fiber splitter after being coupled into the input optical fiber by the optical fiber collimator, and then transmitted through the first output optical fiber, the second output optical fiber and the third output optical fiber, respectively, and received by the first PSD sensor, the second PSD sensor, and the third PSD sensor after being filtered out by the first filter plate, the second filter plate, and the third filter plate, respectively, while the positions of laser spots on the three PSD sensors are processed by the signal processing system; and wherein, the first PSD sensor , the second PSD sensor, and the third PSD sensor are corresponding to the three different side faces of an object to be measured, respectively; and the optical fiber collimator, the input optical fiber, the optical fiber splitter, the first output optical fiber, the second output optical fiber and the third output optical fiber are fixed on the object to be measured.
In the above technical solution, the semiconductor laser, the first filter plate , the second filter plate , the third filter plate, the first PSD sensor, the second PSD sensor, and the third PSD sensor are fixed on an external support.
The present invention has the following advantages and prominent effects: since the optical fiber collimator, the input optical fiber, the optical fiber splitter, the first output optical fiber, the second output optical fiber and the third output optical fiber have no cable connection with any object apart from the object to be measured, except internal connections. Thus, the system is a contactless positioning system which can avoid any effect of cables on object movement precision, and has such characteristics as great positioning precision, expedited response, simple structure, and reduced cost, etc.
1-semiconductor laser; 2-optical fiber collimator; 3-input optical fiber; 4-optical fiber splitter; 5-first PSD sensor; 6-first filter plate; 7-first output optical fiber; 8-second PSD sensor; 9-second filter plate; 10-second output optical fiber; 11-third PSD sensor; 12-third filter plate; 13-third output optical fiber; 14-object to be measured; 15-external support.
The principle, structure and working process of the present invention will be further described below in conjunction with the drawings.
As shown in
The optical fiber collimator 2, the input optical fiber 3, the optical fiber splitter 4, the first output optical fiber 7, the second output optical fiber 10 and the third output optical fiber 13 are fixed on the object to be measured 14.
The first PSD sensor 5, the second PSD sensor 8, and the third PSD sensor 11 are fixed on an external support 15, and are corresponding to the three different side faces of the object to be measured.
Since each PSD sensor can obtain two pieces of movement information of the object to be measured, the three PSD sensors can obtain six pieces of movement information altogether, and by using the six pieces of movement information, the position and orientation of the six degrees of freedom in space, of the object to be measured can be determined through a simple kinematics calculation.
Number | Date | Country | Kind |
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2011 1 0210439 | Jul 2011 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2012/079204 | 7/26/2012 | WO | 00 | 2/27/2014 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/013628 | 1/31/2013 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5418611 | Huang et al. | May 1995 | A |
7733477 | Tan et al. | Jun 2010 | B2 |
20020011576 | Cho et al. | Jan 2002 | A1 |
20030011787 | Cho et al. | Jan 2003 | A1 |
20070085027 | Baxter et al. | Apr 2007 | A1 |
20100053637 | Isogai et al. | Mar 2010 | A1 |
Number | Date | Country |
---|---|---|
2884141 | Mar 2007 | CN |
101382416 | Mar 2009 | CN |
101738161 | Jun 2010 | CN |
101968341 | Feb 2011 | CN |
102410836 | Apr 2012 | CN |
200842307 | Nov 2008 | TW |
Entry |
---|
Sun Changku et al., A Six Degree-of-freedom Measuring System, Chinese Journal of Scientific Instrument, Aug. 1998, pp. 362-365, vol. 19, China Academic Journal Electronic Publishing House, China. |
Eui Won Bae et al., Multi-degree-of-freedom displacement measurement system for milli-structures, Measurement Science and Technology, Aug. 16, 2001, pp. 1495-1502, vol. 12, I0P Publishing Ltd., UK. |
Kuang Cui-Fang et al., Methods for simultaneously measuring five-dimension information by laser, Laser Technology, Jun. 2005, pp. 322-324, vol. 29, China Academic Journal Electronic Publishing House, China. |
Kuang Cui-Fang et al., Methods for simultaneously measuring six freedom degrees of objects, Laser Technology, Oct. 2005, pp. 491-493, vol. 29, China Academic Journal Electronic Publishing House, China. |
Feng Qi-Bo et al., Survey of Laser Methods for Simultaneously Measuring Multiple Parameters of CNC Machines, Laser & Infrared, Dec. 2000, pp. 331-333, vol. 30, China Academic Journal Electronic Publishing House, China. |
FengZhou Fang et al., Method for Determining the Six Degrees of Freedom of an Object in Space, Precise Aerospace Manufacturing Technology, 1998, pp. 37-38, vol. 34, China Academic Journal Electronic Publishing House, China. |
Zhigang Fan et al., Development of Multiple Degree of Freedom Technology, Journal of Applied Optics, Nov. 2003, pp. 1-4. vol. 24., China Academic Journal Electronic Publishing House, China. |
Zhang Dun, The Development of four-degree-of freedom Measuring Apparatus Base on Single-mode Fiber-coupled Laser Module, Dec. 2006, pp. 1-48, Master's thesis of Beijing Jiaotong University, China. |
Ye Shenghua et al., A spatial 5-DOF positioning system, Experiments and Measurements in fluid Mechanics, Jul. 1987, pp. 32-36, No. 2, China Academic Journal Electronic Publishing House, China. |
International Search Report mailed Nov. 15, 2012 for PCT/CN2012/079204. |
Number | Date | Country | |
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20140160495 A1 | Jun 2014 | US |