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| ==Component Source Code== | | ==Component Source Code== |
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| | Please click here to download the component source project: [https://www.flowcode.co.uk/wiki/componentsource/FC_Comp_Source_DSP_SimLoad.fcfx FC_Comp_Source_DSP_SimLoad.fcfx] |
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| Please click here to view the component source code (Beta): [https://www.flowcode.co.uk/FlowchartView/?wfile=componentsource/FC_Comp_Source_DSP_SimLoad.fcfx FC_Comp_Source_DSP_SimLoad.fcfx] | | Please click here to view the component source code (Beta): [https://www.flowcode.co.uk/FlowchartView/?wfile=componentsource/FC_Comp_Source_DSP_SimLoad.fcfx FC_Comp_Source_DSP_SimLoad.fcfx] |
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| ==Detailed description== | | ==Detailed description== |
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| ==Examples== | | ==Examples== |
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| ==Macro reference==
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;"
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| | width="10%" align="center" style="background-color:#D8C9D8;" align="center" | [[File:Fc9-comp-macro.png]]
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| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''SimulateLoadArray'''
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| | colspan="2" | Passes an entire buffer into the delay buffer and spits out a delayed version of the buffer at the other end
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| | width="10%" align="center" style="border-top: 2px solid #000;" | [[File:Fc9-void-icon.png]] - VOID
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| | width="90%" style="border-top: 2px solid #000;" | ''Return''
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| |}
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;"
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| | width="10%" align="center" style="background-color:#D8C9D8;" align="center" | [[File:Fc9-comp-macro.png]]
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| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''SimulateLoad'''
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| | colspan="2" | Simulates a load change with a new control value being applied and a new feedback signal gathered from the output.
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| | width="10%" align="center" style="border-top: 2px solid #000;" | [[File:Fc9-void-icon.png]] - VOID
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| | width="90%" style="border-top: 2px solid #000;" | ''Return''
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| |}
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| ==Property reference==
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;"
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| | width="10%" align="center" style="background-color:#D8C9D8;" | [[File:Fc9-prop-icon.png]]
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| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''Properties'''
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| | width="10%" align="center" | [[File:Fc9-type-16-icon.png]]
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| | width="90%" | Connect To
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| | colspan="2" | DSP component with output buffer to collect our data from.
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| | width="10%" align="center" | [[File:Fc9-type-21-icon.png]]
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| | width="90%" | Buffer Size
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| | colspan="2" | Number of individual elements the buffer can store, default 1.
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| | width="10%" align="center" | [[File:Fc9-type-16-icon.png]]
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| | width="90%" | Buffer Type
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| | colspan="2" | Sets the buffer data type.
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| | width="10%" align="center" | [[File:Fc9-type-16-icon.png]]
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| | width="90%" | Direction
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| | colspan="2" | Sets the data direction flow of the component
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| | width="10%" align="center" style="background-color:#EAE1EA;" | [[File:Fc9-conn-icon.png]]
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| | width="90%" style="background-color:#EAE1EA; color:#4B008D;" | Load
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| | width="10%" align="center" | [[File:Fc9-type-16-icon.png]]
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| | width="90%" | Model Type
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| | colspan="2" |
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| | width="10%" align="center" | [[File:Fc9-type-16-icon.png]]
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| | width="90%" | Model Order
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| | colspan="2" | The order of a differential equation is the highest degree of derivative present in that equation. A system whose input-output equation is a second order differential equation is called Second Order System.
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| | width="10%" align="center" | [[File:Fc9-type-8-icon.png]]
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| | width="90%" | 1st Order
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| | colspan="2" | Determines to the response of the syecific order within the system. Output = (OldOutput * (1 - Order)) + (NewInput * Order)
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| | width="10%" align="center" | [[File:Fc9-type-8-icon.png]]
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| | width="90%" | 2nd Order
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| | colspan="2" | Determines to the response of the syecific order within the system. Output = (OldOutput * (1 - Order)) + (NewInput * Order)
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| | width="10%" align="center" | [[File:Fc9-type-8-icon.png]]
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| | width="90%" | Initial Output
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| | colspan="2" |
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| |}==Macro reference==
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;" | | |
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| | ==Macro reference== |
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| | ===SimulateLoad=== |
| | {| class="mtx-class-macrotable wikitable" |
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| | width="10%" align="center" style="background-color:#D8C9D8;" align="center" | [[File:Fc9-comp-macro.png]] | | | width="10%" align="center" class="mtx-class-macrohead" | [[File:Fc9-comp-macro.png]] |
| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''SimulateLoadArray''' | | | width="90%" class="mtx-class-macrohead" | '''SimulateLoad''' |
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| | colspan="2" | Passes an entire buffer into the delay buffer and spits out a delayed version of the buffer at the other end | | | colspan="2" | Simulates a load change with a new control value being applied and a new feedback signal gathered from the output. |
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;" | | ===SimulateLoadArray=== |
| | {| class="mtx-class-macrotable wikitable" |
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| | width="10%" align="center" style="background-color:#D8C9D8;" align="center" | [[File:Fc9-comp-macro.png]] | | | width="10%" align="center" class="mtx-class-macrohead" | [[File:Fc9-comp-macro.png]] |
| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''SimulateLoad''' | | | width="90%" class="mtx-class-macrohead" | '''SimulateLoadArray''' |
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| | colspan="2" | Simulates a load change with a new control value being applied and a new feedback signal gathered from the output. | | | colspan="2" | Passes an entire buffer into the delay buffer and spits out a delayed version of the buffer at the other end |
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| | width="90%" style="border-top: 2px solid #000;" | ''Return'' | | | width="90%" style="border-top: 2px solid #000;" | ''Return'' |
| |} | | |} |
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| ==Property reference== | | ==Property reference== |
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| {| class="wikitable" style="width:60%; background-color:#FFFFFF;" | | {| class="mtx-class-macrotable wikitable" |
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| | width="10%" align="center" style="background-color:#D8C9D8;" | [[File:Fc9-prop-icon.png]] | | | width="10%" align="center" class="mtx-class-macrohead" | [[File:Fc9-prop-icon.png]] |
| | width="90%" style="background-color:#D8C9D8; color:#4B008D;" | '''Properties''' | | | width="90%" class="mtx-class-macrohead" | '''Properties''' |
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| | colspan="2" | Sets the data direction flow of the component | | | colspan="2" | Sets the data direction flow of the component |
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| | width="10%" align="center" style="background-color:#EAE1EA;" | [[File:Fc9-conn-icon.png]] | | | width="10%" align="center" class="mtx-class-propfolder" | [[File:Fc9-conn-icon.png]] |
| | width="90%" style="background-color:#EAE1EA; color:#4B008D;" | Load | | | width="90%" class="mtx-class-propfolder" | Load |
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| Author
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Matrix Ltd
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| Version
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1.2
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| Category
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DSP Operators
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Simulated Control Load component
Allows a simulated load to be connected to the DSP network allowing you to model external factors such as Motor Speed, Motor Position, Temperature, Humidity, Pressure, Flow etc. Useful when used with a feedback based control system.
Component Source Code
Please click here to download the component source project: FC_Comp_Source_DSP_SimLoad.fcfx
Please click here to view the component source code (Beta): FC_Comp_Source_DSP_SimLoad.fcfx
Detailed description
No detailed description exists yet for this component
Examples
No additional examples
Macro reference
SimulateLoad
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SimulateLoad
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| Simulates a load change with a new control value being applied and a new feedback signal gathered from the output.
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- VOID
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Return
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SimulateLoadArray
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SimulateLoadArray
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| Passes an entire buffer into the delay buffer and spits out a delayed version of the buffer at the other end
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- VOID
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Return
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Property reference
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Properties
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Connect To
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| DSP component with output buffer to collect our data from.
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Buffer Size
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| Number of individual elements the buffer can store, default 1.
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Buffer Type
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| Sets the buffer data type.
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Direction
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| Sets the data direction flow of the component
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Load
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Model Type
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Model Order
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| The order of a differential equation is the highest degree of derivative present in that equation. A system whose input-output equation is a second order differential equation is called Second Order System.
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1st Order
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| Determines to the response of the syecific order within the system. Output = (OldOutput * (1 - Order)) + (NewInput * Order)
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2nd Order
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| Determines to the response of the syecific order within the system. Output = (OldOutput * (1 - Order)) + (NewInput * Order)
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Initial Output
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