Changes for page 06 Operation

Last modified by Iris on 2025/07/23 15:49

From version 51.28
edited by Stone Wu
on 2022/07/07 10:51
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To version 51.27
edited by Stone Wu
on 2022/07/07 10:48
Change comment: (Autosaved)

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... ... @@ -1794,7 +1794,7 @@
1794 1794  
1795 1795  The servo drive processes the analog voltage signal output by host computer or other equipment as torque instruction. VD2A and VD2B series servo drives have 2 analog input channels: AI_1 and AI_2. AI_1 is analog torque input, and AI_2 is analog torque limit.
1796 1796  
1797 -(% style="text-align:center" %)
1797 +
1798 1798  [[image:image-20220608153646-7.png||height="213" width="408"]]
1799 1799  
1800 1800  Figure 6-40 Analog input circuit
... ... @@ -1801,7 +1801,7 @@
1801 1801  
1802 1802  Taking AI_1 as an example, the method of setting torque instruction of analog voltage is as below.
1803 1803  
1804 -(% style="text-align:center" %)
1804 +
1805 1805  [[image:image-20220608172502-36.png]]
1806 1806  
1807 1807  Figure 6-41 Analog voltage torque instruction setting steps
... ... @@ -1808,15 +1808,18 @@
1808 1808  
1809 1809  Explanation of related terms:
1810 1810  
1811 -* Zero drift: When analog input voltage is 0, the servo drive sample voltage value relative to the value of GND.
1812 -* Bias: After zero drift correction, the corresponding analog input voltage when the sample voltage is 0.
1813 -* Dead zone: It is the corresponding analog input voltage interval when the sample voltage is 0.
1811 +Zero drift: When analog input voltage is 0, the servo drive sample voltage value relative to the value of GND.
1814 1814  
1815 -(% style="text-align:center" %)
1813 +Bias: After zero drift correction, the corresponding analog input voltage when the sample voltage is 0.
1814 +
1815 +Dead zone: It is the corresponding analog input voltage interval when the sample voltage is 0.
1816 +
1817 +
1816 1816  [[image:image-20220608172611-37.png]]
1817 1817  
1818 1818  Figure 6-42 AI_1 diagram before and after bias
1819 1819  
1822 +
1820 1820  |**Function code**|**Name**|**Setting method**|**Effective time**|**Default value**|**Range**|**Definition**|**Unit**
1821 1821  |P05-01☆|AI_1 input bias|Operation setting|Effective immediately|0|-5000 to 5000|Set AI_1 channel analog bias value|mV
1822 1822  |P05-02☆|AI_1 input filter time constant|Operation setting|Effective immediately|200|0 to 60000|AI_1 channel input first-order low-pass filtering time constant|0.01ms
... ... @@ -1831,6 +1831,7 @@
1831 1831  
1832 1832  In torque mode, the servo drive could realize low-pass filtering of torque instruction, making the instruction smoother and reducing the vibration of servo motor. The first-order filtering is shown in __[[Figure 6-43>>http://docs.we-con.com.cn/wiki/servo/download/2.%20User%20Manual/06%20VD2%20SA%20Series%20Servo%20Drives%20Manual%20%28Full%20V1.1%29/WebHome/Wecon%20VD2%20SA%20Series%20Servo%20Drives%20Manual%20%28Full%20V1.1%29_html_205df0eae349c586.gif?rev=1.1]]__.
1833 1833  
1837 +
1834 1834  |**Function code**|**Name**|(((
1835 1835  **Setting method**
1836 1836  )))|(((
... ... @@ -1846,7 +1846,7 @@
1846 1846  
1847 1847  ✎**Note: **If the filter time constant is set too large, the responsiveness will be reduced. Please set it while confirming the responsiveness.
1848 1848  
1849 -(% style="text-align:center" %)
1853 +
1850 1850  [[image:image-20220608172646-38.png]]
1851 1851  
1852 1852  Figure 6-43 Torque instruction-first-order filtering diagram
... ... @@ -1857,7 +1857,7 @@
1857 1857  
1858 1858  At any time, there is only one valid torque limit value. And the positive and negative torque limit values do not exceed the maximum torque of drive and motor and ±300.0% of the rated torque.
1859 1859  
1860 -(% style="text-align:center" %)
1864 +
1861 1861  [[image:image-20220608172806-39.png]]
1862 1862  
1863 1863  Figure 6-44 Torque instruction limit diagram
... ... @@ -1866,6 +1866,7 @@
1866 1866  
1867 1867  You need to set the torque limit source by function code P01-14. After the setting, the drive torque instruction will be limited within the torque limit value. When the torque limit value is reached, the motor will operate with the torque limit value as the torque instruction. The torque limit value should be set according to the load operation requirements. If the setting is too small, the motor's acceleration and deceleration capacity may be weakened. During constant torque operation, the actual motor speed cannot reach the required value.
1868 1868  
1873 +
1869 1869  |**Function code**|**Name**|(((
1870 1870  **Setting method**
1871 1871  )))|(((
... ... @@ -1889,6 +1889,7 @@
1889 1889  
1890 1890  Torque limit source is from inside, you need to set torque limit, and the value is set by function code P01-15 and P01-16.
1891 1891  
1897 +
1892 1892  |**Function code**|**Name**|(((
1893 1893  **Setting method**
1894 1894  )))|(((
... ... @@ -1919,6 +1919,7 @@
1919 1919  
1920 1920  When torque instruction reaches the torque limit value, the drive outputs a torque limit signal (T-LIMIT) for the host computer use. At this time, one DO terminal of the drive should be assigned to function 139 (T-LIMIT, in torque limit) , and confirm that the terminal logic is valid.
1921 1921  
1928 +
1922 1922  |**DO function code**|**Function name**|**Function**
1923 1923  |139|(((
1924 1924  T-LIMIT in torque limit
... ... @@ -1983,7 +1983,7 @@
1983 1983  
1984 1984  The torque arrival function is used to determine whether the actual torque instruction reaches the set interval. When the actual torque instruction reaches the torque instruction threshold, the servo drive outputs a torque arrival signal (T-COIN) for the host computer use.
1985 1985  
1986 -(% style="text-align:center" %)
1993 +
1987 1987  [[image:image-20220608173541-42.png]]
1988 1988  
1989 1989  Figure 6-47 Torque arrival output diagram
... ... @@ -1990,6 +1990,7 @@
1990 1990  
1991 1991  To use the torque arrival function, a DO terminal of the servo drive should be assigned to function 138 (T-COIN, torque arrival). The function code parameters and related DO function codes are shown in __[[Table 6-49>>https://docs.we-con.com.cn/bin/view/Servo/2.%20User%20Manual/06%20VD2%20SA%20Series%20Servo%20Drives%20Manual%20%28Full%20V1.1%29/06%20Operation/#HTorque-relatedDOoutputfunctions]]__ and __[[Table 6-50>>https://docs.we-con.com.cn/bin/view/Servo/2.%20User%20Manual/06%20VD2%20SA%20Series%20Servo%20Drives%20Manual%20%28Full%20V1.1%29/06%20Operation/#HTorque-relatedDOoutputfunctions]]__.
1992 1992  
2000 +
1993 1993  |**Function code**|**Name**|(((
1994 1994  **Setting method**
1995 1995  )))|(((
... ... @@ -2034,14 +2034,15 @@
2034 2034  
2035 2035  Mixed control mode means that when the servo enable is ON and the status of the servo drive is "run", the mode of the servo drive could be switched between different modes. The VD2 series servo drives have the following 3 mixed control modes:
2036 2036  
2037 -Position mode Speed mode
2045 +Position mode Speed mode
2038 2038  
2039 -Position mode Torque mode
2047 +Position mode Torque mode
2040 2040  
2041 -Speed mode Torque mode
2049 +Speed mode Torque mode
2042 2042  
2043 2043  Set the function code P00-01 through the software of Wecon “SCTool” or servo drive panel, and the servo drive will run in mixed mode.
2044 2044  
2053 +
2045 2045  |**Function code**|**Name**|(((
2046 2046  **Setting method**
2047 2047  )))|(((
... ... @@ -2069,6 +2069,7 @@
2069 2069  
2070 2070  Please set the servo drive parameters in different control modes according to the mechanical structure and indicators. The setting method refer to [[__“Parameters”__>>https://docs.we-con.com.cn/bin/view/Servo/2.%20User%20Manual/06%20VD2%20SA%20Series%20Servo%20Drives%20Manual%20%28Full%20V1.1%29/09%20Parameters/]]. When function code P00-01=4/5/6 (that is, in mixed mode), a DI terminal of the servo drive needs to be assigned to function 17 (MixModeSel, mixed mode selection), and the DI terminal logic is determined to be valid.
2071 2071  
2081 +
2072 2072  |**DI function code**|**Name**|**Function name**|**Function**
2073 2073  |17|MixModeSel|Mixed mode selection|Used in mixed control mode, when the servo status is "run", set the current control mode of the servo drive(((
2074 2074  |**P00-01**|**MixModeSel terminal logic**|**Control mode**
... ... @@ -2104,7 +2104,7 @@
2104 2104  
2105 2105  The relationship between encoder feedback position and rotating load position is shown in the figure below. (take a 17-bit encoder as an example).
2106 2106  
2107 -(% style="text-align:center" %)
2117 +
2108 2108  [[image:image-20220608173618-43.png]]
2109 2109  
2110 2110  Figure 6-48 Diagram of relationship between encoder feedback position and rotating load position
... ... @@ -2113,6 +2113,7 @@
2113 2113  
2114 2114  The encoder adapted to the multi-turn absolute value system is equipped with 16-bit RAM memory. Compared with the single-turn absolute value, it can additionally memorize the number of turns of the 16-bit encoder. The multi-turn absolute encoder is equipped with a battery (the battery is installed on the encoder cable with a battery unit), which can achieve direct internal high-speed readings and external output without the need for external sensors to assist memory positions. The types and information of encoders adapted to VD2 series servo drives are shown as below.
2115 2115  
2126 +
2116 2116  |**Encoder type**|**Encoder resolution (bits)**|**Data range**
2117 2117  |C1 (multi-turn magnetic encoder)|17|0 to 131071
2118 2118  |D2 (multi-turn Optical encoder)|23|0 to 8388607
... ... @@ -2121,7 +2121,7 @@
2121 2121  
2122 2122  The relationship between encoder feedback position and rotating load multi-turn is shown in the figure below (take a 23-bit encoder as an example).
2123 2123  
2124 -(% style="text-align:center" %)
2135 +
2125 2125  [[image:image-20220608173701-44.png]]
2126 2126  
2127 2127  Figure 6-49 The relationship between encoder feedback position and rotating load position
... ... @@ -2130,6 +2130,7 @@
2130 2130  
2131 2131  The feedback data of the absolute value encoder can be divided into the position within 1 turn of the absolute value encoder and the number of rotations of the absolute value encoder. The related information of the two feedback data is shown in the table below.
2132 2132  
2144 +
2133 2133  |**Monitoring number**|**Category**|**Name**|**Unit**|**Data type**
2134 2134  |U0-54|Universal|Absolute encoder position within 1 turn|Encoder unit|32-bit
2135 2135  |U0-55|Universal|Rotations number of absolute encoder|circle|16-bit