TABLE OF CONTENT Designation code
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1 TABLE OF CONTENT Designation code How to read sensor designations Circuit diagrams Connection according to EN Functional description Operating mode of ring sensors 5 Applications Application areas of ring sensors Sensors Normal sensitivity (static principle) High sensitivity (dynamic principle) Analog 7 0 Control unit Control unit for ring sensors 5 Accessories Connectors Terminating cable version D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
2 NOTES D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
3 DESIGNATION CODE Example: K J 0 M 0 M B 5 D P S V X = Working principle A B C D H J M N R W Acoustic Acceleration sensor Capacitive Strain gauge sensor Halleffect Inductive Magnetoresistive Inclination sensor Reedcontact Angle sensor JR JF JG JD 2 = Switching distance / range = Design D G M Q = Housing diameter / edge length Inductive ring Inductive surface Inductive slot Metalface Ring housing Cylindrical housing without thread Cylindrical housing with metrical thread Square housing 5 = Housing material A Aluminium E Stainless steel K Plastic M Brass, nickel plated T PTFE = Installation B N Shielded Non shielded 7 = Tube length 8 = Operating voltage AZ D VZ AC alternating current voltage DC direct current voltage AC/DC all voltages 9 = Type of output signal AN Analog CAN N NA P Z 0 = Function A I Ö S U CANbus interface Namur Two wire Changeover Impulse output N.C. N.O. Switchable = Connection V V2 V2/ V V V V7 V8 V9 V0 V V2 VE RS22 PG Mxx M8 screw/snapin M2 metal M2 plastic M5 metal Amphenol Tuchel Brad Harrison Valve connector type A M8 snapin only Torson Valve connector type C AC connector /2'' UNF M8 plastic Euchner connector Data interface Thread joint PG Thread joint metrical others as requested 2 = Additional marks AM FE HT NF SF T W X ANI ANU Current output Voltage output Sensing face in centre Reduction to steel / iron High temperature Reduction to nonferrous metal Weld field immune Enlarged temperature range Angled sensing face / angled cable exit Customized design with detailled description D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
4 CIRCUIT DIAGRAMS Circuit diagram for Cable / clamp connection Connector V... V9 DPS DC N.O. BN () BK () BU () DPÖ DC N.C. BN () BK (2) BU () 2 DPA DC changeover BN () BK () WH (2) BU () 2 DPU DC NO/NC switchable BN () SW (A) BU () DNS DC N.O. BN () BK () BU () DNÖ DC N.C. BN () BK (2) BU () 2 DNA DC changeover BN () BK () WH (2) BU () 2 DNU DC NO/NC switchable BN () SW () BU () NA Namur EN 0975 BN () BU (2) 2 DZS DC twowire N.O. BN () BU () DZÖ DC twowire N.C. BN () BU (2) 2 AZS/VZS AC/DC twowire N.O. BN () BU () GN/YE AZÖ/VZÖ AC/DC twowire N.C. BN () BU (2) GN/YE 2 Analog BN () BK () BU () D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
5 FUNCTIONAL DESCRIPTION Ring sensors use the energy variations in a resonant circuit caused by eddy current losses in conductive materials. Thus they detect all types of conductive material. Ring sensors from Pulsotronic are used for object counting tasks, wire gauge measuring, wire break control or for presence check. The product range of Pulsotronic comprehends digital and analog ring sensors. An oscillator in the sensor excites a highfrequency, electromagnetic alternating field. Due to the axially symmetric coil arrangement an almost homogeneous field is realised. The ferrite core and the sensor housing concentrate the field lines of the alternating field in the center of the ring. Metal entering in the sensor causes eddy currents that withdraw energy from the field. This leads to a damping and a voltage fluctuation in the sensor. The electronics in the sensor evaluates this variation. ferrite core sensor opening coil (axially symmetric) electronics ferrite core sensor opening coil (axially symmetric) field lines without damping field lines with damping of oscillator Illustration : front view ring sensor Illustration 2: course of field lines in the sensor (top view ring sensor) Digital ring sensors Digital ring sensors are classified into static sensors (normal sensitivity) and dynamic sensors (high sensitivity). As long as metal is situated in the sensor, the static sensor excites a permanent signal. Only when metal is removed from the sensor the signal deactivates. Static sensors detect moving and non moving objects. Dynamic sensors only excite a short pulse when metal is detected. They only detect moving objects. Analog ring sensors Like static sensors analog sensors excite a permanent signal which depends on the dimension and the position of the metallic object in the sensor. The bigger the metallic object, the bigger the output voltage of the sensor. D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
6 APPLICATIONS Wire break control For this type of applications static sensors are used. The oscillator in the sensor excites a highfrequency alternating field. The wire passes through the sensor and withdraws energy from the resonant circuit. As long as the wire is moved through the sensor without interruption the sensor excites a constant signal because the damping of the oscillator is not alternating. A wire break leads to a damping of the oscillator. The sensor switches due to the voltage fluctuation. Object counting, presence check In the sensor is a highfrequency alternating field. When a metallic object passes the sensor it withdraws energy from the field and leads to a voltage fluctuation in the oscillator. When the object quits the sensor, the oscillator takes its' normal value until the next object causes a new damping. Thus for example the ejection of stamping parts can be monitored. Ring sensors detect freefalling products as well as products being led in a tube through the sensor. The user can detect and count metallic objects. Ring sensors detect metallic contamination in nonmetallic materials (e.g. synthetic granules). As moving parts are detected, dynamic and static sensors can be applied. Wire gauge measuring, object identification The wire passes through the sensor and withdraws energy from the resonant circuit. The degree of the energy loss depends on the dimension of the wire. The thicker the wire, the bigger the loss of energy and the bigger the voltage fluctuation in the sensor. The value of the voltage fluctuation provides information about the quantity of material in the field. By this it is possible to detect also other metallic objects. Depending on the size and the material of the object the sensor provides an according output voltage. Thus the user can make the distinction between different products. A possible application is a sorting device for small parts. D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
7 NORMAL SENSITIVITY (STATIC PRINCIPLE) General data Mounting Operating voltage U b Ripple voltage U b Voltage drop U d Max. load current Offstate current I 0 Residual current Hysteresis H Operating temperature T a Sensitivity over temp. range Protection class EMVstandard Switching state Housing material Connection non shielded V DC (KJRD00FAN V DC) < 0% < 2,V < 200mA (KJRQ0... < 50mA) KJRD... to KJRD00...: < 5mA KJRD0... to KJRD00...: < 0mA < < 0μA 5% 25 C C see sensitivity IP5 according to EN LED KJRD... to KJRD0: Ultramid BEG KJRD50... to KJRD00: Aluminium connector M2 pole Selection chart Article number Designation KJRDKNDPAV2 KJRDKNDNAV2 KJRD0KNDPAV2 KJRD0KNDNAV2 KJRD5KNDPAV2 KJRD5KNDNAV2 KJRD20KNDPAV2 KJRD20KNDNAV2 KJRD0KNDPAV2 KJRD0KNDNAV2 KJRD50FANDPAV2 KJRD50FANDNAV2 KJRD00ANDPAV2 KJRD00ANDNAV2 KJRD00FANDPAV2 KJRD00FANDNAV2 KJRQ0ANDPAVE KJRQ0ANDNAVE KJRD200ANDPAV2 KJRD200ANDNAV2 KJRD00ANDPAV2 KJRD00ANDNAV2 Output signal Sensitivity FEball D=,5mm FEball D=,5mm FEball D=,8mm FEball D=,8mm FEball D=2,mm FEball D=2,mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=,0mm FEball D=8,0mm FEball D=8,0mm FEball D=2,0mm FEball D=2,0mm FEball D=5,0mm FEball D=5,0mm FEball D=0,0mm FEball D=0,0mm Max. switching frequency f 00Hz 00Hz 00Hz 00Hz 500Hz 500Hz 00Hz 00Hz 00Hz 00Hz 500Hz 500Hz 500Hz 500Hz 500Hz 500Hz 00Hz 00Hz 00Hz 00Hz 00Hz 00Hz Drawing (next page) A D A D B D B D C D C D E G E G F G F G H H I I J J K K L L M M Control unit and accessories on pages 5 and. D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
8 NORMAL SENSITIVITY (STATIC PRINCIPLE) Dimensions A) 2 B) 2 C) 2, 0, 5,,8 5,8,8 5,8,8 5,8 2, 2, 2, D) 5 8, 28 E) 2 F) 2 G) , 0, 5, ,8 5, ,8 5 5 H) 80 I) , all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
9 NORMAL SENSITIVITY (STATIC PRINCIPLE) Dimensions J) K) L) , M) , all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
10 HIGH SENSITIVITY (DYNAMIC PRINCIPLE) General data Mounting Operating voltage U b Ripple voltage U b Voltage drop U d Max. load current Offstate current I 0 Hysteresis H Operating temperature T a Sensitivity over temp. range Protection class EMVstandard Switching state Housing material Connection non shielded... 0V DC < 0% < 2,V KJRD... to KJRD0: < 200mA KJRD50... to KJRD00: < 50mA KJRD... to KJRD0: < 5mA KJRD50... to KJRD00: < 25mA < 5% 25 C C see sensitivity IP5 according to EN LED KJRD... to KJRD0: Ultramid BEG KJRD50... to KJRD00: Aluminium connector M2 pole Selection chart Article number Designation KJRDKNDPIAV2 KJRDKNDNIAV2 KJRD0KNDPIAV2 KJRD0KNDNIAV2 KJRD5KNDPIAV2 KJRD5KNDNIAV2 KJRD20KNDPIAV2 KJRD20KNDNIAV2 KJRD0KNDPIAV2 KJRD0KNDNIAV2 KJRD50FANDPIAV2 KJRD50ANDNIAV2 KJRD50FANDNIAV2 KJRD70ANDNIAV2 KJRD00ANDPIAV2 KJRD00ANDNIAV2 KJRQ0ANDNIAVE KJRD200ANDPIAV2 KJRD200ANDNIAV2 KJRQ290ANDNIAVE KJRD00ANDPIAV2 KJRD00ANDNIAV2 Output signal Sensitivity * = adjustable FEball D=0,mm FEball D=0,mm FEball D=0,5mm FEball D=0,5mm FEball D=0,mm FEball D=0,mm FEball D=0,7mm FEball D=0,7mm FEball D=,0mm FEball D=,0mm FEball D=0,mm* FEball D=0,mm* FEball D=,0mm* FEball D=,0mm* FEball D=,mm* FEball D=,mm* FEball D=5,0mm FEball D=,0mm FEball D=,0mm FEball D=2,0mm FEball D=,0mm FEball D=,0mm Max. switching frequency 0Hz 0Hz 0Hz 0Hz 0Hz 0Hz 0Hz 0Hz 0Hz 0Hz Residual current 0μA 0μA 0μA 0μA 0μA 0μA 0μA 0μA 0μA 0μA 500μA 500μA Drawing (next page) A D A D B D B D C D C D E G E G F G F G H H I J K K L M M N O O Control unit and accessories on pages 5 and. D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
11 HIGH SENSITIVITY (DYNAMIC PRINCIPLE) Dimensions A) 2 B) 2 C) 2, 0, 5,,8 5,8,8 5,8,8 5,8 2, 2, 2, D) 5 E) 2 F) , 20, 0, 5, ,8 5, ,8 5 5 G) 5 H) I) 80 J) , all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
12 HIGH SENSITIVITY (DYNAMIC PRINCIPLE) Dimensions K) L) N) M) 202 O) , , all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
13 ANALOG General data Mounting Output signal Operating voltage U b Load Resistor R L Linearity Repeat accuracy Offstate current I 0 Operating temperature T a Sensitivity over temp. range Protection class EMVstandard Switching state Housing material Connection non shielded V analog V DC > kohm < / 5% < 5% < 0mA 25 C C < / 5% IP5 according to EN LED Ultramid BEG connector M2 pole Selection chart Article number Designation KJRDKNANUV2 KJRD0KNANUV2 KJRD5KNANUV2 KJRD20KNANUV2 KJRD0KNANUV2 Sensitivity FEstick D=0,,0mm FEstick D=0,,0mm FEstick D=0,5 8,0mm FEstick D=0,5 5,0mm FEball D=,0 20,0mm Max. switching frequency f 80Hz 80Hz 80Hz Drawing A D B D C D E (next page) F (next page) Control unit and accessories on pages 5 and. Dimensions A) 2 B) 2 C) 2, 0, 5,,8 5,8,8 5,8,8 5,8 2, 2, 2, D) 5 8, 28 all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
14 ANALOG Dimensions D 2 E) 2 20, 0, 5, ,8 5, , all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
15 CONTROL UNIT FOR RING SENSORS Functional description This control unit can be operated with all sensors from the KJR series. The device serves for evaluating the signals of the sensor and at the same time provides the operating voltage for the sensor. It has been rated especially for mounting on a 5mm top hat rail. The control unit can be operated with all switching sensors with 2V operating voltage. If the connected sensor excites a signal, it will be collected and lengthened on the adjusted period by the control unit. When during that time another signal is excited, it will be lengthened on the adjusted period again. After that the signal is output via a relay and a transistor output. The active switching state is indicated by an LED. The device can be operated with 2V direct current or alternatively with line voltage. All outputs provide short circuit protection as well as overload protection. All voltage inputs are protected against reverse polarity. Technical data Article number Supply voltage Sensor supply Transistor output Relay output Switching time per pulse Operating temperature Storage temperature Protection class Housing material Control unit for ring sensors 20V AC / 2V DC V DC, 50/0Hz or 2V DC Control unit for ring sensors 20V AC / 2V DC V, 50/0Hz or 2V DC 2V DC, max. 80mA* x, x, 25mA open collector* potentialfree changer, max. 250 V AC, 5A... 0 /... 0s (adjustable) 0 C C 0 C... 0 C IP20 Polycarbonat (UL 9V0) * Overload and short circuit protected. Dimensions, operation 5 58 The period for a switching pulse can be adjusted via a 8 potentiometer. The user chooses among two time 2 domains. The selection of the time domain is realised via a rotary coding switch. Via this switch the user also defines if the relay shall be activated or if the connected sensor is or switching all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
16 ACCESSORIES Connectors,5 () brown NO NC ()black () red () blue (2) white () black () blue (2) white Connector M2, pole SDK (Euchner) The sensors in this catalogue are mostly listed in design with connector M2, pole. Optionally the sensors are also available with connector SDK (Euchner) for the same price. Terminating cable Article number M2 pole 2m connecting cable m connecting cable M2 pole SDK (Euchner) all data in mm D09 Niederdorf 9 (0) 729 / (0) 729 / / Inductive ring sensors
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