S186ELD(Q) Laser Diode Emitter

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1 86LD(Q) Laser Diode mitter lass Laser for Use With Banner Modulated Photoelectric Receivers Features elf-contained lass modulated visible laser diode emitters permit higher gain and extended range in opposed mode sensing systems arrow effective beam for small-object detection or for precise position control LTD to 3V dc operation; third wire extinguishes laser light when connected to +V dc ompatible with all Z-BM receivers; may also be used with a variety of other Banner modulated photoelectric receivers (see xcess Gain chart below) Popular 8 millimeter threaded barrel design Models Model Range able* upply Voltage ffective Beam at Receiver at 25 86LD 86LDQ Range varies, depending on which receiver is used (see xcess Gain chart, page 2). 2 m (6.5') Unterminated 4-wire uro-style QD connector to 3V dc Opposed Distance.5 m (5') 3 m (') 6 m (2') 5 m (5') 3 m (') Beam Width 4 mm (.2") 5.5 mm (.2") 8.5 mm (.3") 8 mm (.7") 32 mm (.3") * 9 m cables are available by adding suffix W/3 to the model number of any cabled sensor (e.g., 86LD W/3). model with a QD connector requires a mating cordset; see page 4. xcess Gain xcess Gain of the 86LD emitter is dependent on the receiver used. Following is a comparison of the excess gain for recommended receivers at 5 m (5'). For information on compatibility of the 86LD emitter with other Banner photoelectric receivers, contact the factory pplications Group at the address or numbers listed on the back cover. MULT-BM M-BM VLU-BM Z-BM M-BM OO-BM Others xcess Gain at 5 m (5') BR 3, BR 3, BRD 3, BRD 3, RBR 75 RBRR 2 MW95R 5, M9RQD 3, T86R 4 T36R 4 26R 4 M3R 3 M3RL,7 M3RMH 2 M3RLMH, 6R 45 6RMH 4 M5RB 4 Q236R 25 Q6R 2 Q45BB6R,5 WRG... ot To Be Used for Personnel Protection ever use these products as sensing devices for personnel protection. Doing so could lead to serious injury or death. These sensors do OT include the self-checking redundant circuitry necessary to allow their use in personnel safety applications. sensor failure or malfunction can cause either an energized or de-energized sensor output condition. onsult your current Banner afety Products catalog for safety products which meet OH, and standards for personnel protection. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

2 86LD Laser Diode mitter lignment onventional modulated infrared LD photoelectric emitters are designed with beam divergence angles of several degrees. s a result, most emitters are easily aligned to their receivers by simple line-of-sight methods. The beam size listed in Figure is also the effective beam size at the receiver. The effective beam is equal to the minimum opaque object profile required to block the light beam. The beam size at the emitter is 2.5 mm (.") diameter. The effect of angular misalignment is dramatic (see Figure 2). The wide beam angles offered by conventional photoelectric emitters allow several degrees of misalignment between the optical axes of the emitter and receiver. This is not true for laser emitters which require their beam center to directly strike the receiver lens. Figure 2 shows how far the laser beam will miss the center of the receiver lens for each degree of angular misalignment. ote that even at only a 5' range, one degree of misalignment will cause the laser beam to miss the lens of most receivers. lignment Tip: The visible red beam of the laser emitter is easily seen in subdued lighting. t opposed distances of up to ', attach a sheet of white paper directly in front of the receiver lens. Mark the location of the lens center on the paper; use the mark as an aiming target. ight along the beam from directly behind the laser emitter. djust the emitter mounting until the red image (the dot of red light) is centered exactly on the mark. Remove the paper and check the response of the receiver. For longer distances (up to 25'), replace the white paper with a 4" x 4" square of high-grade retroreflective tape (Banner model BRT-THG-44-5 or equivalent; see Figure 3). For greater distances, use a larger sheet of retroreflective material (see page 4). Description of lass Lasers lass Lasers that are safe under reasonably foreseeable conditions of operation, including the use of optical instruments for intrabeam viewing. Reference mend. 2 :2(), section 8.2. lass Laser haracteristics: Wavelength = 65 nm Pulse Power milliwatt Pulse Width = 7 microseconds Rep Rate = 3 microseconds UTO... ever stare directly into the emitter lens. Laser light can damage your eyes. void placing any mirror-like object in the beam. ever use a mirror as a target. (ee Figure 3.) Laser mitter Figure. Laser emitter beam divergence at 25 (beam size vs. distance) Figure 2. Beam displacement per degree of misalignment Laser mitter pprox. 2.5 mm pprox..5mrad =.29 W = 2.5 mm + 2(tan.29º) = 2.5 mm + (.) Opposed Distance () Target ensing Distance = Beam Width (W).5 m (5') 4 mm (.2") 3 m (') 5.5 mm (.2") 6 m (2') 8.5 mm (.3") 5 m (5') 8 mm (.7") 3 m (') 32 mm (.3") Laser mitter Y = (tan Ø) Opposed Distance () Ø = Misalignment ngle ensing Distance = Beam Displacement (Y) for of Misalignment.5 m (5') 4 mm (.2") 3 m (') 5 mm (2") 6 m (2') mm (4") 5 m (5') 25 mm (") 3 m (') 5 mm (2") Receiver OT: ever use a mirror as an alignment target. Figure 3. t long distances, use retroreflective tape to locate the beam at the receiver location. Y W learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

3 86LD Laser Diode mitter upply Voltage and urrent upply Protection ircuitry ensing Beam Beam Diameter at perture Beam Divergence Laser ontrol ndicators onstruction nvironmental Rating onnections to 3V dc (% maximum ripple) at less than 35 m Protected against reverse polarity pecifications 65 nm visible red lass laser (temperature coefficient.2 nm/ ) Pulse Width: 7µs Rep Rate: 3µs Peak Output Power: less than milliwatt 2.5 mm (.") collimated ellipse ±.5 milliradians typical nable beam by applying V dc or by opening circuit; apply + to 3V dc to black wire to inhibit beam Green indicator, visible through rear cover, indicates power applied M8 x threaded yellow PBT polyester barrel housing. crylic lens. lectronics totally encapsulated. Two mounting nuts are included. M 6P; P67 PV-jacketed 2 m (6.5') or 9 m (3') attached cable, or 4-pin uro-style quick-disconnect (QD) fitting. Operating onditions Temperature: - to +5 (+4 to 22 F) Maximum relative humidity: 9% at 5 (non-condensing) Laser lassification lass laser product complies with 2 FR 4., 6825-:2, except for deviations pursuant to Laser otice 5, dated ertifications LTD Dimensions abled Model QD Model Green LD Power O ndicator (2) Jam uts 24. mm (.95") O.D. (upplied) 4. mm (.6") 59.9 mm (2.36") 4.4 mm (.63") M8 x 65.5 mm (2.58").27 mm (.5") 85. mm (3.35") Hookups abled Model QD Model 4 3 Beam ttenuator + -3V dc Key = Brown 2 = White 3 = Blue 4 = Black Beam ttenuator + -3V dc learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

4 86LD Laser Diode mitter Quick-Disconnect (QD) ordsets tyle Model Length Dimensions Pinout uro-style 4-Pin traight uro-style 4-Pin Right-angle MQD-46 MQD-45 MQD-43 MQD-46R MQD-45R MQD-43R 2 m (6.5') ø 5 mm 5 m (5') m (3') 44 mm max. M2 x 2 m (6.5') 5 m (5') m (3') M2 x 38 mm max. 38 mm max. 2 Key 3 4 = Brown 2 = White 3 = Blue 4 = Black ø 5 mm Mounting Brackets MB46 2-gauge stainless steel Precision sensor alignment adjustment 2 mm shortarm hex key included learance for M5 (#) hardware MB8 -gauge stainless steel Right-angle mounting bracket urved mounting slot for versatile orientation learance for M4 (#8) hardware Reflective Tape Model Reflectivity Factor Maximum Temperature ize Unit BRT-THG-44-5 x mm (4" x 4") Package of 5 BRT-THG (+4 F) 26 x 28 mm (8.5" x ") Package of 2 BRT-THG x 94 mm (8" x 36") ingle heet P/ rev. D WRRTY: Banner ngineering orp. warrants its products to be free from defects for one year. Banner ngineering orp. will repair or replace, free of charge, any product of its manufacture found to be defective at the time it is returned to the factory during the warranty period. This warranty does not cover damage or liability for the improper application of Banner products. This warranty is in lieu of any other warranty either expressed or implied. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

5 Z-BM "2" eries ensors Designed for use on ensor BU etworks Features Low cost and easy to use; no adjustments are necessary ensor selection is simply a matter of choosing a housing style and sensing mode Models available for opposed (through-beam), polarized retroreflective, and fixed-field diffuse modes dvanced self-diagnostics with separate alarm output; dual LD system indicates sensor performance olid-state outputs for direct connection to a BU system network junction such as a Banner BU DPOT 4-pin quick disconnect connector for standard euro-style extension cables poxy-encapsulated circuitry; leakproof P67 (M 6P) rating for harsh sensing environments Brackets available for several mounting options Description "2" eries Z-BM sensors are designed to connect directly to a "smart" BU system network junction, such as the Banner BU-DPOT. 2 eries sensors are internally wired to take advantage of the Z-BM's marginal signal LRM output. The LRM output is normally open (.O.) and conducts whenever the sensor's excess gain drops to between and.5 in the light condition. The sensing signal output is also normally open, which means that the output conducts when light is sensed (i.e. - light operate). n order to take advantage of the second LRM output, 2 sensors require the use of BU DPOT junctions which offer two channels per input. Both sensor outputs are PP (current sourcing) for direct connection to a BU network junction using standard 4-pin euro-style extension cables. 2 eries sensors offer all of the features and powerful sensing performance that Z- BMs offer. The innovative dual-indicator system takes the guesswork out of sensor performance monitoring. Housings are tightly sealed and the sensor circuitry is epoxy-encapsulated for reliable duty in wet or oily sensing environments. Models are available for opposed (through-beam), polarized retroreflective and fixed-field diffuse sensing (see chart on page 2, for available ranges). s the chart on page 2 shows, there are three basic housing styles. The "" style is a threaded barrel which is available in 8 mm or 3 mm diameters. The "Q" style offers either 25 mm or 4 mm right-angle rectangular housings. Finally, the "T" style is a patented right-angle design available with either an 8 mm or 3 mm threaded lens. The "T" style combines the mounting ease of a barrel sensor with the low-profile advantage of a right-angle design. everal mounting options are offered, including angled brackets and split-clamp brackets. 2 series sensors may also be simply mounted through suitable clearance holes. ee page 7 for more information. U.. Patent # learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

6 2 eries Family ensor Package vailable ensing Modes and Ranges Opposed Retro Fixed-field 8 8 mm barrel 2 m (6 ft) 2 m (79 in) 5 mm (2 in) mm (4 in) 3 3 mm barrel 6 m (2 ft) 6 m (2 ft) 2 mm (8 in) 4 mm (6 in) Q25 25 mm rectangular 2 m (6 ft) 2 m (79 in) 5 mm (2 in) mm (4 in) Q4 4 mm rectangular 6 m (2 ft) 6 m (2 ft) 2 mm (8 in) 4 mm (6 in) T8 8 mm right-angle 2 m (6 ft) 2 m (79 in) 5 mm (2 in) mm (4 in) T3 3 mm right-angle 6 m (2 ft) 6 m (2 ft) 2 mm (8 in) 4 mm (6 in) learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

7 2 eries Opposed Mode mitter () and Receiver (R) Models Range able upply Voltage Output Type xcess Gain Beam Pattern 86Q 82P6RQ Q256Q Q252P6RQ T86Q T82P6RQ 2 m (66 ft) 4-pin uro QD -3V dc PP G. m.33 ft m 3.3 ft 8, Q25 and T8 eries DT Opposed Mode m 33 ft m 33 ft 5 mm mm 5 mm 5 mm mm 5 mm ffective Beam: 3 mm (.5") 8, Q25 and T8 eries Opposed Mode 5 m 6 ft m 32 ft 5 m 48 ft DT 2 m 64 ft 25 m 8 ft 6 in 4 in 2 in 2 in 4 in 6 in 36Q 32P6RQ Q46Q Q42P6RQ T36Q T32P6RQ 6 m (2 ft) 4-pin uro QD -3V dc PP G 3, Q4 and T3 eries. m.33 ft Opposed Mode m 3.3 ft DT m 33 ft m 33 ft 75 mm 5 mm 25 mm 25 mm 5 mm 75 mm ffective Beam: 23 mm (.9") 3, Q4 and T3 eries Opposed Mode 5 m 5 ft 3 m ft 45 m 5 ft DT 6 m 2 ft 75 m 25 ft 6 in 4 in 2 in 2 in 4 in 6 in Retroreflective Mode Models Range able upply Voltage Output Type xcess Gain Beam Pattern 82P6LPQ Q252P6LPQ T82P6LPQ 2 m (79 in) 4-pin uro QD -3V dc PP G. m.33 ft. m.33 ft 8, Q25 and T8 eries DT Polarized Retro with BRT-3 Reflector m 3.3 ft m 33 ft 5 mm mm 5 mm 5 mm mm 5 mm 8, Q25 and T8 eries Polarized Retro with BRT-3 Reflector.5 m.6 ft. m 3.2 ft.5 m 4.8 ft DT 2. m 6.4 ft 6 in 4 in 2 in 2 in 4 in 6 in 2.5 m 8. ft 32P6LPQ Q42P6LPQ T32P6LPQ 6 m (2 ft) 4-pin uro QD -3V dc PP G. m.33 ft. m.33 ft 3, Q4 and T3 eries DT Polarized Retro with BRT-3 Reflector m 3.3 ft m 33 ft 5 mm mm 5 mm 5 mm mm 5 mm 3, Q4 and T3 eries Polarized Retro with BRT-3 Reflector.5 m 5 ft 3. m ft 4.5 m 5 ft DT 6. m 2 ft 7.5 m 25 ft 6 in 4 in 2 in 2 in 4 in 6 in Banner ngineering orporation page 3 learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

8 2 eries Fixed-field Mode Models Range able 82P6FF5Q Q252P6FF5Q T82P6FF5Q 82P6FFQ Q252P6FFQ T82P6FFQ 32P6FF2Q Q42P6FF2Q T32P6FF2Q 32P6FF4Q Q42P6FF4Q T32P6FF4Q 5 mm (2 in) mm (4 in) 2 mm (8 in) 4 mm (6 in) 5 mm far limit cutoff upply Voltage Output Type 4-Pin uro QD -3V dc PP mm far limit cutoff 4-Pin uro QD -3V dc PP 2 mm far limit cutoff 4-Pin uro QD -3V dc PP 4 mm far limit cutoff 4-Pin uro QD -3V dc PP xcess Gain Performance based on 9% reflectance white test card G. mm.4 in G. mm.4 in G mm.4 in G mm.4 in 8, Q25 and T8 eries mm.4 in DT mm.4 in DT Fixed-field mode with 5 mm far limit cutoff mm.4 in 8, Q25 and T8 eries mm.4 in DT Fixed-field mode with mm far limit cutoff mm.4 in 3, Q4 and T3 eries Fixed-field mode with 2 mm far limit cutoff mm.4 in mm 4 in 3, Q4 and T3 eries Fixed-field mode with 4 mm far limit cutoff DT mm 4 in mm 4 in mm 4 in mm 4 in mm 4 in learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

9 2 eries upply Voltage and urrent Opposed Mode mitter Opposed Mode Receiver Polarized Retro Fixed-field upply Protection ircuitry Product pecifications to 3V dc (% maximum ripple); upply current (exclusive of load current): 25 m 2 m 3 m 35 m Protected against reverse polarity and transient voltages Output onfiguration ensing Output: PP (current sourcing), light operated larm Output: PP (current sourcing), normally open and conducts whenever the sensor's excess gain drops to between and.5 in the light condition Output Rating Output Protection ircuitry Output Response Time Repeatability ndicators onstruction nvironmental Rating onnections Operating Temperature Vibration and Mechanical hock 5 m maximum (each); the total load may not exceed 5 m; Off-state leakage current < microamp at 3V dc; On-state saturation voltage <V at m dc; <.5V at 5 m dc Protected against false pulse on power-up and continuous overload or short-circuit of outputs Opposed: 3 milliseconds "on" and.5 milliseconds "off" Polarized Retro and Fixed-field: 3 milliseconds "on" and "off" OT: millisecond delay on power-up; outputs are non-conducting during this time Opposed: 375 microseconds Polarized Retro and Fixed-field: 75 microseconds Repeatability and response are independent of signal strength Two LDs: Green and Yellow GR glowing steadily = power to sensor is "on" GR flashing = output is overloaded YLLOW glowing steadily = normally open output is conducting YLLOW flashing = excess gain marginal (-.5x) in light condition Housings are VLO thermoplastic polyester; Lenses are Lexan (opposed models) or acrylic (retro and fixedfield models) 8 and 3 come with two jam nuts; T8, T3, Q25 and Q4 come with one jam nut Leakproof design rated M 6P; P67 4-pin euro-style quick-disconnect fitting; cables are ordered separately -4 to +7 (-4 to 58 F); Maximum relative humidity 9% at 5 (non-condensing) ll models meet Mil. td. 22F requirements. Method 2 (Vibration; frequency to 6 Hz, max., double amplitude.6-inch acceleration G). Method 23B conditions H& (hock: 75G with unit operating; G for non-operation) Banner ngineering orporation page 5 learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

10 2 eries Dimension nformation 8 Green LD Power ndicator Yellow LD Output ndicator Jam uts (2 Provided) 8 x mm Thread 3 Yellow LD Output ndicator Green LD Power ndicator Jam uts (2 Provided) M3 x.5 Thread 78.7 mm (3.") 37. mm (.46") 77.5 mm (3.5") 53. mm (2.9") Q25 Yellow LD Output ndicator Green LD Power ndicator 25. mm (.98") 35. mm (.38") 5.2 mm (.6") 2.7 mm (.5") 3. mm* (.8") 2.4 mm (.49") (Jam ut upplied) Lens enterline M8 x Thread Q4 4. mm (.58") 5. mm (.97") Yellow LD Output ndicator Green LD Power ndicator 9.8 mm (.78") (Jam ut upplied) 46. mm (.8") 82.5 mm (3.25") Lens enterline 2. mm (.79") M3 x.5 Thread T8 Jam ut (upplied) M8 x Thread T3 Jam ut (2 upplied) M3 x.5 Thread ø5 mm (.59") 3. mm (.8") Yellow LD Output ndicator ø3. mm (.8") ø5 mm (.59") 45. mm (.77") Yellow LD Output ndicator ø4. mm (.57") Green LD Power ndicator Green LD Power ndicator.5 mm (.45") 56.6 mm (2.23").5 mm (.45") 66.5 mm (2.62") Quick Disconnect Pin Detail connector on sensor shown (male pins) Hookup nformation mitter Quick Disconnect Pin Detail connector on sensor shown (male pins) larm (White wire) + to 3V dc (Brown wire) ot used (White wire) + to 3V dc (Brown wire) D common (Blue wire) ensing output (Black wire) D common (Blue wire) ot used (Black wire) ote: Wire colors are for Banner MQD-4 eries quick disconnect cables learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

11 2 eries MB8 Mounting Brackets MB3 * Use 4 mm (#8) screws to mount bracket. Drill screw holes 24.2 mm (.95 in) apart. 3 3 mm (.2 in) 8.5 mm (.73 in) 25.4 mm (. in) 4 mm (.6 in) * Use 5 mm (#) screws to mount bracket. Drill screw holes 4. mm (.58 in) apart. 45 mm (.8 in) mm (.52 in) 6 mm (2.4 in) ø 3.5 mm (.2 in) R 24.2 mm (.95 in) ø 4.6 mm* (.8 in) 46 mm (.8 in) 4.6 mm* (.8 in) 7.6 mm (.3 in) R 4 mm (.58 in) ø 6.3 mm (.25 in)* 6.3 mm (.25 in)* 7.6 mm (.3 in) 69 mm (2.7 in) MB8Q (for Q25 series) * Use 4 mm (#8) screws to mount bracket. Drill screw holes 24.2 mm (.95 in) apart. 3 3 mm (.2 in) 9 mm (.75 in) 4 mm (.6 in) 25.4 mm (. in) MB3Q (for Q4 series) * Use 5 mm (# screws to mount bracket. Drill screw holes 4. mm (.58 in) apart mm (.8 in) 38.5 mm (.52 in) 6 mm (2.4 in) ø 3.7 mm (.2 in) mm (.4 in) R 24.2 mm (.95 in) ø 4.6 mm (.8 in)* 46 mm (.8 in) 4.6 mm (.8 in)* 7.6 mm (.3 in) mm (.4 in) R 4 mm (.58 in) ø 6.3 mm (.25 in)* 6.3 mm (.25 in)* 7.6 mm (.3 in) 69 mm (2.7 in) MB8 4. mm (.6 in) 3 mm (.5 in) MB3 56. mm (2.2 in) 3 mm (.5 in) 42.4 mm (.67 in) 2. mm (.83 in) 63. mm (2.48 in) 3.5 mm (.24 in) 4. mm (.55 in) 3. mm (.8 in) 2.5 mm (. in) ut Plate M5 x.8 x 6 mm crew (2) 3.5 mm (.53 in) 45. mm (.77 in) 2.5 mm (. in) ut Plate M5 x.8 x 8 mm crew (2) MB8 MB mm (.75 in) 46. mm (.8 in) 25.4 mm (. in).9 mm (.43 in) pacer (f Required) 63.5 mm (2.5 in) ot hown: (2) M5 x.8 x 6 mm screws are supplied for clamping bracket together 2.2 mm (.48 in) 82.5 mm (3.25 in) 3. mm (.5 in) 36. mm (.42 in) 2.5 mm (. in) ut Plate M5 x.8 x 6 mm crew (2) 6.4 mm (.25 in) 5.8 mm (2. in) 43.2 mm (.7 in) M5 x.8 x 3 mm crew (2) 25.4 mm (. in) Banner ngineering orporation page 7 learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

12 8 ensors ac-voltage eries elf-contained ac-operated sensors Features Featuring Z-BM technology for reliable sensing without the need for adjustments ompletely epoxy-encapsulated to provide superior durability; designed to meet rigorous P69K standards for use in 2 psi washdowns nnovative dual-indicator system takes the guesswork out of sensor performance monitoring 2 to 25V ac (3-wire hookup); PT solid-state switch output, maximum load 3 m Models P ensing Mode Range LD Output Model* Opposed Retroreflective Polarized Retroreflective Diffuse Fixed-Field 2 m (66') 2 m (79") mm (4") 3 mm (2") 25 mm (") cutoff 5 mm (2") cutoff mm (4") cutoff nfrared 95 nm Visible Red 68 nm nfrared 88 nm 83 LO DO LO DO LO DO LO DO LO DO LO DO LO DO LO DO 8W3R 8RW3R 8W3L 8RW3L 8W3LP 8RW3LP 8W3D 8RW3D 8W3DL 8RW3DL 8W3FF25 8RW3FF25 8W3FF5 8RW3FF5 8W3FF 8RW3FF * tandard 2 m (6.5') cable models are listed. 9 m (3') cable: add suffix W/3 (e.g., 83 W/3). 4-pin Micro-style QD models: add suffix Q (e.g., 83Q). model with a QD connector requires a mating cable. (ee page 7.) Use polarized models when shiny objects will be sensed. WRG... ot To Be Used for Personnel Protection ever use these products as sensing devices for personnel protection. Doing so could lead to serious injury or death. These sensors do OT include the self-checking redundant circuitry necessary to allow their use in personnel safety applications. sensor failure or malfunction can cause either an energized or de-energized sensor output condition. onsult your current Banner afety Products catalog for safety products which meet OH, and standards for personnel protection. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

13 8 ensors ac-voltage eries Fixed-Field Mode Overview 8 eries self-contained fixed-field sensors are small, powerful, infrared diffuse mode sensors with far-limit cutoff (a type of background suppression). Their high excess gain and fixed-field technology allow them to detect objects of low reflectivity, while ignoring background surfaces. The cutoff distance is fixed. Backgrounds and background objects must always be placed beyond the cutoff distance. Fixed-Field ensing Theory of Operation The 8FF compares the reflections of its emitted light beam () from an object back to the sensor s two differently aimed detectors, R and R2 (see Figure ). f the near detector (R) light signal is stronger than the far detector (R2) light signal (see object, closer than the cutoff distance), the sensor responds to the object. f the far detector (R2) light signal is stronger than the near detector (R) light signal (see object B, beyond the cutoff distance), the sensor ignores the object. The cutoff distance for model 8FF sensors is fixed at 25, 5 or millimeters (", 2", or 4"). Objects lying beyond the cutoff distance usually are ignored, even if they are highly reflective. However, it is possible to falsely detect a background object, under certain conditions (see Background Reflectivity and Placement). n the drawings and discussion on these pages, the letters, R, and R2 identify how the sensor s three optical elements (mitter, ear Detector R, and Far Detector R2 ) line up across the face of the sensor. The location of these elements defines the sensing axis (see Figure 2). The sensing axis becomes important in certain situations, such as those illustrated in Figures 5 and 6. ear Detector Far Detector mitter Receiver lements R R2 Lenses Object ensing Range Object is sensed if amount of light at R is greater than the amount of light at R2 Figure. Fixed-field concept utoff Distance Object B or Background ensor etup ensing Reliability For highest sensitivity, position the target object for sensing at or near the point of maximum excess gain. The excess gain curves for these products are shown on page 5. Maximum excess gain for the 25 mm models occurs at a lens-to-object distance of about 7 mm; for 5 mm models, at about mm; and for the mm models, at about 2 mm. ensing at or near this distance will make maximum use of each sensor s available sensing power. The background must be placed beyond the cutoff distance. (ote that the reflectivity of the background surface also may affect the cutoff distance.) Following these two guidelines will improve sensing reliability. Background Reflectivity and Placement void mirror-like backgrounds that produce specular reflections. False sensor response will occur if a background surface reflects the sensor s light more strongly to the near detector, or sensing detector (R) than to the far detector, or cutoff detector (R2). The result is a false O condition (Figure 3). To cure this problem, use a diffusely reflective (matte) background, or angle either the sensor or the background (in any plane) so the background does not reflect light back to the sensor (see Figure 4). Position the background as far beyond the cutoff distance as possible. n object beyond the cutoff distance, either stationary (and when positioned as shown in Figure 5), or moving past the face of the sensor in a direction perpendicular to the sensing axis, can cause unwanted triggering of the sensor if more light is reflected to the near detector than to the far detector. The problem is easily remedied by rotating the sensor 9 (Figure 6). The object then reflects the R and R2 fields equally, resulting in no false triggering. better solution, if possible, may be to reposition the object or the sensor. s a general rule, the most reliable sensing of an object approaching from the side occurs when the line of approach is parallel to the sensing axis. Figure 2. Fixed-field sensing axis learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

14 8 ensors ac-voltage eries olor ensitivity The effects of object reflectivity on cutoff distance, though small, may be important for some applications. t is expected that at any given cutoff setting, the actual cutoff distance for lower reflectance targets will be slightly shorter than for higher reflectance targets (see Figure-of-Merit information on page 5). This behavior is known as color sensitivity. For example, an excess gain of (see page 5) for an object that reflects / as much light as the 9% white card is represented by the horizontal graph line at excess gain =. n object of this reflectivity results in a far limit cutoff of approximately 2 mm (.8"), for the 25 mm (") cutoff model for example; thus 2 mm represents the cutoff for this sensor and target. These excess gain curves were generated using a white test card of 9% reflectance. Objects with reflectivity of less than 9% reflect less light back to the sensor, and thus require proportionately more excess gain in order to be sensed with the same reliability as more reflective objects. When sensing an object of very low reflectivity, it may be especially important to sense it at or near the distance of maximum excess gain. Fixed ensing Field utoff Distance Reflective Background trong Direct Reflection to R ore of mitted Beam 8FF R R2 R = ear Detector R2 = Far Detector = mitter ore of mitted Beam trong Direct Reflection way From ensor Figure 3. Reflective background problem Figure 4. Reflective background solution 8FF utoff Distance R R2 R = ear Detector R2 = Far Detector = mitter Fixed ensing Field Reflective Background or Moving Object reflective background object in this position or moving across the sensor face in this axis and direction may cause false sensor response. Figure 5. Object beyond cutoff problem reflective background object in this position or moving across the sensor face in this axis will be ignored. Figure 6. Object beyond cutoff solution learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

15 8 ensors ac-voltage eries upply Voltage and urrent upply Protection ircuitry Output onfiguration 2 to 25V ac (5/6 Hz) verage current: 2 m Peak current: 2 2V ac, 5 2V ac, 75 25V ac Protected against transient voltages PT solid-state ac switch; three-wire hookup; light operate or dark operate, depending on model Light Operate: Output conducts when sensor sees its own (or the emitter s) modulated light Dark Operate: Output conducts when the sensor sees dark Output Rating 3 m maximum (continuous) Fixed-Field models: derate 5 m/ above +5 (+22 F) nrush capability: amp for 2 milliseconds, non-repetitive OFF-state leakage current: < microamps O-state saturation voltage: 3 m ac; 5 m ac Output Protection Protected against false pulse on power-up ircuitry Output Response Time Repeatability ndicators onstruction nvironmental Rating Opposed mode: 6 milliseconds O, 8 milliseconds OFF Other models: 6 milliseconds O and OFF OT: millisecond delay on power-up; outputs do not conduct during this time. Opposed mode: 2 milliseconds Other models: 4 milliseconds Repeatability and response are independent of signal strength. Two LDs (Green and Yellow) Green O steady: power to sensor is O Yellow O steady: sensor sees light Yellow flashing: excess gain marginal ( to.5x) in light condition PBT polyester housing; polycarbonate (opposed-mode) or acrylic lens Leakproof design rated M 6P, D 45 (P69K) onnections 2 m (6.5') attached cable or 4-pin Micro-style quick-disconnect fitting Operating onditions Temperature: -4 to +7 (-4 to +58 F) Maximum relative humidity: 9% at 5 (non-condensing) Vibration and Mechanical hock ertifications pecifications ll models meet Mil. td. 22F requirements. Method 2 (Vibration; frequency to 6 Hz, max., double amplitude.6" acceleration G). Method 23B conditions H& (hock: 75G with unit operating; G for non-operation) learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

16 8 ensors ac-voltage eries Performance urves xcess Gain Beam Pattern xcess Gain Performance based on use of a 9% reflectance white test card. Opposed G. m (.33') m (3.3') 8 eries DT Opposed Mode m (33') m (33') 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Opposed Mode 5 m (6') m (32') 5 m (49') DT 2 m (66') 25 m (82') 6" 4" 2" 2" 4" 6" Fixed-Field 25 mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with 25 mm far limit cutoff mm (.4") mm (4") Ø mm spot 8 mm focus Ø mm spot 25 mm cutoff Using 8% gray test card: utoff distance will be 95% of value shown. Using 6% black test card: utoff distance will be 9% of value shown. Retroreflective G. m (.33'). m (.33') 8 eries DT on-polarized Retro with BRT-3 Reflector m (3.3') m (33') 2 mm 8 mm 4 mm 4 mm 8 mm 2 mm 8 eries on-polarized Retro with BRT-3 Reflector.5 m (.6'). m (3.2').5 m (4.8') DT 2. m (6.4') 2.5 m (8.') 4.7" 3.2".6".6" 3.2" 4.7" Fixed-Field 5 mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with 5 mm far limit cutoff mm (.4") mm (4") Ø mm spot mm focus Ø mm spot 5 mm cutoff Using 8% gray test card: utoff distance will be 9% of value shown. Using 6% black test card: utoff distance will be 85% of value shown. Polarized Retro G. m (.33'). m (.33') 8 eries DT Polarized Retro with BRT-3 Reflector m (3.3') m (33') 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Polarized Retro with BRT-3 Reflector.5 m (.6'). m (3.2').5 m (4.8') DT 2. m (6.4') 6" 4" 2" 2" 4" 6" 2.5 m (8.') Fixed-Field mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with mm far limit cutoff mm (.4") mm (4") Ø mm spot 2 mm focus Ø mm spot mm cutoff Using 8% gray test card: utoff distance will be 85% of value shown. Using 6% black test card: utoff distance will be 75% of value shown. Diffuse mm G mm (.4") Minimum Gain mm (.4") 8 eries DT hort Range Diffuse Mode Maximum Gain mm (4") mm (4") 5 mm mm 5 mm 5 mm mm 5 mm 8 eries hort Range Diffuse 25 mm (") 5 mm (2") 75 mm (3") DT mm (4") 25 mm (5").6".4".2".2".4".6" Focus and spot sizes are typical. Diffuse 3 mm G mm (.4") Maximum Gain Minimum Gain mm (.4") 8 eries DT Long Range Diffuse Mode mm (4") mm (4") 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Long Range Diffuse 8 mm (3") 6 mm (6") 24 mm (9") DT 32 mm (2") 4 mm (5") Performance based on use of a model BRT-3 retroreflector (3" diameter). ctual sensing range may be more or less than specified, depending on the efficiency and reflective area of the retroreflector used..6".4".2".2".4".6" learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

17 8 ensors ac-voltage eries Yellow LD Output ndicator Green LD Power ndicator abled Models Dimensions Yellow LD Output ndicator Green LD Power ndicator QD Models 85.3 mm* (3.36") 63.2 mm (2.49") 4. mm* (4.") 63.2 mm (2.49") *Polarized retro and fixed-field models = 86.3 mm (3.4") *Polarized retro and fixed-field models = 5. mm (4.4") Hookups abled mitters QD mitters (4-pin Micro-tyle) bn bu 2-25V ac rd/bk rd/wh rd gn 2-25V ac o connection ll Other abled Models ll Other QD Models (4-pin Micro-tyle) bn bu bk Load 2-25V ac rd/bk rd/wh rd Load gn 2-25V ac o onnection learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

18 8 ensors ac-voltage eries Quick-Disconnect (QD) ables tyle Model Length Dimensions Pinout 4-pin Micro-style traight MQ-46 MQ-45 MQ-43 2 m (6.5') 5 m (5') 9 m (3') 44 mm max. (.7") ø5 mm (.6") ø /2-2UF-2B Red Wire Green Wire 38 mm max. (.5") Red/White Wire Red/Black Wire 4-pin Micro-style Right-angle MQ-46R MQ-45R MQ-43R 2 m (6.5') 5 m (5') 9 m (3') 38 mm max. (.5") /2-2UF-2B ø 5 mm (.6") WRRTY: Banner ngineering orp. warrants its products to be free from defects for one year. Banner ngineering orp. will repair or replace, free of charge, any product of its manufacture found to be defective at the time it is returned to the factory during the warranty period. This warranty does not cover damage or liability for the improper application of Banner products. This warranty is in lieu of any other warranty either expressed or implied. P/ 252 learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

19 8 ensors dc-voltage eries elf-contained dc-operated sensors Features Featuring Z-BM technology for reliable sensing without the need for adjustments ompletely epoxy-encapsulated to provide superior durability, designed to meet rigorous P69K standards for use in 2 psi washdowns nnovative dual-indicator system for simple sensor performance monitoring dvanced diagnostics to warn of marginal sensing conditions or output overload to 3V dc; choose PDT (complementary) P or PP outputs (5 m max. ea.) P ensing Mode Range LD Output Model* Opposed 2 m (66') Retroreflective 2 m (79") Polarized Retroreflective Diffuse Fixed-Field Models mm (4") 3 mm (2") 25 mm (") cutoff 5 mm (2") cutoff mm (4") cutoff nfrared 95 nm Visible Red 68 nm nfrared 88 nm * tandard 2 m (6.5') cable models are listed. 9 m (3') cable: add suffix W/3 (e.g., 86 W/3). 4-pin uro-style QD models: add suffix Q (e.g., 86Q). model with a QD connector requires a mating cable. (ee page 7.) Use polarized models when shiny objects will be sensed. 86 P PP P PP P PP P PP P PP P PP P PP P PP 86R 8P6R 86L 8P6L 86LP 8P6LP 86D 8P6D 86DL 8P6DL 86FF25 8P6FF25 86FF5 8P6FF5 86FF 8P6FF WRG... ot To Be Used for Personnel Protection ever use these products as sensing devices for personnel protection. Doing so could lead to serious injury or death. These sensors do OT include the self-checking redundant circuitry necessary to allow their use in personnel safety applications. sensor failure or malfunction can cause either an energized or de-energized sensor output condition. onsult your current Banner afety Products catalog for safety products which meet OH, and standards for personnel protection. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

20 8 ensors dc-voltage eries Fixed-Field Mode Overview 8 eries self-contained fixed-field sensors are small, powerful, infrared diffuse mode sensors with far-limit cutoff (a type of background suppression). Their high excess gain and fixed-field technology allow them to detect objects of low reflectivity, while ignoring background surfaces. The cutoff distance is fixed. Backgrounds and background objects must always be placed beyond the cutoff distance. Fixed-Field ensing Theory of Operation The 8FF compares the reflections of its emitted light beam () from an object back to the sensor s two differently aimed detectors, R and R2 (see Figure ). f the near detector (R) light signal is stronger than the far detector (R2) light signal (see object, closer than the cutoff distance), the sensor responds to the object. f the far detector (R2) light signal is stronger than the near detector (R) light signal (see object B, beyond the cutoff distance), the sensor ignores the object. The cutoff distance for model 8FF sensors is fixed at 25, 5 or millimeters (", 2", or 4"). Objects lying beyond the cutoff distance usually are ignored, even if they are highly reflective. However, it is possible to falsely detect a background object, under certain conditions (see Background Reflectivity and Placement). n the drawings and discussion on these pages, the letters, R, and R2 identify how the sensor s three optical elements (mitter, ear Detector R, and Far Detector R2 ) line up across the face of the sensor. The location of these elements defines the sensing axis (see Figure 2). The sensing axis becomes important in certain situations, such as those illustrated in Figures 5 and 6. ear Detector Far Detector mitter Receiver lements R R2 Lenses Object ensing Range Object is sensed if amount of light at R is greater than the amount of light at R2 Figure. Fixed-field concept utoff Distance Object B or Background ensor etup ensing Reliability For highest sensitivity, position the target object for sensing at or near the point of maximum excess gain. The excess gain curves for these products are shown on page 5. Maximum excess gain for the 25 mm models occurs at a lens-to-object distance of about 7 mm; for 5 mm models, at about mm; and for the mm models, at about 2 mm. ensing at or near this distance will make maximum use of each sensor s available sensing power. The background must be placed beyond the cutoff distance. (ote that the reflectivity of the background surface also may affect the cutoff distance.) Following these two guidelines will improve sensing reliability. Background Reflectivity and Placement void mirror-like backgrounds that produce specular reflections. False sensor response will occur if a background surface reflects the sensor s light more strongly to the near detector, or sensing detector (R), than to the far detector, or cutoff detector (R2). The result is a false O condition (Figure 3). To cure this problem, use a diffusely reflective (matte) background, or angle either the sensor or the background (in any plane) so the background does not reflect light back to the sensor (see Figure 4). Position the background as far beyond the cutoff distance as possible. n object beyond the cutoff distance, either stationary (and when positioned as shown in Figure 5), or moving past the face of the sensor in a direction perpendicular to the sensing axis, can cause unwanted triggering of the sensor if more light is reflected to the near detector than to the far detector. The problem is easily remedied by rotating the sensor 9 (Figure 6). The object then reflects the R and R2 fields equally, resulting in no false triggering. better solution, if possible, may be to reposition the object or the sensor. s a general rule, the most reliable sensing of an object approaching from the side occurs when the line of approach is parallel to the sensing axis. Figure 2. Fixed-field sensing axis learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

21 8 ensors dc-voltage eries olor ensitivity The effects of object reflectivity on cutoff distance, though small, may be important for some applications. t is expected that at any given cutoff setting, the actual cutoff distance for lower reflectance targets will be slightly shorter than for higher reflectance targets (see Figure-of-Merit information on page 5). This behavior is known as color sensitivity. For example, an excess gain of (see page 5) for an object that reflects / as much light as the 9% white card is represented by the horizontal graph line at excess gain =. n object of this reflectivity results in a far limit cutoff of approximately 2 mm (.8"), for the 25 mm (") cutoff model for example; thus 2 mm represents the cutoff for this sensor and target. These excess gain curves were generated using a white test card of 9% reflectance. Objects with reflectivity of less than 9% reflect less light back to the sensor, and thus require proportionately more excess gain in order to be sensed with the same reliability as more reflective objects. When sensing an object of very low reflectivity, it may be especially important to sense it at or near the distance of maximum excess gain. Fixed ensing Field utoff Distance Reflective Background trong Direct Reflection to R ore of mitted Beam 8FF R R2 R = ear Detector R2 = Far Detector = mitter ore of mitted Beam trong Direct Reflection way From ensor Figure 3. Reflective background problem Figure 4. Reflective background solution reflective background object in this position or moving across the sensor face in this axis and direction may cause false sensor response. Figure 5. Object beyond cutoff problem reflective background object in this position or moving across the sensor face in this axis will be ignored. Figure 6. Object beyond cutoff solution learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

22 8 ensors dc-voltage eries upply Voltage and urrent upply Protection ircuitry to 3V dc (% max. ripple); supply current (exclusive of load current): mitters, on-polarized, Retro, Diffuse: 25 m Receivers: 2 m Polarized Retroreflective: 3 m Fixed-Field: 35 m Protected against reverse polarity and transient voltages Output onfiguration PDT solid-state dc switch; P (current sinking) or PP (current sourcing), depending on model Light Operate:.O. output conducts when sensor sees its own (or the emitter s) modulated light Dark Operate:.. output conducts when the sensor sees dark; the.. (normally closed) output may be wired as a normally open marginal signal alarm output, depending upon hookup to power supply Output Rating 5 m maximum (each) in standard hookup. When wired for alarm output, the total load may not exceed 5 m. OFF-state leakage current: < 3V dc O-state saturation voltage: < m dc; 5 m dc Output Protection Protected against false pulse on power-up and continuous overload or short circuit of outputs ircuitry Output Response Time Opposed mode: 3 ms O,.5 ms OFF Retro, Fixed-Field and Diffuse: 3 ms O and OFF OT: ms delay on power-up; outputs do not conduct during this time. Repeatability Opposed mode: 375 µs Retro, Fixed-Field and Diffuse: 75 µs Repeatability and response are independent of signal strength. ndicators onstruction nvironmental Rating Two LDs (Green and Yellow) Green O steady: power to sensor is O Green flashing: output is overloaded Yellow O steady:.o. output is conducting Yellow flashing: excess gain marginal ( to.5x) in light condition PBT polyester housing; polycarbonate (opposed-mode) or acrylic lens Leakproof design rated M 6P, D 45 (P69K) onnections 2 m (6.5') or 9 m (3') attached cable or 4-pin uro-style quick-disconnect fitting Operating onditions Temperature: -4 to +7 (-4 to +58 F) Maximum relative humidity: 9% at 5 (non-condensing) Vibration and Mechanical hock ertifications pecifications ll models meet Mil. td. 22F requirements. Method 2 (Vibration; frequency to 6 Hz, max., double amplitude.6" acceleration G). Method 23B conditions H& (hock: 75G with unit operating; G for non-operation) learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

23 8 ensors dc-voltage eries Performance urves xcess Gain Beam Pattern xcess Gain Performance based on use of a 9% reflectance white test card. Opposed G. m (.33') m (3.3') 8 eries DT Opposed Mode m (33') m (33') 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Opposed Mode 5 m (6') m (32') 5 m (49') DT 2 m (66') 25 m (82') 6" 4" 2" 2" 4" 6" Fixed-Field 25 mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with 25 mm far limit cutoff mm (.4") mm (4") Ø mm spot 8 mm focus Ø mm spot 25 mm cutoff Using 8% gray test card: utoff distance will be 95% of value shown. Using 6% black test card: utoff distance will be 9% of value shown. Retroreflective G. m (.33'). m (.33') 8 eries DT on-polarized Retro with BRT-3 Reflector m (3.3') m (33') 2 mm 8 mm 4 mm 4 mm 8 mm 2 mm 8 eries on-polarized Retro with BRT-3 Reflector.5 m (.6'). m (3.2').5 m (4.8') DT 2. m (6.4') 2.5 m (8.') 4.7" 3.2".6".6" 3.2" 4.7" Fixed-Field 5 mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with 5 mm far limit cutoff mm (.4") mm (4") Ø mm spot mm focus Ø mm spot 5 mm cutoff Using 8% gray test card: utoff distance will be 9% of value shown. Using 6% black test card: utoff distance will be 85% of value shown. Polarized Retro G. m (.33'). m (.33') 8 eries DT Polarized Retro with BRT-3 Reflector m (3.3') m (33') 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Polarized Retro with BRT-3 Reflector.5 m (.6'). m (3.2').5 m (4.8') DT 2. m (6.4') 6" 4" 2" 2" 4" 6" 2.5 m (8.') Fixed-Field mm G. mm (.4") mm (.4") 8 eries DT Fixed-field mode with mm far limit cutoff mm (.4") mm (4") Ø mm spot 2 mm focus Ø mm spot mm cutoff Using 8% gray test card: utoff distance will be 85% of value shown. Using 6% black test card: utoff distance will be 75% of value shown. Diffuse mm G mm (.4") Performance based on use of a 9% reflectance white test card. Minimum Gain mm (.4") 8 eries DT hort Range Diffuse Mode Maximum Gain mm (4") mm (4") 5 mm mm 5 mm 5 mm mm 5 mm 8 eries hort Range Diffuse 25 mm (") 5 mm (2") 75 mm (3") DT mm (4") 25 mm (5").6".4".2".2".4".6" Focus and spot sizes are typical. Diffuse 3 mm G mm (.4") Maximum Gain Minimum Gain mm (.4") 8 eries DT Long Range Diffuse Mode mm (4") mm (4") 5 mm mm 5 mm 5 mm mm 5 mm 8 eries Long Range Diffuse 8 mm (3") 6 mm (6") 24 mm (9") DT 32 mm (2") 4 mm (5").6".4".2".2".4".6" Performance based on use of a model BRT-3 retroreflector (3" diameter). ctual sensing range may be more or less than specified, depending on the efficiency and reflective area of the retroreflector used. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

24 8 ensors dc-voltage eries Dimensions abled Models QD Models Yellow LD Output ndicator 2 m (6.5') able Green LD Power ndicator Jam uts (2 Provided) 8 x mm Thread Yellow LD Output ndicator Green LD Power ndicator Jam uts (2 Provided) 8 x mm Thread 59.2 mm* (2.33") 37. mm (.46") 78. mm* (3.7") 37. mm (.46") *Polarized retro and fixed-field models = 65. mm (2.56") *Polarized retro and fixed-field models = 83.8 mm (3.3") abled mitters Hookups P (inking) Outputs tandard Hookup PP (ourcing) Outputs tandard Hookup bn bu + -3V dc bn bu bk wh Load Load + - 3V dc bn bu bk wh Load Load + - 3V dc QD mitters larm Hookup larm Hookup bn bu bk wh + - 3V dc no connection bn bu bk wh Load larm - 3V dc + bn bu bk wh Load larm - 3V dc + OT: QD hookups are functionally identical. learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

25 8 ensors dc-voltage eries Quick-Disconnect (QD) ables tyle Model Length Dimensions Pinout 4-pin uro-style traight MQD-46 MQD-45 MQD-43 2 m (6.5') 5 m (5') 9 m (3') ø 5 mm (.6") 44 mm max. M2 x (.7") White Wire Brown Wire 38 mm max. (.5") Black Wire Blue Wire 4-pin uro-style Right-angle MQD-46R MQD-45R MQD-43R 2 m (6.5') 5 m (5') 9 m (3') M2 x 38 mm max. (.5") ø 5 mm (.6") WRRTY: Banner ngineering orp. warrants its products to be free from defects for one year. Banner ngineering orp. will repair or replace, free of charge, any product of its manufacture found to be defective at the time it is returned to the factory during the warranty period. This warranty does not cover damage or liability for the improper application of Banner products. This warranty is in lieu of any other warranty either expressed or implied. P/ 2522 learwater Tech - Phone: Fax: Web: - mail: info@clrwtr.com

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