1. Technical Field
Embodiments of the present disclosure generally relate to device verification method, and more particularly to a computing device and method for correcting measurement instruments, such as dial indicators.
2. Description of Related Art
Some current measuring instruments can only measure one dial indicator at a time. Once a count of dial indicators is large, an operator needs to measure the dial indicators and corrects the dial indicators one by one. Thus the efficiency of measuring the dial indicators is low. Therefore, an improved verification method is desirable to address the aforementioned issues.
In general, the term “module,” as used herein, refers to logic embodied in hardware or firmware, or to a collection of software instructions, written in a programming language, such as, for example, Java, C, or assembly. One or more software instructions in the modules may be embedded in firmware, such as in an erasable-programmable read-only memory (EPROM). It will be appreciated that modules may comprise connected logic units, such as gates and flip-flops, and may comprise programmable units, such as programmable gate arrays or processors. The modules described herein may be implemented as either software and/or hardware modules and may be stored in any type of non-transitory computer-readable medium or computer storage device.
In the embodiment, the computing device 1 comprises a correction unit 10 (shown in
The control cabinet 4 converts one or more control commands into a format of data that can be identified by the single drive shaft 2. Each of the control commands is generated by the correction unit 10 of the computing device 1, and is transmitted to the control cabinet 4.
In the embodiment, each of the dial indicators 5 has a same measurement range, and also has a digital display function.
The single drive shaft 2 further includes a bracket 23. The bracket 23 includes more than one fastening portions 24, and each of the fastening portions 24 locks one of the dial indicators 5 using a latching portion 25. In the embodiment, each dial indicator 5 has a measuring rod 50, and the fastening portions 24 locks the measuring rods 50. A sliding rail is attached to the frame 20 and a push rod 26 slides in the sliding rail. When the computer device 1 sends a control command to the single drive shaft 2, the motor 22 can drive the frame 20 move step by step, from one end of the precision screw 21 to the other end of the precision screw 21, to control the push rod 26 to contact the dial indicators 5 according to the control command.
In one embodiment, the correction unit 10 includes a communication module 100, a first command module 102, a detection module 104, a first record module 106, a second command module 108, a second record module 110, a correction module 112, and a report module 114. Each of the modules 100-114 may be a software program including one or more computerized instructions that are stored in the storage system 12 and executed by the processor 14. Detailed functions of the modules 100-114 are described below and shown in
The communication module 100 detects whether each of the dial indicators 5 is electronically connected to the computing device 1, and sets a serial number for each of the dial indicators 5 that are electronically connected to the computing device 1. For example, the communication module 100 sets a serial number “1,” a serial number “2,” and a serial number “3” to three dial indicators 5 that are electronically connected to the computing device 1.
The first command module 102 sends a first command to the single drive shaft 2, and controls the push rod 26 to move toward the bracket 23 that is installed with the dial indicators 5 at a first speed. In the embodiment, all the dial indicators 5 have a same measuring range, and each of the dial indicators 5 has a display screen. The first speed may be 0.1 millimeters every moving step, for example. That is, the single drive shaft 2 moves 0.1 millimeters one moving step.
The detection module 104 detects whether the push rod 26 contacts with one measuring rod 50.
Upon the condition that the push rod 26 contacts with one measuring rod 50, the first record module 106 records a first indicated value of the corresponding dial indicator 5. For example, if the push rod 26 contacts with the measuring rod 50 of the dial indicator 5 with the serial number “1,” the first record module 106 records the first indicated value of the dial indicator 5 with the serial number “1.”
Upon the condition that the push rod 26 has contacted all the measuring rods 50 of the dial indicators 5, the first record module 106 records a second indicated value of each of the dial indicators 5.
For example, three dial indicators “1,” “2,” and “3” are installed on the single drive shaft 2, and the push rod 26 moves to the dial indicators 5 according to the first speed, such as about 0.1 millimeters every moving step. The push rod 26 contacts the measuring rod 50 of a first dial indicator 5 when a distance of the push rod 26 is about 0.1 millimeters, and the first record module 106 records an indicated value shown on the display screen of the first dial indicator 5 as the first indicated value of the first dial indicator 5. Upon the condition that the motion distance of the push rod 26 is about 0.2 millimeters, the push rod 26 contacts the measuring rod 50 of a second dial indicator 5, and the first record module 106 records the first indicated value of the second dial indicator 5. Upon the condition that the motion distance of the push rod 26 is about 0.25 millimeters, the push rod 26 contacts the measuring rod 50 of a third dial indicator 5, and the first record module 106 records the first indicated value of the third dial indicator 5. Because the push rod 26 moves with about 0.1 millimeters every moving step, the push rod 26 may continue to move about 0.05 millimeters after the push rod 26 contacts the third dial indicator 5. When the push rod 26 moves about 0.05 millimeters, the first record module 106 further records the second indicated values of the three dial indicators 5.
The second command module 108 sends a second command to the single drive shaft 2, and controls the push rod 26 to move toward the bracket 23 according to a second speed, till the distance of the push rod 26 is equal to the measuring range of the dial indicator 5. In one embodiment, the second speed may be 0.2 millimeters every moving step.
The second record module 110 records a third indicated value of each of the dial indicators 5 upon the condition that the push rod 26 moves at each moving step, and obtains a forth indicated value of each of the dial indicators 5 by subtracting the third indicated value from the second indicated value. For example, the second indicated value of one of the dial indicators 5 is 0.26 millimeters, and the third indicated value of the dial indicator is about 0.45 millimeters when the push rod 26 moves about 0.2 millimeters, the second record module 110 computes that the forth indicated value of the dial indicator 5 is about 0.19 millimeters.
The correction module 112 obtains a corrected value of each of the dial indicators 5 by correcting the forth indicated value of each of the dial indicators 5 using a running deviation of the single drive shaft 2. In the embodiment, the running deviation of the single drive shaft 2 can be measured using a grating interferometer.
The report module 114 generates a report according to the serial number, the first indicated value, and the corrected value of each of the dial indicators 5, and displays the report on the display device 16.
In steps S400, the user installs the dial indicators 5 on the single drive shaft 2, and each of the dial indicators 5 is connected to the computing device 1 using a data line.
In step S402, upon the condition that any dial indicators 5 are successfully connected to the computing device 1, the communication module 100 sets a serial number to each of the dial indicators 5.
In step S404, the first command module 102 sends a first command to the single drive shaft 2, and controls the push rod 26 to move toward the bracket 23 at a first speed according to the first command. In the embodiment, the first speed may be 0.1 millimeters every moving step, for example. That is, the single drive shaft 2 moves 0.1 millimeters one moving step.
In step S406, the detection module 104 detects whether the push rod 26 contacts with one of the measuring rods 50. Upon the condition that the push rod 26 contacts with one of the measuring rods 50, step S408 is implemented. Upon the condition that the push rod 26 does not contact with any of the measuring rods 50, step S404 is implemented.
In step S408, the first record module 106 records a first indicated value of one of the dial indicators 5 that is contacted with the push rod 26. For example, if the push rod 26 contacts with the measuring rod 50 of the dial indicator 5 with the serial number “1,” the first record module 106 records the first indicated value of the dial indicator 5 with the serial number “1.” The first record module 106 further records a second indicated value of each of the dial indicators 5, upon the condition that the push rod 26 has contacted all measuring rods 50 of the dial indicators 5.
In step S410, the second command module 108 sends a second command to the single drive shaft 2, and controls the push rod 26 to move toward the bracket 23 at a second speed according to the second command. The second record module 110 records a third indicated value of each of the dial indicators 5 upon the condition that the push rod 26 moves at each moving step, and obtains a forth indicated value of each of the dial indicators 5 by subtracting the third indicated value from the second indicated value. In one embodiment, the second speed may be 0.2 millimeters every moving step.
In step S412, the second command module 108 determines whether the distance of the push rod 26 is equal to the measuring range of the dial indicator 5. Upon the condition that the distance of the push rod 26 is equal to the measuring range, the procedure goes to step S414. Upon the condition that the motion distance of the push rod 26 is not equal to the measuring range, the procedure returns to step S410.
In step S414, the correction module 112 obtains a corrected value of each of the dial indicators 5 by correcting the forth indicated value of each of the dial indicators 5 using the running deviation of the single drive shaft 2. In the embodiment, the running deviation of the single drive shaft 2 can be measured using a grating interferometer.
In step S416, the report module 114 generates a report according to the serial number, the first indicated value, and the corrected value of each of the dial indicators 5, and displays the report on the display device 16.
Although certain inventive embodiments of the present disclosure have been specifically described, the present disclosure is not to be construed as being limited thereto. Various changes or modifications may be made to the present disclosure without departing from the scope and spirit of the present disclosure.
| Number | Date | Country | Kind |
|---|---|---|---|
| 201110450164.0 | Dec 2011 | CN | national |