Omega FST‐211, FST‐221, FST‐321, FST‐323 User guide

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INTRODUCTION/TABLEOFCONTENTS StepOne
Offeredinliquidandgassensortypes,thegeneralpurposeflowswitchprovidesreliableloworno‐flow detectionofrelativelyclean,non‐coatingmediawithone1Arelayoutput.Liquidexamplesincluedwaterand aceticacid.AvailableinPolypropylene‐PPSorPVDF,theshortflowsensorisusedinpipeorductingfrom½” to1‐1/2”,andthelongflowsensorisusedin2”andup.Theflowswitchsetpointmaybeadjustedfrom0.,04 to3fpsinliquidsor1to90fpsingasesasalow‐flowalarm.Theflowsensorisbestappliedinapplications withrelativelyconstanttemperatures.
NewFeatures
RuggedPolypropylene‐PPSorPVDFsensorforcorrosiveliquidsandgasses.AdjustablesetpointwithLEDforfloworno‐flowstatusindication.60VArelayselectableNOorNCviapowersupplywiringpolaritySolidStatesensorisnotdamagedbyover‐rangingflowvelocities.
TableofContents
Specifications:........................................................................................................................................................4
MakeaFail‐SafeSystem:...........................................................................................................................4
Dimensions: .........................................................................................................................................................5
Configurations:...........................................................................................................................................5
SafetyPrecautions:................................................................................................................................................6
Introduction:.........................................................................................................................................................7
Technology:................................................................................................................................................7
InitializingSequenceforFST‐200Series:...................................................................................................7
SetPoints:..................................................................................................................................................7
Installation: .........................................................................................................................................................8
Wiring: .........................................................................................................................................................9
SupplyVoltage:..........................................................................................................................................9
SignalOutput:............................................................................................................................................9
WiringtoanOmegaEngineeringController:.............................................................................................9
WiringtheRelayOutput:..........................................................................................................................10
WiringasaP‐ChannelorN‐ChannelOutput:..........................................................................................11
Calibration: .......................................................................................................................................................12
SetPoint:..................................................................................................................................................12
Maintenance:.......................................................................................................................................................13
CleaningProcedure:..................................................................................................................................13
TestingtheSensor(FST‐200SeriesOnly):...............................................................................................13
TestingtheSensor(FST‐300SeriesOnly):...............................................................................................14
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SPECIFICATIONS StepTwo
Setpointrange: FST‐200:.04to3fps(.012to.91mps)  FST‐300:1to.90fps(.3to27mps)Factorysetpoint: FST‐200:.2fps(.06mps)  FST‐300:10fps(3mps)
Repeatability: ±.5%ofsetpoint@fixedtemp. Responsetime: 1‐10seconds Setpointadjust.: Potentiometer LEDindication: FlowStatus Viscosityrange: 1‐200centipoise(FST‐200seriesonly) SupplyVoltage: 14‐36VDC Consumption: 70mAmaximum

Contacttype: (1)SPSTrelay Contactrating: 60VA,1Amax Contactoutput: SelectableNO/NC Processtemp.: F:32°to140° C:0°to60° Electronicstemp. F:‐40°to140° C:‐40°to60° Pressure: 150psi(10bar)@25°C.,derated@1.667
psi(.113bar)per°C.Above25°C.
Sensorrating: NEMA4X(IP65)
SensorMaterial: FST‐211/‐221/‐321/‐323: PP‐PPS  FST‐212/‐222/‐322/‐324: PVDFCablejacketmat.: FST‐211/‐221/‐321/‐323: PP  FST‐212/‐222/‐322/‐324: PFA
Cabletype: 4‐conductor,#22AWG(shielded) Cablelength: 10’(3m) Processmount: 3/4"NPT(3/4”G/Rp) Mount.Gasket: FKM(Gversiononly) Classification: Generalpurpose CEcompliance: EN61326EMC
EN61010‐1safety
MakeaFail‐SafeSystem:Designafail‐safesystemthataccommodatesthepossibilityofswitchand/or
powerfailure.OMEGAENGINEERINGrecommendstheuseofredundantbackupsystemsandalarmsin additionto the primarysystem.Addingaredundantalarmswitch tothesystemis a costeffectivemeans topreventcostlyrun‐dryissues.
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DIMENSIONS StepThree
LongSensor(FST‐221/‐222/‐323/‐324)
ShortSensor(FST‐211/‐212/‐321/‐322)
Configurations(LiquidFlowSwitches):
Part
Number
Length
Material
(body)
Material
(cable)
Thread
(insidexoutside)
FST‐211‐SPST Short(3”) PP‐PPS Polypropylene ¾”NPTx¾”NPT FST‐212‐SPST Short(3”) PVDF PFA ¾”NPTx¾”NPT FST‐221‐SPST Long(4.5”) PP‐PPS Polypropylene ¾”NPTx¾”NPT FST‐222‐SPST Long(4.5”) PVDF PFA ¾”NPTx¾”NPT
Configurations(GasFlowSwitches):
Part
Number
Length
Material
(body)
Material
(cable)
Thread
(insidexoutside)
FST‐321‐SPST Short(3”) PP‐PPS Polypropylene ¾”NPTx¾”NPT FST‐322‐SPST Short(3”) PVDF PFA ¾”NPTx¾”NPT FST‐323‐SPST Long(4.5”) PP‐PPS Polypropylene ¾”NPTx¾”NPT FST‐324‐SPST Long(4.5”) PVDF PFA ¾”NPTx¾”NPT
Note:Theaboveproductsshipwithastandard10’cablelength.Adding“‐25”totheendofthepartnumber indicatesthattheproducthasa25’cablelength(ex.FST‐211‐SPST‐25).Adding“‐50”totheendofthepart numberindicatesthattheproducthasa50’cablelength(ex.FST‐321‐SP
ST‐50).
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SAFETYPRECAUTIONS StepFour
AboutthisManual:PLEASEREADTHEENTIREMANUALPRIORTOINSTALLINGORUSINGTHISPRODUCT.
ThismanualincludesinformationonallmodelsofOmegaEngineeringThermalDispersionFlowSwitches:FST‐ 200andFST‐300series.Pleasereferto thepartnumberlocatedontheswitchlabeltoverifythe exactmodel whichyouhavepurchased.
User’sResponsibilityforsafety:OmegaEngineeringmanufactures awiderangeofflowswitchesand
technologies,whileeachofthesesensorsisdesigned to operatein a wide  varietyofapplications;itisthe user’sresponsibilitytoselectasensormodelthatisappropriatefortheapplication,installitproperly,perform testsoftheinstalledsystem,andmaintainallcomponents.Thefailure to doso could resultinproperty damageorseriousinjury.
ProperInstallationandHandling:Becausethisisan eclecticallyoperateddevice,onlyproperlytrained
staffshouldinstalland/orrepairthis product. Useapropersealantwithallinstallations.Note:Alwaysinstall
the3/4”FKMgasketwithallversionsofFlowswitches withmetricthreads.The G threadedversionwillnot sealunlessthegasketis properlyinstalled.Neverovertightenthesensorwithinthefitting,beyonda
maximumof80inch‐poundstorque.Alwayscheckforleakspriortosystemstart‐up.
MaterialCompatibility:TheFST‐200andFST‐300seriessensorsareavailableintwo differentwetted
materials.ModelsFST‐211/‐221/‐321/‐323aremadeofPolypropylene(PP)withPPStips.ModelsFST‐212/‐ 222/‐322/‐324aremadeofPolyvinylidene Fluoride (PVDF). Makesurethatthemodelyouhaveselectedis compatiblewiththeapplication liquid. Todeterminethechemicalcompatibilitybetween the sensorandits applicationliquids,refertoanindustryreferencesuchastheCompassCorrosion.
WiringandElectrical:Thesupplyvoltageusedtopowerthesensorshouldneverexceedamaximumof36
voltsDC.Electricalwiringofthesensorshouldbeperformedinaccordancewithallapplicablenational, state, andlocalcodes.
Flammable,ExplosiveandHazardousApplications:DONOTUSETHEFST‐200orFST‐300SERIESGENERAL
PURPOSEFLOWSWITCHESINHAZAROUSLOCATIONS.
Warning
Theratingfortherelayis60VA,1Ampmax. Omega Engineering’s Thermal Dispersion flow switches are not recommendable for use with
electricallycharged application liquids.Formostreliable operation, theliquidbeingmeasuredmay needtobeelectricallygrounded.
Thesensingtipofthesensormustalwaysbesubmersedintheliquidandneverexposedtoair. Theliquidtemperaturemustremainconstantandnotchangethroughouttheprocess.
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INTRODUCTION StepFive
Technology:TheThermalDispersionflowswitchesmeasureliquidorgastemperaturetodeterminechanges
inflowvelocity.Asfluidflows across thesensingtips, thetemperatureisreducedproportionatelyas a functionoftheflowrate.Whenatemperatureorvelocityshiftreachestheuserdefinedsetpoint,theswitch changesstateindicatingtheappropriateflowcondition(flowofno‐flow).
OMEGAENGINEERING’s sophisticatedelectronicsconvertthetemperatureshift into asignalwhichindicates whethera floworno‐flowconditionoccurs.Dependingonhowthesensoriswired,thissignalmaybewired fornormallyopenornormallyclosedcircuits.
OMEGAENGINEERING’s ThermalDispersionflowswitcheshavenomovingpartstoclogorfoul,makingthem suitablefor averityofapplications,includingnon‐coatingandnon‐scalingliquids.The FST‐200seriesdirectly measuremassflowandcanoperateoverboardrangeofliquidsfrom0.4to 1.2 specific gravity and 1to300 cp.
InitializingSequenceforFST‐200ser
ies:Whentheflowswitchispoweredup whilesubmersed,theFST‐200
serieswillimmediatelyindicateflowbeforeswitching to itscorrectstate.Atimedelaymaybeusedto eliminatetheinitializationsequence.OmegaEngineering’sthermaldispersionrelaycontrollersfeaturea0to 60secondti
medelayforyourconvenience.
SetPoints:TheFST‐200seriesliquidflowswitchsetpointisfactorycalibratedto0.2fpsandtheFST‐300gas flowswitcharesetto10fps.Toconvertfeet/sectoGPM,pleaserefertothechartbelow.
FST‐200Series
FlowRatevs.Velocity
(gpmvs.fps)
FST‐300Series
FlowRatevs.Velocity
(scfmvs.fps)
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Installation StepSix
TheFST‐200seriesflowswitchmustalwaysbeincontactwith theliquidbeingmeasured.TheFST‐300seriesflowswitchmust neverbesubmersedinliquid.Bothflowswitchesfeaturea3/4”
NPTthreadswhichwillallowit to beusedwithvarioustypesof fittings.Besuretochecktheinsertiondepthofth
eflowswitchin thefittingafteritisinstalled.Seethediagramtotherightforthe recommendedinsertiondepth.
Thetwotipofthesensoraretobeperpendiculartothe
flow(asseentotheright).Nevermountthetipswith oneinfromtoftheothe
r.
Whenusinganytypeoffitting,theorientationaswellasthe
insertiondepthoftheflowswitchinthepipeiscritical.Seethe diagramtotherightfortherecommendedorientation.

Warning Theflowswitchtipshaveathinplasticwallwhichmaybedamagedifdroppedorinstalledimproperly. TheFST‐200seriesflowswitchisdesignedforuseinliquid.Forbestresults,avoidinstallingtheFST‐200
serieswherebubblesarepresentorwherethetipsoftheswitchmaybeoutoftheliquid.
TheFST‐300seriesflowswitchisdesignedforusingasapplications.Forbestresults,avoidinstallingthe
FST‐300serieswhereitmaybesubmersedinliquid.
Always installtheFKMgasketwithallversionsofthemodelFST‐212/‐222/‐322/‐324.TheGthreaded
versionwillnotsealunlessthegasketisproperlyinstalled.
The twotemperatureprobes(tips)mustalwaysbeperpendiculartotheflow(seetheflowatthesame
time).
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WIRING StepSeven
SupplyVoltage:Thesupplyvoltage totheThermalDispersionflowswitchshouldneverexceed aminimum outputof14VDCormaximumoutputof36VDC.
RequiredCableLength:DeterminethelengthofthecablerequiredbetweentheThermalDispersionflow switchanditspointoftermination. Allow enoughslack to ensuretheeasyinstallation,removaland/or maintenanceofthesensor.Thecablelengthmaybeextendedupto a maximumof1000ft,using a well‐ insulated14to20gaugeshieldedfourconductorcable.
WireStripping:Usinga10gaugewirestripper,carefullyremovetheouterlayerofinsulationfromthelast1‐ 1/4”ofthe sensor’s cable.Unwrapanddiscardtheexposedfoilshieldfromaroundthesignalwires,leaving thedrainwireattachedifdesired.With a 20gaugewirestripper,removethelast1/4”ofthecolored insulationfromthesignalwires.
SignalOutput(RelaySwitching):
Allowsthesensor to switch a smallloadonoroff
NormallyOpenWiring:
directly,usinganinternalrelayratedbelow60VA. TheNO/NCstatusissetbythepolarityofthevoltage feedingtheredandblackwires.Thegreenwireisthe commonfortherelayandthewhitewireistheNOor NC,dependingonthepolarityofredandblack.
WiringtoanOmegaEngineeringController: LVCN‐131/‐141SeriesController
FLCN‐100SeriesController
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WIRING StepSeven
WiringtheRelayOutput:TheFlow switchrelayoutputcanbewiredas adrycontacttoaVDCorVACpower source.Theflowswitchdoesrequire14‐36VDC power to operatethesensorandswitchtherelay.All installationsbelowidentifyadryswitchstateasthenormalpositionoftherelay.
SwitchingaNormallyOpenDCLoad(OpenduringFlow,ClosedduringNo‐Flow):
TheRedwireconnects to Positive(+)ofthe power supplyandtheBlackwireconnectstoNegative( ‐).The LOADcanbeattached to either the GreenorWhite wires.Completeth
ecircuitbyconnectingtheGreento (+)VDCpowerorWhite to (‐) VDC power (see illustrationtotheright).
SwitchingaNormallyClosedDCLoad(ClosedduringFlow,OpenduringNo‐Flow):
TheBlackwireconnects to positive(+)of the power supplyandtheRedwireconnectstoNegative(‐).Th
e Loadcanbeattached to eithertheGreenorWhite wires.Complete the circuitbyconnectingtheGreen to(+)VDCpowerorWhiteto(‐)VDCpower(see illustrationtotheright).
SwitchingaNormallyOpenACLoad(OpenduringFlow,ClosedduringNo‐Flow):
TheRedwireconnects toPositive(+)oftheDC power supplyandtheBlackwireconnectstoNegative(‐).The LOADcanbeattachedtotheGreenwireandtheHotof theVAC power. Connect thewhite to theNeutralof theVAC power (seeillustration to theright).Low voltageVACislessthan36VAC.
SwitchingaNormallyClosedACLoad(ClosedduringFlow,OpenduringNo‐Flow):
TheBlackwireconnects to Positive(+)oftheDC powersupplyandtheRedwireconnectstoNegative (‐).TheLOADcanbeatt
achedto theGreenwireand theHotoftheVACpower.ConnecttheWhitetothe NeutraloftheVAC power (seeillustration to the right).LowvoltageVACislessthan36VAC.
ForallSensorWiringdiagramsabove:
SensorPower:RedandBlackWires(36VDCMax.) Rela
yRating: GreenandWhiteWires(60VA,1AMax.)
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WIRING StepSeven
WiringasaP‐ChannelorN‐Channeloutput:TheFlowswitchcanbesubstitutedforeitheraP‐Channel(PNP,
Sourcing)outputorN‐Channel(NPN,sinking)output.
NormallyOpenDCLoadasaP‐ChannelOutput(OpenduringFlow,ClosedduringNo‐Flow):
Towireas a NO P‐Channelo
utputfollowthe directionsbelow.TheRedWireconnects to Positive (+)ofthe power supplyandtheBlackwireconnects toNegative(‐).TheGreenwireisjumpingtotheRed wirewhiletheWhitewireisconnected totheLOAD. JumpertheLOADbacktotheNegative(‐)tocomplete thecircui
t.
NormallyClosedDCLoadasaP‐ChannelOutput(ClosedduringFlow,OpenduringNo‐Flow):
Towireas a NC P‐Channeloutput,followthe directionsbelow.TheBlackwireconnects to Positive (+)of the powersupplyandtheRedwireconnects to Negative (‐).TheGreenwireisjumping to theBlack wirewhiletheWhitewireisconnected totheLOAD. JumpertheLOADbacktotheNegative(‐)tocomplete thecircuit.
NormallyOpenDCLoadasaN‐ChannelOutput(OpenduringFlow,ClosedduringNo‐Flow):
Towireas a NO N‐Channeloutput,followthe directionsbelow.TheRedwireconnects to Positive (+)ofthe power supplyandtheBlackwireconnects toNegative( ‐).ThewhitewireisjumpingtotheBlack wirewhiletheGreenwireisconnectedto theLOAD. JumpertheLOADbacktothePositive(+)tocomplete thecircuit.
NormallyClosedDCLoadasaN‐ChannelOutput(ClosedduringFlow,OpenduringNo‐Flow):
Towireas a NC N‐Channeloutput,followthe directionsbelow.TheBlackwireconnects to Positive (+)ofthedirectionsbelow.TheBlackWireconnects toNegative(‐).Thewhitewireisju
mping to theRed wirewhiletheWhitewireisconnected totheLOAD. JumpertheLOADbacktoPositive(+)tocompletethe circuit.
ForallSensorWiringdiagramsabove:
SensorPower:RedandBlackWires(36VDCMa
x.)
RelayRating: GreenandWhiteWires(60VA,1AMax.)
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CALIBRATION StepEight
SetPoint:Ifthepresetfactorycalibrationisnotadequateforyourapplication,followthecalibrationsteps
listedbelow.
Note: The switch’sinternalLEDwillbeonwhentheswitchdetectsno‐flowandwilloffwhentheswitch detectsflow,regardlessofthepolarityoftheRedandBlackwires.ReversingtheRedandBlackwireswill reversethepolarityoftherelayswitch,butnottheinternalLED.
1. Install thefittingandflowswitchasdescribedintheInstallationsectionofthismanual.Turntheflow
switchandcontrollerpoweronandadjusttheflowratetotheapplicationsetting.Ifthemedium  to be sensedislikely to besubject to anytemperature variation, theflowswitchshouldbesetas the highest normaltemperaturelikelytobeencountered.
2. Locate thepotentiometerknobatthetopoftheflowswitch.TheredLEDisvisiblethroughthe
potentiometer.Theadj
ustmentisasingleturn270°potentiometer.Theinitialresponsetimeoftheflow switchafteradjustmentis 1 to10seconds.Adjustthepotentiometer inslowincrementsandwaitforthe response.
a. LEDisON‐IftheLEDison,slowlyadjustthepotentiometercounter‐clockwise,withasmallflathead
screwdriveruntiltheLEDturnoff.
b. LEDisOFF‐
IftheLEDisoff,slowlyadjustthepotentiometerclockwise.withasmallflathead
screwdriveruntilthelightturnson.
3. AdjustthepotentiometerbackandforthwheretheLEDisswitching,eventuallysettlingforwheretheLED
isOFF(thisisthelowflowstatefortheswitch).
a. Iftheflowisincreased,theLEDwillremainOFFindicatingaflowcondition b. Iftheflowisdecrease,theLEDwillturnONindicatingano‐flowcondition.
4. Verifythatthenewcalibrationiscorrectbyloweringthesystemflowratebelowthesetpointandcheckto
seethattheredLEDturnson.Thenincreasetheflowrateabovethesetpointandverifythatthe redLED turnsoffaccordingly.
FST‐200SeriesFlowSwitch
(LiquidOnly)
Potentiometer
Location
FST‐300FlowSwitch
(GasOnly)

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Page 13
MAINTENANCE StepNine
General:TheFlowswitchrequiresnoperiodicmaintenanceexcepttocleanoffanydepositsorscalingfrom
thesensortipasnecessary.Itisthe responsibility oftheuser to determinetheappropriatemaintenance schedule,basedonthespecificcharacteristicsoftheapplicationliquids.
CleaningProcedure:
1. Power:Makesurethatallpowertothesensor,controllerand/orpowersupplyiscompletely
disconnected.
2. SensorRemoval: Make surethattheflowisoffandthepressureisdownpriortoremovingtheFlow
switch.Carefully,removethesensorfromtheinstallation.Replacethesensorwitha3/4”NPTplugto
insurethattheliquiddoe
snotleakoutduringthisprocedure.Donotre‐installtheFlowswitchifthe
threadsaredamaged.
3. Cleaningthesensor: Use asoftbristlebrushandmilddetergent,carefullywashtheThermalDispersion
flowswitch.Donotuseharshabrasivessuchassteelwoolorsandpaper,whichmig
htdamagethesurface sensor.Donotuseincompatiblesolventswhichmaydamagethesurfacesensor.Donotuseincompatible solventswhichmaydamagethesensor’sPP/RytonorPVDFplasticbody.
4. SensorInstallation: Follow theappropriatestepsofinstallationasoutlinedintheinstallationsectionof
thismanual.
TestingtheSensor(FST‐200SeriesOnly):
1. Immersingtheswitch:Placetheswitchinacupofwater.Makesurethetipsaresubmersedinthewater.
2. Power:Turnonpowertotheswit chwithRedto(+)andBlackto(‐).Youcanreversethepolarityif
desired.
3. No‐Flow/FlowTest:Withtheswitchsettingstillinthecup,waituntiltheRedLEDturnsON(no‐flow
condition).
a. SwirltheswitchinthecupandwaituntiltheRedLEDturnOFF(flowcondition). b. StopswirlingthesensorandletitrestinthecupwaitingfortheRedLEDtoturnONagain(no‐flow
condition).
c. Repeattheabovetwosteps.
4. RelayTest:Connectamultimeter(settoreadOhms) to theWhiteandGreenWires.Performtheabove
No‐Flow/Flowtestwiththemultimeterconnecttoobservetheactuationoftherelay.
a. WithRed to (+)andBlack to (‐),themultimeterwillread a smallresistanceduringno‐flow(closed
relay)andOLduringaflowcondition(openrelay).
b. ReversePolarity[Redto (‐) andBlack to (+)]toseethemultimeterreadOLduring a no‐flow state
(openrelay)andasmallresistanceduringaflowcondition(closedrelay).
TheNo‐Flow/Flowtestdeterminesiftheswitchiscapableofsensingthechangesbetweenno‐flowandflow. TheRelaytestdeterminestheabilityoftherelaytoswitchbetweenano‐flowandflowcondition.Thisisthe basictesttodeterminefunctionalityofthesensor.
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MAINTENANCE StepNine
TestingtheSensor(FST‐300SeriesOnly):
1. Creating a No‐FlowTestPoint:Thepurposeofthisstepistocreateano‐flowstateforthesensortobe
testedagainst.Sincethisis a lowflowswitch,even a buildingsHVACsystemcancreate a flowthatthe sensorcanread.
a. Placetheswitchonatableandplaceanemptycupoverthesensingtips. b. Thecupwillactlikeashieldtoprotectthesensorfromairflow.
2. Power:Turnonpowertotheswit chwithRedto(+)andBlackto(‐).Youcanreversethepolarityif
desired.
3. No‐Flow/FlowTest: Withtheswitchsettingstillunderthecup,waituntiltheRedLEDturnsON(no‐flow
condition).
a. RemovethecupandmovethesensorinairandobservewhentheRedLEDturnOFF(flow
condition).
b. Placethesensoronthetableandplacethecupoverthesensorandletitrestwaitingforthe
RedLEDtoturnONagain(no‐flowcondition).
c. Repeattheabovetwosteps.
4. RelayTest:Connectamultimeter(settoreadOhms) to theWhiteandGreenWires.Performtheabove
No‐Flow/Flowtestwiththemultimeterconnecttoobservetheactuationoftherelay.
a. WithRed to (+)andBlack to (‐),themultimeterwillread a smallresistanceduringno‐flow
(closedrelay)andOLduringaflowcondition(openrelay).
b. ReversePolarity[Red to (‐) andBlack to (+)]toseethemultimeterreadOLduring a no‐flow
state(openrelay)andasmallresistanceduringaflowcondition(closedrelay).
TheNo‐Flow/Flowtestdeterminesiftheswitchiscapableofsensingthechangesbetweenno‐flowandflow. TheRelaytestdeterminestheabilityoftherelaytoswitchbetweenano‐flowandflowcondition.Thisisthe basictesttodeterminefunctionalityofthesensor.
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