Changes for page LSS-PRO Communication Protocol
Last modified by Eric Nantel on 2024/09/06 14:52
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... ... @@ -1,1 +1,1 @@ 1 -LSS-P -Communication Protocol1 +LSS-PRO Communication Protocol - Parent
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... ... @@ -1,1 +1,1 @@ 1 - lynxmotion-smart-servo-pro.WebHome1 +ses-pro.lss-pro.WebHome - Author
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... ... @@ -1,1 +1,1 @@ 1 -xwiki:XWiki. CBenson1 +xwiki:XWiki.ENantel - Hidden
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... ... @@ -1,7 +5,3 @@ 1 -{{warningBox warningText="More information coming soon"/}} 2 - 3 - 4 - 5 5 (% class="wikigeneratedid" id="HTableofContents" %) 6 6 **Page Contents** 7 7 ... ... @@ -95,7 +95,7 @@ 95 95 96 96 The ability to store a "virtual angular position" is a feature which allows for rotation beyond 360 degrees, permitting multiple rotations of the output horn, moving the center position and more. The "absolute position" would be the angle of the output shaft with respect to a 360.00 degree circle and can be obtained by taking the modulus (with respect to 360 degrees) of the value. For example if the virtual position is reported as 153350 (or 1533.50 degrees), taking the modulus would give 93.5 degrees (36000 * 4 + 9350 = 153350) as the absolute position (assuming no origin offset). 97 97 98 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-positions.jpg||alt="LSS-servo-positions.jpg"]]94 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-positions.jpg||alt="LSS-servo-positions.jpg"]] 99 99 100 100 In this example, the gyre direction (explained below, a.k.a. "rotation direction") is positive (clockwise), and origin offset has not been modified. Each square represents 30 degrees. The following command is sent: 101 101 ... ... @@ -120,62 +120,62 @@ 120 120 121 121 |(% colspan="8" style="color:orange; font-size:18px" %)[[**Communication Setup**>>||anchor="HCommunicationSetup"]] 122 122 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Action**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** 123 -| |[[**Reset**>>||anchor="HReset"]]|(% style="text-align:center" %)RESET|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Soft reset. See command for details. 124 -| |[[**Default** Configuration>>||anchor="HDefault26confirm"]]|(% style="text-align:center" %)DEFAULT|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Revert to firmware default values. See command for details 125 -| |[[Firmware **Update** Mode>>||anchor="HUpdate26confirm"]]|(% style="text-align:center" %)UPDATE|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Update firmware. See command for details. 126 -| |[[**Confirm** Changes>>||anchor="HConfirm"]]|(% style="text-align:center" %)CONFIRM|(% style="text-align:center" %) |(% style="text-align:center" %) | | | 127 -| |[[**ID** Number >>||anchor="HIDNumber28ID29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QID|(% style="text-align:center" %)CID|0| |Reset required after change. ID 254 is a "broadcast" which all servos respond to. 128 -| |[[**E**nable CAN **T**erminal>>doc:||anchor="HEnableCANTerminalResistor28ET29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QET|(% style="text-align:center" %)CET| |0 or 1|0: Disable 1: Enable 129 -| |[[**U**SB **C**onnection Status>>||anchor="HUSBConnectionStatus28UC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QUC|(% style="text-align:center" %) | |0 or 1|0: Not connected 1: Connected 130 -| |[[**Q**uery **F**irmware **R**elease>>doc:||anchor="HFirmwareRelease28FR29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QFR|(% style="text-align:center" %) | | | 119 +| |[[**Reset**>>||anchor="HReset"]]|(% style="text-align:center" %)RESET|(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |Soft reset 120 +| |[[**Default** Configuration>>||anchor="HDefault26confirm"]]|(% style="text-align:center" %)DEFAULT|(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |Revert to firmware default values 121 +| |[[Firmware **Update** Mode>>||anchor="HUpdate26confirm"]]|(% style="text-align:center" %)UPDATE|(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |Update firmware 122 +| |[[**Confirm** Changes>>||anchor="HConfirm"]]|(% style="text-align:center" %)CONFIRM|(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %) |Confirm the action for some commands 123 +| |[[**ID** Number >>||anchor="HIDNumber28ID29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QID|(% style="text-align:center" %)CID|(% style="text-align:center" %)0|(% style="text-align:center" %) |Reset required after change. ID 254 is a "broadcast" which all servos respond to. 124 +| |[[**E**nable CAN **T**erminal>>doc:||anchor="HEnableCANTerminalResistor28ET29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QET|(% style="text-align:center" %)CET|(% style="text-align:center" %)1|(% style="text-align:center" %)0 or 1|0: Disable 1: Enable 125 +| |[[**U**SB **C**onnection Status>>||anchor="HUSBConnectionStatus28UC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QUC|(% style="text-align:center" %) |(% style="text-align:center" %) |(% style="text-align:center" %)0 or 1|0: Not connected 1: Connected 131 131 132 132 |(% colspan="8" style="color:orange; font-size:18px" %)[[**Motion**>>||anchor="HMotion"]] 133 133 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Action**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** 134 -| |[[Position in **D**egrees>>||anchor="HPositioninDegrees28D29"]]|(% style="text-align:center" %)D|(% style="text-align:center" %)QD /QDT|(% style="text-align:center" %) | |1/100°|135 -| |[[**M**ove in **D**egrees (relative)>>||anchor="H28Relative29MoveinDegrees28MD29"]]|(% style="text-align:center" %)MD|(% style="text-align:center" %) |(% style="text-align:center" %) | | 1/100°|136 -| |[[**W**heel mode in **D**egrees>>||anchor="HWheelModeinDegrees28WD29"]]|(% style="text-align:center" %)WD|(% style="text-align:center" %)QWD /QVT|(% style="text-align:center" %) | |°/s|A.K.A. "Speed mode" or "Continuous rotation"129 +| |[[Position in **D**egrees>>||anchor="HPositioninDegrees28D29"]]|(% style="text-align:center" %)D|(% style="text-align:center" %)QD|(% style="text-align:center" %) | |0.01°| 130 +| |[[**M**ove in **D**egrees (relative)>>||anchor="H28Relative29MoveinDegrees28MD29"]]|(% style="text-align:center" %)MD|(% style="text-align:center" %) |(% style="text-align:center" %) | |0.01°| 131 +| |[[**W**heel mode in **D**egrees>>||anchor="HWheelModeinDegrees28WD29"]]|(% style="text-align:center" %)WD|(% style="text-align:center" %)QWD|(% style="text-align:center" %) | |0.01°/s|A.K.A. "Speed mode" or "Continuous rotation" 137 137 | |[[**W**heel mode in **R**PM>>||anchor="HWheelModeinRPM28WR29"]]|(% style="text-align:center" %)WR|(% style="text-align:center" %)QWR|(% style="text-align:center" %) | |RPM|A.K.A. "Speed mode" or "Continuous rotation" 138 138 | |[[**Q**uery Motion Status>>||anchor="HQueryStatus28Q29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)Q|(% style="text-align:center" %) | |1 to 8 integer|See command description for details 134 +| |[[**Q**uery **M**otion **T**ime>>doc:||anchor="HMotionTime"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QMT|(% style="text-align:center" %) | |0.01s| 135 +| |[[**Q**uery **C**urrent **S**peed>>doc:||anchor="HCurrentSpeed"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QCS|(% style="text-align:center" %) | |0.01°/s| 139 139 | |[[**L**imp>>||anchor="HLimp28L29"]]|(% style="text-align:center" %)L|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Removes power from stepper coils 140 -| |[[**H**alt & Hold>>||anchor="HHalt26Hold28H29"]]|(% style="text-align:center" %)H|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Stops (halts) motion profileand holds last position137 +| |[[**H**alt & Hold>>||anchor="HHalt26Hold28H29"]]|(% style="text-align:center" %)H|(% style="text-align:center" %) |(% style="text-align:center" %) | | |Stops (halts) motion and holds last position 141 141 142 142 |(% colspan="8" style="color:orange; font-size:18px" %)[[**Motion Setup**>>||anchor="HMotionSetup"]] 143 143 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Action**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** 144 -| |[[**O**rigin Offset>>||anchor="HOriginOffset28O29"]]|(% style="text-align:center" %)O|(% style="text-align:center" %)QO|(% style="text-align:center" %)CO|0|1/10°| 145 -| |[[**A**ngular **R**ange>>||anchor="HAngularRange28AR29"]]|(% style="text-align:center" %)AR|(% style="text-align:center" %)QAR|(% style="text-align:center" %)CAR|1800|1/10°| 146 -| |[[**A**ngular **A**cceleration>>||anchor="HAngularAcceleration28AA29"]]|(% style="text-align:center" %)AA|(% style="text-align:center" %)QAA|(% style="text-align:center" %)CAA|100|°/s^^2^^|Increments of 10°/s^^2^^. Only when motion profile is enabled (EM1). 147 -| |[[**A**ngular **D**eceleration>>||anchor="HAngularDeceleration28AD29"]]|(% style="text-align:center" %)AD|(% style="text-align:center" %)QAD|(% style="text-align:center" %)CAD|100|°/s^^2^^|Increments of 10°/s^^2^^. Only when motion profile is enabled (EM1). 148 -| |[[**G**yre Direction>>||anchor="HGyreDirection28G29"]]|(% style="text-align:center" %)G|(% style="text-align:center" %)QG|(% style="text-align:center" %)CG|1| |Gyre / rotation direction: 1= CW (clockwise) -1 = CCW (counter-clockwise) 149 -| |[[**F**irst Position (**D**eg)>>||anchor="HFirstPosition"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QFD|(% style="text-align:center" %)CFD|No value|1/10°|Reset required after change. 150 -| |[[Maximum **S**peed in **D**egrees>>||anchor="HMaximumSpeedinDegrees28SD29"]]|(% style="text-align:center" %)SD|(% style="text-align:center" %)QSD|(% style="text-align:center" %)CSD|Max|0.1°/s|SD overwrites SR / CSD overwrites CSR and vice-versa 151 -| |[[Maximum **S**peed in **R**PM>>||anchor="HMaximumSpeedinRPM28SR29"]]|(% style="text-align:center" %)SR|(% style="text-align:center" %)QSR|(% style="text-align:center" %)CSR|Max|RPM|SD overwrites SR / CSD overwrites CSR and vice-versa 152 -| |[[Step Mode>>doc:||anchor="HStepMode28SM29"]]|(% style="text-align:center" %)SM|(% style="text-align:center" %)QM|(% style="text-align:center" %)CSM|2|1, 2, 4|Numbers represent fractions: full step, ½ step, ¼ step 141 +| |[[**O**rigin Offset>>||anchor="HOriginOffset28O29"]]|(% style="text-align:center" %)O|(% style="text-align:center" %)QO|(% style="text-align:center" %)CO|(% style="text-align:center" %)0|(% style="text-align:center" %)0.01°| 142 +| |[[**A**ngular **R**ange>>||anchor="HAngularRange28AR29"]]|(% style="text-align:center" %)AR|(% style="text-align:center" %)QAR|(% style="text-align:center" %)CAR|(% style="text-align:center" %)36000|(% style="text-align:center" %)0.01°| 143 +| |[[**A**ngular **A**cceleration>>||anchor="HAngularAcceleration28AA29"]]|(% style="text-align:center" %)AA|(% style="text-align:center" %)QAA|(% style="text-align:center" %)CAA|(% style="text-align:center" %) |(% style="text-align:center" %)0.01°/s^2| 144 +| |[[**A**ngular **D**eceleration>>||anchor="HAngularDeceleration28AD29"]]|(% style="text-align:center" %)AD|(% style="text-align:center" %)QAD|(% style="text-align:center" %)CAD|(% style="text-align:center" %) |(% style="text-align:center" %)0.01°/s^2| 145 +| |[[**G**yre Direction>>||anchor="HGyreDirection28G29"]]|(% style="text-align:center" %)G|(% style="text-align:center" %)QG|(% style="text-align:center" %)CG|(% style="text-align:center" %)1|(% style="text-align:center" %)1 or -1|Gyre / rotation direction: 1= CW (clockwise) -1 = CCW (counter-clockwise) 146 +| |[[**F**irst Position (**D**eg)>>||anchor="HFirstPosition"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QFD|(% style="text-align:center" %)CFD|(% style="text-align:center" %) |(% style="text-align:center" %)0.01°|Reset required after change. 147 +| |[[Maximum **S**peed in **D**egrees>>||anchor="HMaximumSpeedinDegrees28SD29"]]|(% style="text-align:center" %)SD|(% style="text-align:center" %)QSD|(% style="text-align:center" %)CSD|(% style="text-align:center" %) |(% style="text-align:center" %)0.01°/s|SD / CSD overwrites SR / CSR 148 +| |[[Maximum **S**peed in **R**PM>>||anchor="HMaximumSpeedinRPM28SR29"]]|(% style="text-align:center" %)SR|(% style="text-align:center" %)QSR|(% style="text-align:center" %)CSR|(% style="text-align:center" %) |(% style="text-align:center" %)RPM|SR / CSR overwrites SD / CSD 153 153 154 154 |(% colspan="8" style="color:orange; font-size:18px" %)[[**Modifiers**>>||anchor="HModifiers"]] 155 155 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Modifier**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** 156 -| |[[**S**peed in **D**egrees>>||anchor="HSpeed28S2CSD29modifier"]]|(% style="text-align:center" %)SD|(% style="text-align:center" %) |(% style="text-align:center" %) | |1°/s|For D and MD action commands 152 +| |[[**S**peed in **D**egrees>>||anchor="HSpeed28S2CSD29modifier"]]|(% style="text-align:center" %)SD|(% style="text-align:center" %) |(% style="text-align:center" %) | |0.01°/s|For D and MD action commands 157 157 | |[[**T**imed move>>||anchor="HTimedmove28T29modifier"]]|(% style="text-align:center" %)T|(% style="text-align:center" %) |(% style="text-align:center" %) | |ms|Time associated with D, MD commands 158 158 159 159 |(% colspan="8" style="color:orange; font-size:18px" %)[[**Telemetry**>>||anchor="HTelemetry"]] 160 160 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Action**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** 161 -| |[[**Q**uery PCB **T**emperature>>||anchor="HQueryTemperature28QT29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QT|(% style="text-align:center" %) | |°C| 162 -| |[[**Q**uery **C**urrent>>||anchor="HQueryCurrent28QC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QC|(% style="text-align:center" %) | |mA|Nominal RMS value to stepper motor driver IC. 157 +| |[[**Q**uery PCB **T**emperature>>doc:||anchor="HQueryPCBTemperature28QT29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QT|(% style="text-align:center" %) | |0.1°C| 158 +| |[[**Q**uery **C**urrent>>doc:||anchor="HQueryCurrent28QC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QC|(% style="text-align:center" %) | |mA|Nominal RMS value to stepper motor driver IC. 163 163 | |[[**Q**uery **M**odel **S**tring>>||anchor="HQueryModelString28QMS29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QMS|(% style="text-align:center" %) | | |Returns the model of servo (ex: LSS-ST1, LSS-HS1, LSS-HT1) 164 164 | |[[**Q**uery **F**irmware Version>>||anchor="HQueryFirmware28QF29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QF|(% style="text-align:center" %) | | | 165 165 | |[[**Q**uery Serial **N**umber>>||anchor="HQuerySerialNumber28QN29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QN|(% style="text-align:center" %) | | |Returns the unique serial number for the servo 166 -| |[[**Q**uery **T**emperature **P**robe>>doc:||anchor="HQueryTemperatureProbe28QTP29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTP|(% style="text-align:center" %) | | |Queries temperature probe fixed to the stepper motor 167 -| |[[**Q**uery **T**emp of **M**CU>>doc:||anchor="HQueryMCUTemperature28QTM29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTM|(% style="text-align:center" %) | | | 168 -| |[[**Q**uery **T**emp of **C**ontroller>>doc:||anchor="HQueryTempofController28QTCW29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTCW, QTCE|(% style="text-align:center" %) | | |((( 169 -QTCW: Queries the temperature status of the motor controller (pre-warning) 170 - 171 -QTCE: Queries the temperature status of the motor controller (over-temp error) 162 +| |[[**Q**uery **T**emperature **P**robe>>doc:||anchor="HQueryTemperatureProbe28QTP29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTP|(% style="text-align:center" %) | |0.1°C|Queries temperature probe fixed to the stepper motor 163 +| |[[**Q**uery **T**emp of **M**CU>>doc:||anchor="HQueryMCUTemperature28QTM29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTM|(% style="text-align:center" %) | |0.1°C| 164 +| |[[Query Temp of Controller Error>>doc:||anchor="HQueryTempControllerError28QTCE29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTCE|(% style="text-align:center" %) | | |((( 165 +Temperature error status of the motor controller (over-temp error) 172 172 ))) 167 +| |[[Query Temp of Controller Pre-Warning>>doc:||anchor="HQueryTempControllerWarning28QTCW29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QTCW|(% style="text-align:center" %) | | |Temperature error status of the motor controller (pre-warning) 168 +| |[[**Q**uery **E**rror **F**lag>>doc:||anchor="HQueryErrorFlag28QEF29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QEF|(% style="text-align:center" %) | | | 173 173 | |[[**Q**uery **I**MU Linear **X**>>doc:||anchor="HQueryIMULinear28QIXQIYQIZ29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIX|(% style="text-align:center" %) | |mm/s^2| 174 174 | |[[**Q**uery **I**MU Linear **Y**>>doc:||anchor="HQueryIMULinear28QIXQIYQIZ29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIY|(% style="text-align:center" %) | |mm/s^2| 175 175 | |[[**Q**uery **I**MU Linear **Z**>>doc:||anchor="HQueryIMULinear28QIXQIYQIZ29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIZ|(% style="text-align:center" %) | |mm/s^2| 176 176 | |[[**Q**uery **I**MU Angular Accel **α** >>doc:||anchor="HQueryIMUAngular28QIAQIBQIC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIA|(% style="text-align:center" %) | |°/s^2|Query IMU Angular Accel α (Alpha) 177 177 | |[[**Q**uery **I**MU Angular Accel **β**>>doc:||anchor="HQueryIMUAngular28QIAQIBQIC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIB|(% style="text-align:center" %) | |°/s^2|Query IMU Angular Accel β (Beta) 178 -| |[[**Q**uery **I**MU Angular Accel **γ**>>doc:||anchor="HQueryIMUAngular28QIAQIBQIC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QI C / QIG|(% style="text-align:center" %) | |°/s^2|Query IMU Angular Accel γ (Gamma)174 +| |[[**Q**uery **I**MU Angular Accel **γ**>>doc:||anchor="HQueryIMUAngular28QIAQIBQIC29"]]|(% style="text-align:center" %) |(% style="text-align:center" %)QIG|(% style="text-align:center" %) | |°/s^2|Query IMU Angular Accel γ (Gamma) 179 179 180 180 |(% colspan="8" style="color:orange; font-size:18px" %)[[**RGB LED**>>||anchor="HRGBLED"]] 181 181 |(% style="width:25px" %) |(% style="width:200px" %)**Description**|(% style="text-align:center; width:100px" %)**Action**|(% style="text-align:center; width:75px" %)**Query**|(% style="text-align:center; width:75px" %)**Config**|(% style="width:100px" %)**Default**|(% style="width:170px" %)**Unit**|**Notes** ... ... @@ -197,7 +197,7 @@ 197 197 |(% colspan="2" %)((( 198 198 ====== (% style="color:inherit; font-family:inherit" %)__Default & confirm__(%%) ====== 199 199 ))) 200 -| |((( 196 +|(% style="width:30px" %) |((( 201 201 (% style="color:inherit; font-family:inherit" %)Ex: #5DEFAULT<cr> 202 202 203 203 (% style="color:inherit; font-family:inherit" %)This command sets in motion the reset of all values to the default values included with the version of the firmware installed on that servo. The servo then waits for the CONFIRM command. Any other command received will cause the servo to exit the DEFAULT function. ... ... @@ -212,7 +212,7 @@ 212 212 |(% colspan="2" %)((( 213 213 ====== (% style="color:inherit; font-family:inherit" %)__Update & confirm__(%%) ====== 214 214 ))) 215 -| |((( 211 +|(% style="width:30px" %) |((( 216 216 (% style="color:inherit; font-family:inherit" %)Ex: #5UPDATE<cr> 217 217 218 218 (% style="color:inherit; font-family:inherit" %)This command sets in motion the equivalent of a long button press when the servo is not powered in order to enter firmware update mode. This is useful should the button be broken or inaccessible. The servo then waits for the CONFIRM command. Any other command received will cause the servo to exit the UPDATE function. ... ... @@ -224,7 +224,9 @@ 224 224 (% style="color:inherit; font-family:inherit" %)Note: After the CONFIRM command is sent, the servo will automatically perform a RESET. 225 225 ))) 226 226 227 -|(% colspan="2" %)(% style="color:inherit; font-family:inherit" %)__Confirm__ 223 +|(% colspan="2" %)((( 224 +====== (% style="color:inherit; font-family:inherit" %)__Confirm__(%%) ====== 225 +))) 228 228 |(% style="width:30px" %) |((( 229 229 (% style="color:inherit; font-family:inherit" %)Ex: #5CONFIRM<cr> 230 230 ... ... @@ -232,8 +232,12 @@ 232 232 Note: After the CONFIRM command is sent, the servo will automatically perform a RESET. 233 233 ))) 234 234 235 -|(% colspan="2" %)(% style="color:inherit; font-family:inherit" %)__ID Number (**ID**)__ 233 +|(% colspan="2" %)((( 234 +====== (% style="color:inherit; font-family:inherit" %)__ID Number__(%%) ====== 235 +))) 236 236 |(% style="width:30px" %) |((( 237 +This assigns ID #5 to the servo previously assigned to ID 0 238 + 237 237 (% style="color:inherit; font-family:inherit" %)Configure ID Number (**CID**) 238 238 239 239 (% style="color:inherit; font-family:inherit" %)Ex: #0CID5<cr> ... ... @@ -247,7 +247,9 @@ 247 247 In this case, the broadcast ID is used to ensure the servo connected will reply with the ID. This can be used in case the ID assigned to a servo is forgotten. 248 248 ))) 249 249 250 -|(% colspan="2" %)(% style="color:inherit; font-family:inherit" %)__Enable CAN Terminal Resistor (**ET**)__ 252 +|(% colspan="2" %)((( 253 +====== (% style="color:inherit; font-family:inherit" %)__Enable CAN Terminal Resistor__(%%) ====== 254 +))) 251 251 |(% style="width:30px" %) |((( 252 252 Query Enable CAN Terminal Resistor (**QET**) 253 253 ... ... @@ -262,7 +262,9 @@ 262 262 (% style="color:inherit; font-family:inherit" %)This commands sets servo with ID 5 as being the last in the CAN Bus. The last servo in a CAN bus must be configured this way. 263 263 ))) 264 264 265 -|(% colspan="2" %)__USB Connection Status (**UC**)__ 269 +|(% colspan="2" %)((( 270 +====== __USB Connection Status__ ====== 271 +))) 266 266 |(% style="width:30px" %) |((( 267 267 Query USB Connection Status (**QUC**) 268 268 ... ... @@ -269,7 +269,9 @@ 269 269 Ex: #5QUC<cr> might return *5QUC1<cr> meaning the servo is connected via USB 270 270 ))) 271 271 272 -|(% colspan="2" %)__Firmware Release (**FR**)__ 278 +|(% colspan="2" %)((( 279 +====== __Firmware Release__ ====== 280 +))) 273 273 |(% style="width:30px" %) |((( 274 274 Query Firmware Release (**QFR**) 275 275 ... ... @@ -278,22 +278,13 @@ 278 278 This is used to verify if the firmware on the servos is up to date, or which version is running on the microcontroller. 279 279 ))) 280 280 281 -====== ====== 282 - 283 - 284 -====== ====== 285 - 286 - 287 -====== ====== 288 - 289 - 290 -====== ====== 291 - 292 - 293 - 294 294 == Motion == 295 295 296 -====== __Position in Degrees (**D**)__ ====== 291 +|(% colspan="2" %)((( 292 +====== __Position in Degrees__ ====== 293 +))) 294 +|(% style="width:30px" %) |((( 295 +Position in Degrees (**D**) 297 297 298 298 Example: #5D1456<cr> 299 299 ... ... @@ -312,15 +312,24 @@ 312 312 Ex: #5QDT<cr> might return *5QDT6783<cr> 313 313 314 314 The query target position command returns the target virtual position during and after an action which results in a rotation of the servo horn. In the example above, the servo is rotating to a virtual position of 678.3 degrees. Should the servo not have a target position or be in wheel mode, it will respond with the last target position used. 314 +))) 315 315 316 -====== __(Relative) Move in Degrees (**MD**)__ ====== 316 +|(% colspan="2" %)((( 317 +====== __(Relative) Move in Degrees__ ====== 318 +))) 319 +|(% style="width:30px" %) |((( 320 +Move in Degrees (**MD**) 317 317 318 - 319 319 Example: #5MD123<cr> 320 320 321 321 The relative move command causes the servo to read its current position and move the specified number of tenths of degrees in the corresponding position. For example if the servo is set to rotate CW (default) and an MD command of 123 is sent to the servo, it will cause the servo to rotate clockwise by 12.3 degrees. Negative commands would cause the servo to rotate in the opposite configured direction. 325 +))) 322 322 323 -====== __Wheel Mode in Degrees (**WD**)__ ====== 327 +|(% colspan="2" %)((( 328 +====== __Wheel Mode in Degrees__ ====== 329 +))) 330 +|(% style="width:30px" %) |((( 331 +Wheel mode in Degrees (**WD**) 324 324 325 325 Ex: #5WD90<cr> 326 326 ... ... @@ -331,8 +331,13 @@ 331 331 Ex: #5QWD<cr> might return *5QWD90<cr> 332 332 333 333 The servo replies with the angular speed in degrees per second. A negative sign would indicate the opposite direction (for factory default a negative value would be counter clockwise). 342 +))) 334 334 335 -====== __Wheel Mode in RPM (**WR**)__ ====== 344 +|(% colspan="2" %)((( 345 +====== __Wheel Mode in RPM__ ====== 346 +))) 347 +|(% style="width:30px" %) |((( 348 +Wheel moed in RPM (**WR**) 336 336 337 337 Ex: #5WR40<cr> 338 338 ... ... @@ -343,8 +343,14 @@ 343 343 Ex: #5QWR<cr> might return *5QWR40<cr> 344 344 345 345 The servo replies with the angular speed in rpm. A negative sign would indicate the opposite direction (for factory default a negative value would be counter clockwise). 359 +))) 346 346 347 -====== __(Relative) Move in Degrees (**MD**)__ ====== 361 +|(% colspan="2" %)((( 362 +====== __(Relative) Move in Degrees__ ====== 363 +))) 364 +|(% style="width:30px" %) |((( 365 +(% class="wikigeneratedid" %) 366 +Move in Degrees (**MD**) 348 348 349 349 (% class="wikigeneratedid" id="HExample:235M15003Ccr3E" %) 350 350 Example: #5M1500<cr> ... ... @@ -351,8 +351,13 @@ 351 351 352 352 (% class="wikigeneratedid" id="HTherelativemoveinPWMcommandcausestheservotoreaditscurrentpositionandmovebythespecifiednumberofPWMsignal.ForexampleiftheservoissettorotateCW28default29andanMcommandof1500issenttotheservo2Citwillcausetheservotorotateclockwiseby90degrees.NegativePWMvaluewouldcausetheservotorotateintheoppositeconfigureddirection." %) 353 353 The relative move in PWM command causes the servo to read its current position and move by the specified number of PWM signal. For example if the servo is set to rotate CW (default) and an M command of 1500 is sent to the servo, it will cause the servo to rotate clockwise by 90 degrees. Negative PWM value would cause the servo to rotate in the opposite configured direction. 373 +))) 354 354 355 -====== __Query Status (**Q**)__ ====== 375 +|(% colspan="2" %)((( 376 +====== __Query Status__ ====== 377 +))) 378 +|(% style="width:30px" %) |((( 379 +Query Status (**Q**) 356 356 357 357 The status query describes what the servo is currently doing. The query returns an integer which must be looked up in the table below. 358 358 ... ... @@ -365,7 +365,7 @@ 365 365 | |ex: *5Q3<cr>|3: Accelerating|Increasing speed from rest (or previous speed) towards travel speed 366 366 | |ex: *5Q4<cr>|4: Traveling|Moving at a stable speed 367 367 | |ex: *5Q5<cr>|5: Decelerating|Decreasing from travel speed towards final position. 368 -| |ex: *5Q6<cr>|6: Holding|Keeping current position (in EM0 mode, return will nor nally be holding)392 +| |ex: *5Q6<cr>|6: Holding|Keeping current position (in EM0 mode, return will normally be holding) 369 369 | |ex: *5Q7<cr>|7: Outside limits|{More details coming soon} 370 370 | |ex: *5Q8<cr>|8: Stuck|Motor cannot perform request movement at current speed setting 371 371 | |ex: *5Q9<cr>|9: Blocked|Similar to stuck, but the motor is at maximum duty and still cannot move (i.e.: stalled) ... ... @@ -382,31 +382,58 @@ 382 382 | |ex: *5Q1<cr>|Current limit has been passed|Something cause the current to either spike, or remain too high for too long 383 383 | |ex: *5Q2<cr>|Input voltage detected is below or above acceptable range|Check the voltage of your batteries or power source 384 384 | |ex: *5Q3<cr>|Temperature limit has been reached|The servo is too hot to continue operating safely. 409 +))) 385 385 386 -====== __Limp (**L**)__ ====== 411 +|(% colspan="2" %)((( 412 +====== __Motion Time__ ====== 413 +))) 414 +|(% style="width:30px" %) |((( 415 + 416 +))) 387 387 418 +|(% colspan="2" %)((( 419 +====== __Current Speed__ ====== 420 +))) 421 +|(% style="width:30px" %) |((( 422 + 423 +))) 424 + 425 +|(% colspan="2" %)((( 426 +====== __Limp__ ====== 427 +))) 428 +|(% style="width:30px" %) |((( 429 +Limp (**L**) 430 + 388 388 Example: #5L<cr> 389 389 390 390 This action causes the servo to go "limp". The microcontroller will still be powered, but the motor will not. As an emergency safety feature, should the robot not be doing what it is supposed to or risks damage, use the broadcast ID to set all servos limp #254L<cr>. 434 +))) 391 391 392 -====== __Halt & Hold (**H**)__ ====== 436 +|(% colspan="2" %)((( 437 +====== __Halt & Hold__ ====== 438 +))) 439 +|(% style="width:30px" %) |((( 440 +Halt & Hold (**H**) 393 393 394 394 Example: #5H<cr> 395 395 396 396 This command causes the servo to stop immediately and hold that angular position. It overrides whatever the servo might be doing at the time the command is received (accelerating, travelling, deccelerating, etc.) 445 +))) 397 397 398 398 == Motion Setup == 399 399 449 +|(% colspan="2" %)((( 400 400 ====== __Origin Offset (**O**)__ ====== 401 - 451 +))) 452 +|(% style="width:30px" %) |((( 402 402 Example: #5O2400<cr>This command allows you to change the origin of the servo in relation to the factory zero position for that session. As with all action commands, the setting will be lost upon servo reset / power cycle. Origin offset commands are not cumulative and always relate to factory zero. In the first image, the origin at factory offset '0' (centered). 403 403 404 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-default.jpg||alt="LSS-servo-default.jpg"]]455 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-default.jpg||alt="LSS-servo-default.jpg"]] 405 405 406 406 407 407 In the second image, the origin, and the corresponding angular range (explained below) have been shifted by +240.0 degrees: 408 408 409 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-origin.jpg||alt="LSS-servo-origin.jpg"]]460 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-origin.jpg||alt="LSS-servo-origin.jpg"]] 410 410 411 411 412 412 Origin Offset Query (**QO**) ... ... @@ -420,23 +420,26 @@ 420 420 Example: #5CO-24<cr> 421 421 422 422 This command allows you to change the origin of the servo in relation to the factory zero position in EEPROM. The setting will be saved upon servo reset / power cycle. Origin offset configuration commands are not cumulative and always relate to factory zero. The new origin is also used in RC mode. In the example, the new origin will be at -2.4 degrees from the factory zero. 474 +))) 423 423 476 +|(% colspan="2" %)((( 424 424 ====== __Angular Range (**AR**)__ ====== 425 - 478 +))) 479 +|(% style="width:30px" %) |((( 426 426 Example: #5AR1800<cr> 427 427 428 428 This command allows you to temporarily change the total angular range of the servo in tenths of degrees. This applies to the Position in Pulse (P) command and RC mode. The default for (P) and RC mode is 1800 (180.0 degrees total, or ±90.0 degrees). The image below shows a standard -180.0 to +180.0 range, with no offset: 429 429 430 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-default.jpg||alt="LSS-servo-default.jpg"]]484 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-default.jpg||alt="LSS-servo-default.jpg"]] 431 431 432 432 Below, the angular range is restricted to 180.0 degrees, or -90.0 to +90.0. The center has remained unchanged. 433 433 434 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-ar.jpg||alt="LSS-servo-ar.jpg"]]488 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-ar.jpg||alt="LSS-servo-ar.jpg"]] 435 435 436 436 437 437 Finally, the angular range action command (ex. #5AR1800<cr>) and origin offset action command (ex. #5O-1200<cr>) are used to move both the center and limit the angular range: 438 438 439 -[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ lynxmotion-smart-servo-pro/lss-p-communication-protocol/WebHome/LSS-servo-ar-o-1.jpg||alt="LSS-servo-ar-o-1.jpg"]]493 +[[image:https://wiki.lynxmotion.com/info/wiki/lynxmotion/download/ses-pro/lss-pro/lss-p-communication-protocol/WebHome/LSS-servo-ar-o-1.jpg||alt="LSS-servo-ar-o-1.jpg"]] 440 440 441 441 442 442 Query Angular Range (**QAR**) ... ... @@ -446,9 +446,12 @@ 446 446 Configure Angular Range (**CAR**) 447 447 448 448 This command allows you to change the total angular range of the servo in tenths of degrees in EEPROM. The setting will be saved upon servo reset / power cycle. 503 +))) 449 449 505 +|(% colspan="2" %)((( 450 450 ====== __Angular Acceleration (**AA**)__ ====== 451 - 507 +))) 508 +|(% style="width:30px" %) |((( 452 452 The default value for angular acceleration is 100. Accepts values of between 1 and 100. Increments of 10 degrees per second squared. 453 453 454 454 Ex: #5AA30<cr> ... ... @@ -466,9 +466,12 @@ 466 466 Ex: #5CAA30<cr> 467 467 468 468 This writes the angular acceleration of servo #5 to 30 degrees per second squared (°/s^^2^^) to EEPROM. 526 +))) 469 469 528 +|(% colspan="2" %)((( 470 470 ====== __Angular Deceleration (**AD**)__ ====== 471 - 530 +))) 531 +|(% style="width:30px" %) |((( 472 472 The default value for angular deceleration is 100. Accepts values of between 1 and 100. Increments of 10 degrees per second squared. 473 473 474 474 Ex: #5AD30<cr> ... ... @@ -486,9 +486,12 @@ 486 486 Ex: #5CAD30<cr> 487 487 488 488 This writes the angular deceleration of servo #5 to 30 degrees per second squared (°/s^^2^^) to EEPROM. 549 +))) 489 489 551 +|(% colspan="2" %)((( 490 490 ====== __Gyre Direction (**G**)__ ====== 491 - 553 +))) 554 +|(% style="width:30px" %) |((( 492 492 "Gyre" is defined as a circular course or motion. The effect of changing the gyre direction is as if you were to use a mirror image of a circle. By default: CW = 1; CCW = -1. 493 493 494 494 Ex: #5G-1<cr> ... ... @@ -506,13 +506,19 @@ 506 506 Ex: #5CG-1<cr> 507 507 508 508 This changes the gyre direction as described above and also writes to EEPROM. 572 +))) 509 509 574 +|(% colspan="2" %)((( 510 510 ====== __First Position__ ====== 511 - 576 +))) 577 +|(% style="width:30px" %) |((( 512 512 In certain cases, a user might want to have the servo move to a specific angle upon power up; we refer to this as "first position" (a.k.a. "initial position"). The factory default has no first position value stored in EEPROM and therefore upon power up, the servo remains limp until a position (or hold command) is assigned. Note that the number should be restricted to -1790 (-179.0 degrees) to +1790 (179.0 degrees) and values beyond this will be changed to 1800.Query First Position in Degrees (**QFD**)Ex: #5QFD<cr> might return *5QFD900<cr>The reply above indicates that servo with ID 5 has a first position of 90.0 degrees. If there is no first position value stored, the reply will be DIS.Configure First Position in Degrees (**CFD**)Ex: #5CFD900<cr>This configuration command means the servo, when set to smart mode, will immediately move to 90.0 degrees upon power up. Sending a CFD command without a number (Ex. #5CFD<cr>) results in the servo remaining limp upon power up. In order to remove the first position, send no value, ex: #5CFD<cr> 579 +))) 513 513 581 +|(% colspan="2" %)((( 514 514 ====== __Maximum Speed in Degrees (**SD**)__ ====== 515 - 583 +))) 584 +|(% style="width:30px" %) |((( 516 516 Ex: #5SD1800<cr>This command sets the servo's maximum speed for motion commands in tenths of degrees per second for that session. In the example above, the servo's maximum speed for that session would be set to 180.0 degrees per second. The servo's maximum speed cannot be set higher than its physical limit at a given voltage. The SD action command overrides CSD (described below) for that session. Upon reset or power cycle, the servo reverts to the value associated with CSD as described below. Note that SD and SR (described below) are effectively the same, but allow the user to specify the speed in either unit. The last command (either SR or SD) received is what the servo uses for that session.Query Speed in Degrees (**QSD**)Ex: #5QSD<cr> might return *5QSD1800<cr>By default QSD will return the current session value, which is set to the value of CSD as reset/power cycle and changed whenever an SD/SR command is processed. If #5QSD1<cr> is sent, the configured maximum speed (CSD value) will be returned instead. You can also query the current speed using "2" and the current target travel speed using "3". See the table below for an example: 517 517 518 518 |**Command sent**|**Returned value (1/10 °)** ... ... @@ -522,11 +522,14 @@ 522 522 |ex: #5QSD3<cr>|Target travel speed 523 523 524 524 Configure Speed in Degrees (**CSD**)Ex: #5CSD1800<cr>Using the CSD command sets the servo's maximum speed which is saved in EEPROM. In the example above, the servo's maximum speed will be set to 180.0 degrees per second. When the servo is powered on (or after a reset), the CSD value is used. Note that CSD and CSR (described below) are effectively the same, but allow the user to specify the speed in either unit. The last command (either CSR or CSD) is what the servo uses for that session. 594 +))) 525 525 596 +|(% colspan="2" %)((( 526 526 ====== __Maximum Speed in RPM (**SR**)__ ====== 598 +))) 599 +|(% style="width:30px" %) |((( 600 +====== Ex: #5SR45<cr>This command sets the servo's maximum speed for motion commands in rpm for that session. In the example above, the servo's maximum speed for that session would be set to 45rpm. The servo's maximum speed cannot be set higher than its physical limit at a given voltage. SR overrides CSR (described below) for that session. Upon reset or power cycle, the servo reverts to the value associated with CSR as described below. Note that SD (described above) and SR are effectively the same, but allow the user to specify the speed in either unit. The last command (either SR or SD) received is what the servo uses for that session.Query Speed in RPM (**QSR**)Ex: #5QSR<cr> might return *5QSR45<cr>By default QSR will return the current session value, which is set to the value of CSR as reset/power cycle and changed whenever an SD/SR command is processed. If #5QSR1<cr> is sent, the configured maximum speed (CSR value) will be returned instead. You can also query the current speed using "2" and the current target travel speed using "3". See the table below for an example: ====== 527 527 528 -Ex: #5SR45<cr>This command sets the servo's maximum speed for motion commands in rpm for that session. In the example above, the servo's maximum speed for that session would be set to 45rpm. The servo's maximum speed cannot be set higher than its physical limit at a given voltage. SR overrides CSR (described below) for that session. Upon reset or power cycle, the servo reverts to the value associated with CSR as described below. Note that SD (described above) and SR are effectively the same, but allow the user to specify the speed in either unit. The last command (either SR or SD) received is what the servo uses for that session.Query Speed in RPM (**QSR**)Ex: #5QSR<cr> might return *5QSR45<cr>By default QSR will return the current session value, which is set to the value of CSR as reset/power cycle and changed whenever an SD/SR command is processed. If #5QSR1<cr> is sent, the configured maximum speed (CSR value) will be returned instead. You can also query the current speed using "2" and the current target travel speed using "3". See the table below for an example: 529 - 530 530 |**Command sent**|**Returned value (1/10 °)** 531 531 |ex: #5QSR<cr>|Session value for maximum speed (set by latest SD/SR command) 532 532 |ex: #5QSR1<cr>|Configured maximum speed in EEPROM (set by CSD/CSR) ... ... @@ -534,32 +534,16 @@ 534 534 |ex: #5QSR3<cr>|Target travel speed 535 535 536 536 Configure Speed in RPM (**CSR**)Ex: #5CSR45<cr>Using the CSR command sets the servo's maximum speed which is saved in EEPROM. In the example above, the servo's maximum speed will be set to 45rpm. When the servo is powered on (or after a reset), the CSR value is used. Note that CSD and CSR are effectively the same, but allow the user to specify the speed in either unit. The last command (either CSR or CSD) received is what the servo uses for that session. 609 +))) 537 537 538 -====== __Step Mode (**SM**)__ ====== 539 - 540 -Ex: #8SM2<cr> 541 - 542 -This sets servo with ID 8 to 1/2 step mode. Since this is an action as opposed to a configuration, it only affects that session. 543 - 544 -Note that the torque and max RPM of the actuator will be affected. 545 - 546 -Query Step Mode (**QSM**) 547 - 548 -Ex: #8QSM<cr> might return *8QSM2<cr> meaning servo with ID 8 is set to half step mode. 549 - 550 -Configure Step Mode (**CSM**) 551 - 552 -Ex: #8SM2<cr> 553 - 554 -This sets servo with ID 8 to 1/2 step mode. Since this is a configuration as opposed to a configuration and the servo will be in 1/2 step mode when powered. 555 - 556 556 == Modifiers == 557 557 613 +|(% colspan="2" %)((( 558 558 ====== __Speed (**SD**) modifier__ ====== 615 +))) 616 +|(% style="width:30px" %) |((( 617 +====== Example: #5D0SD180<cr> ====== 559 559 560 -(% class="wikigeneratedid" id="HTimedmove28T29modifier" %) 561 -Example: #5D0SD180<cr> 562 - 563 563 (% class="wikigeneratedid" %) 564 564 Modifier (SD) is only for a position (D) or relative position (MD) action and determines the speed of the move in tenths of degrees per second. A speed modifier (SD) of 180 would cause the servo to rotate from its current position to the desired absolute or relative position at a speed of 18 degrees per second. 565 565 ... ... @@ -571,69 +571,115 @@ 571 571 572 572 (% class="wikigeneratedid" %) 573 573 This command queries the current speed in microseconds per second. 630 +))) 574 574 632 +|(% colspan="2" %)((( 575 575 ====== __Timed move (**T**) modifier__ ====== 576 - 634 +))) 635 +|(% style="width:30px" %) |((( 577 577 Example: #5D15000T2500<cr> 578 578 579 579 Timed move can be used only as a modifier for a position (D, MD) actions. The units are in milliseconds, so a timed move of 2500 milliseconds would cause the servo to rotate from its current position to the desired position in 2.5 seconds. The onboard controller will attempt to ensure that the move is performed entirely at the desired velocity, though differences in torque may cause it to not be exact. This command is in place to ensure backwards compatibility with the SSC-32 / 32U protocol. 580 580 581 581 **Note:** If the calculated speed at which a servo must rotate for a timed move is greater than its maximum speed (which depends on voltage and load), then it will move at its maximum speed, and the time of the move may be longer than requested 641 +))) 582 582 583 -====== ====== 584 - 585 585 == Telemetry == 586 586 587 -====== __Query PCB Temperature (**QT**)__ ====== 588 - 645 +|(% colspan="2" %)((( 646 +====== __**Q**uery PCB **T**emperature (**QT**)__ ====== 647 +))) 648 +|(% style="width:30px" %) |((( 589 589 Ex: #5QT<cr> might return *5QT564<cr> 590 590 591 591 The units are in tenths of degrees Celcius, so in the example above, the servo's internal temperature is 56.4 degrees C. To convert from degrees Celcius to degrees Farenheit, multiply by 1.8 and add 32. Therefore 56.4C = 133.52F. 652 +))) 592 592 593 -====== __Query Temperature Probe (**QTP**)__ ====== 654 +|(% colspan="2" %)((( 655 +====== __**Q**uery **C**urrent (**QC**)__ ====== 656 +))) 657 +|(% style="width:30px" %) |((( 658 +====== Ex: #5QC<cr> might return *5QC140<cr> ====== 594 594 595 -Ex: 596 - 597 -====== __Query Temp of Controller (**QTCW**)__ ====== 598 - 599 -Ex: 600 - 601 -An alternative is QTCE 602 - 603 -====== __Query Current (**QC**)__ ====== 604 - 605 -Ex: #5QC<cr> might return *5QC140<cr> 606 - 607 607 The units are in milliamps, so in the example above, the servo is consuming 140mA, or 0.14A. It represents the RMS value. The query calculates the RMS value of the current sent from the motor driver to the stepper motor. 661 +))) 608 608 609 -====== __Query Model String (**QMS**)__ ====== 663 +|(% colspan="2" %)((( 664 +====== __**Q**uery **M**odel **S**tring (**QMS**)__ ====== 665 +))) 666 +|(% style="width:30px" %) |((( 667 +====== Ex: #5QMS<cr> might return *5QMSLSS-HS1<cr> ====== 610 610 611 -Ex: #5QMS<cr> might return *5QMSLSS-HS1<cr> 612 - 613 613 This reply means that the servo model is LSS-HS1: a high speed servo, first revision. 670 +))) 614 614 615 -====== __Query Firmware (**QF**)__ ====== 616 - 672 +|(% colspan="2" %)((( 673 +====== __**Q**uery **F**irmware (**QF**)__ ====== 674 +))) 675 +|(% style="width:30px" %) |((( 617 617 Ex: #5QF<cr> might return *5QF368<cr> 618 618 619 619 The number in the reply represents the firmware version, in this example being 368.The command #5QF3<cr> can also be sent and the servo will reply with a 3 numbers firmware version, for example, 368.29.14 679 +))) 620 620 621 -====== __Query Serial Number (**QN**)__ ====== 681 +|(% colspan="2" %)((( 682 +====== __**Q**uery Serial **N**umber (**QN**)__ ====== 683 +))) 684 +|(% style="width:30px" %) |((( 685 +====== Ex: #5QN<cr> might return *5QN12345678<cr> ====== 622 622 623 -Ex: #5QN<cr> might return *5QN12345678<cr> 624 - 625 625 The number in the response (12345678) would be the servo's serial number which is set and should not be changed by the user. 688 +))) 626 626 627 -====== __Query IMU Linear (**QIX** **QIY** **QIZ**)__ ====== 690 +|(% colspan="2" %)((( 691 +====== __**Q**uery **T**emperature **P**robe (**QTP**)__ ====== 692 +))) 693 +|(% style="width:30px" %) |((( 694 + 695 +))) 628 628 629 -Ex: #6QIX<cr> might return *6QIX30<cr> 697 +|(% colspan="2" %)((( 698 +====== __**Q**uery **T**emperature **M**CU (**QTM**)__ ====== 699 +))) 700 +|(% style="width:30px" %) |((( 701 + 702 +))) 630 630 631 -This command queries servo 6's IMU's linear accelerometer in the X direction. The response is 30mm per second squared. 704 +|(% colspan="2" %)((( 705 +====== __Query Temp Controller Error (**QTCE**)__ ====== 706 +))) 707 +|(% style="width:30px" %) |((( 708 + 709 +))) 632 632 633 -====== __Query IMU Angular (**QIA** **QIB** **QIC**)__ ====== 711 +|(% colspan="2" %)((( 712 +====== __Query Temp Controller Warning (**QTCW**)__ ====== 713 +))) 714 +|(% style="width:30px" %) |((( 715 + 716 +))) 634 634 635 -Ex: #6QIB<cr> might return *6QIB44<cr> 718 +|(% colspan="2" %)((( 719 +====== __Query Error Flag (**QEF**)__ ====== 720 +))) 721 +|(% style="width:30px" %) |((( 722 + 723 +))) 636 636 725 +|(% colspan="2" %)__**Q**uery **I**MU Linear (**QIX** **QIY** **QIZ**)__ 726 +|(% style="width:30px" %) |((( 727 +====== Ex: #6QIX<cr> might return *6QIX30<cr> ====== 728 + 729 +This command queries servo 6's IMU's linear accelerometer in the X direction. The response is 30mm per second squared. 730 +))) 731 + 732 +|(% colspan="2" %)((( 733 +====== __**Q**uery **I**MU Angular (**QIA** **QIB** **QIG**)__ ====== 734 +))) 735 +|(% style="width:30px" %) |((( 736 +====== Ex: #6QIB<cr> might return *6QIB44<cr> ====== 737 + 637 637 This command queries servo 6's IMU's linear accelerometer in the X direction. The response is 4.4 degrees per second squared. 739 +))) 638 638 639 639