Produit: F23 Series Square Capteur de proximité inductif | Numéro d'article.: 033499
✅ Model Code Definition
N: Inductive sensor
CN: Montage non encastré
100: Rated sensing distance 100 mm
F23: Large square housing series
E2: 3-wire DC PNP normally open (NON)
V1: Connecteur M12 à 4 broches
📋 Core Electrical Specifications
| Paramètre | Spécification |
| Rated sensing distance Sn | 100 mm (non affleurant) |
| Usable operating distance Sa | 0…81 mm |
| Actual working range Sr | 90…110 mm |
| Sortir | PNP NON, 3-wire DC |
| Tension d'alimentation | CC 10 … 30 V |
| Max.. courant de charge | 200 mA |
| Fréquence de commutation | 10 Hz |
| Hystérèse | Typique 8% |
| Protection | Protection contre l'inversion de polarité, pulsed short-circuit protection |
| Voltage drop (Etat ON) | ≤3 V, typical 1.9V@200mA |
| Courant à vide | ≤20 mA |
| Power-up ready delay | ≤90 ms |
| Indicator LEDs | Green = Power; Yellow = Switching action |
Metal Reduction Factors (Critical for Selection)
304 acier inoxydable: 1.0 (no reduction)
Laiton: 0.47
Aluminium: 0.37
Cuivre: 0.35
The effective sensing distance will decrease significantly for aluminum/copper targets. Factor calculation is mandatory during selection.
🧱 Mechanical & Données environnementales
Logement: Plastique ABS, aluminum base
Forme: Square large housing, fixed by mounting holes
Connexion: M12×1 male 4-pin connector
1: BN Brown DC+
2: WH White
3: BU Blue DC-
4: BK Black Signal output
Température de fonctionnement: -25 ~ +70 ℃
Température de stockage: -40 ~ +85 ℃
Certifications: cULus, CE
⚙️ Typical Applications
Long-range metal detection for:
Position limit of overhead cranes
Large material presence detection
Trolley positioning in warehousing logistics
Metal target detection for heavy machinery
Note: Switching frequency only 10Hz, not suitable for high-speed moving targets.
🛠️ Installation Guidelines
- Montage non encastré. Sensing face shall NOT be embedded in metal; sufficient metal clearance must be reserved around the sensing surface.
- Stainless steel target plate is recommended. For aluminum/copper targets, use larger target size or reduce installation distance.
- Power-up initialization delay up to 90ms. PLC program shall account for this to avoid false triggering at startup.
- Use matched M12 connector. Shielded cable is recommended to reduce interference from frequency converters.
🔁 Replacement & Des pièces de rechange
Même série: NCN100-F23-E0-V1 (NPN NO version)
Domestic replacement guideline: Square long-range inductive sensor, PNP NON, 100mm non-flush, Connecteur M12. Note: Reduction factors vary widely for domestic long-distance sensors, on-site testing required.
📌 Customs HS Code
85365019 (Other switching devices)
⚠️ Troubleshooting Checklist
- LED verte éteinte: No power supply or reversed polarity
- Green LED on, yellow LED never triggers: Target too far / aluminum/copper target with heavy reduction / insufficient target area
- Yellow LED flickering: Court-circuit, overload or cable insulation damage
- Faux déclenchement: Large nearby metal mass or electromagnetic interference (VFD)
Typical Application Cases of Pepperl+Fuchs NCN100-F23-E2-V1
Core selection premise: 100mm ultra-long sensing distance, non affleurant, PNP NON, switching frequency only 10Hz. Suitable for low-speed position limit / détection de présence, not for high-speed counting. IP67 rated, -25~70 ℃, adapté aux environnements poussiéreux, humid heavy-duty environments.
Cas 1: End Limit for Bridge Crane / Overhead Crane Trolley (Le plus courant)
Industrie: Métallurgie, steel warehouse, heavy-duty workshop cranes
Solution:
The sensor is mounted on the side of the crane rail. A stainless steel target plate is fitted at the end of the trolley. When the trolley approaches the rail end within the 81mm reliable operating distance, the sensor sends a PNP signal to PLC to trigger deceleration and emergency stop protection, preventing rail overtravel.
Avantages: Long sensing distance allows flexible installation space. M12 connector enables quick replacement under heavy vibration; IP67 withstands dust and cooling water splashes.
Remarques:
- Low trolley travel speed matches 10Hz switching frequency.
- Stainless steel target plate preferred. For aluminum targets, calculate distance using reduction factor.
- Keep large steel structures away from the sensing face to prevent false triggering.
Cas 2: Horizontal Rough Positioning for AS/RS Stacker Cranes in Automated Warehouses
Industrie: Entreposage intelligent, chambre froide
Solution:
NCN100-F23-E2-V1 sensors are installed in segments along the stacker travel rail. When the stacker’s metal baffle passes the sensor, it provides a rough position presence signal, working together with encoders for position calibration.
Fonction: Confirm the stacker arrives at the storage location and trigger deceleration. Avoid failure of photoelectric sensors caused by dust and moisture.
Limitation: Only rough positioning, not high-precision positioning; provides digital presence signal only, no distance measurement.
Cas 3: Station Presence Detection for Heavy-Duty AGVs
Industrie: Factory heavy-load AGVs, mining material transfer vehicles
Solution:
Sensors are mounted at ground stations, and metal target blocks are fitted on AGV side panels. When AGV enters the station and the target enters sensing range, the sensor outputs a presence signal for PLC to lock wheels and start loading/unloading.
Avantages: Long sensing distance permits larger docking tolerance and lowers navigation accuracy requirements. Resists workshop dust and oil contamination, more stable than photoelectric sensors.
Restriction: Not for high-speed AGVs. 10Hz switching frequency may cause missed detection for fast-moving targets.
Cas 4: Presence Detection for Heavy Transfer Trolleys in Steel & Cement Plants
Industrie: Métallurgie, ciment, sintering plants
Solution:
Sensors are mounted rail-side for sintering trolleys and steel billet transfer trolleys. The sensor detects when the trolley metal baffle arrives at unloading / loading station.
Operating conditions: High radiant heat, heavy dust and strong vibration. Sensor operating temperature -25~70℃ meets requirements. Large metal targets ensure stable detection.
Commissioning tip: Mass steel structures exist on site, metal clearance must be reserved to avoid constant false triggering by background metal.
Cas 5: Position Monitoring for Large Hydraulic/Pneumatic Heavy-Duty Gates & Flaps
Industrie: Traitement des eaux usées, mining silo gates
Solution:
One NCN100-F23-E2-V1 is fitted at fully-open and fully-closed positions of silo discharge gates respectively, to detect arrival of the metal actuator baffle. Position feedback is sent to PLC to confirm gate status and interlock upstream/downstream belt conveyors.
Caractéristiques: Slow gate movement perfectly matches low switching frequency. Remote sensor installation keeps it away from sediment and material impact.
Cas 6: Trolley Limit Protection for Gantry Cranes in Container & Steel Yards
Industrie: Ports, steel logistics yards
Solution: Sensor used for travel limit protection of gantry crane trolley. Detects trolley approaching metal end stop to trigger pre-deceleration as secondary safety limit.
Remarque: It is only a position switch, NOT a SIL safety rated sensor. Cannot be used as sole safety protection; mechanical limit switch is recommended as backup.
📌 General Application Notes (Applicable à tous les cas)
- Target material reduction: Stainless steel target factor =1.0; aluminum =0.37. Effective distance drops greatly for aluminum targets, must be calculated in selection.
- Movement speed constraint: Max switching frequency 10Hz. Only for limit and presence confirmation; strictly prohibited for high-speed counting.
- Installation: Montage non encastré. Sensing face cannot be embedded into metal. Adequate metal clearance around sensor.
- Power-up delay: Up to 90ms initialization time. PLC logic needs power-up delay to prevent false signals on startup.
- Target plate size: Target area cannot be too small. Target must fully cover the sensor sensing face, otherwise unstable detection occurs.
🔎 Application Quick Selection Table
| Scénario | Recommandation | Brief Reason |
| Overhead / gantry crane trolley limit | ✅ Highly recommended | Faible vitesse, longue distance, forte poussière & vibration |
| AS/RS stacker rough positioning | ✅ Recommandé | Alternative to easily contaminated photoelectric sensors |
| Workpiece counting on high-speed conveyor | ❌ Not recommended | Insufficient switching frequency, détection manquée |
| Long-range detection of aluminum workpieces | ⚠️ Use with caution | Low reduction factor reduces effective sensing distance |
| High-precision position measurement | ❌ Not recommended | Digital switch output only, no analog distance value |
Working Principle of Inductive Proximity Sensors
Principe fondamental: Alternating Magnetic Field + Eddy Current Effect in Metal Conductors
Inductive proximity sensors detect metal objects only. Non-metals (plastique, bois, verre, caoutchouc) cannot be sensed.
Internal Components
- LC Oscillator Circuit (Bobine + Condensateur): Generates high-frequency alternating electromagnetic field radiating outward from the sensing face after power-on.
- Demodulation & Comparator Circuit: Monitors oscillation amplitude variation
- Output Driver Circuit: Sortie transistorisée (NPN / PNP)
- Alimentation, indicator LEDs
Séquence de fonctionnement complète
- After sensor power-up, the LC circuit starts oscillation. The coil emits high-frequency alternating magnetic field.
- No metal target present: Little energy loss in magnetic field, oscillation is maintained. Circuit judges no target, output stays in original state.
- Metal target enters magnetic sensing zone: Alternating magnetic field penetrates metal surface and induces eddy current inside metal via electromagnetic induction.
- Eddy current generates reverse magnetic field counteracting the original coil field → energy of oscillator circuit is consumed and oscillation amplitude attenuates.
- The detection circuit detects amplitude drop below threshold, confirms metal presence and toggles transistor output (NO contact closes / Le contact NC s'ouvre), meanwhile the switching LED lights up.
- Metal moves out of sensing zone: Eddy current disappears, magnetic field recovers and oscillation resumes, sensor output resets.
Résumé en une phrase: Coil generates alternating magnetic field; metal creates eddy current to consume magnetic energy; circuit identifies energy change and outputs switch signal.
Caractéristiques clés (Referencing NCN100-F23-E2-V1)
- Distance de détection & Material Reduction
Eddy current strength depends on metal conductivity and permeability:
Ferromagnetic metals (acier, acier inoxydable): Strong eddy current, long sensing distance (reduction factor≈1)
Aluminium, cuivre: Non-ferromagnetic, weaker eddy current, effective sensing distance greatly reduced (Al:0.37, Cu:0.35, matching previous parameters)
- Flush / Non-Flush Mounting
Flush: Can be embedded into metal base; magnetic field concentrated on front face; portée de détection plus courte
Non affleurant (NCN100 is this type): Cannot be embedded in metal; magnetic field diverges wider, longer sensing distance, but side metal may cause false triggering
- Fréquence de commutation
Time is required for magnetic field build-up and eddy current decay, hence maximum response frequency. NCN100 only 10Hz, not for fast-moving workpieces.
- Hystérèse
Trigger distance on approach is larger than reset distance on departure. But: prevent signal chattering caused by mechanical vibration.
Simple Comparison vs Photoelectric Sensors
Inductif: Détection de métaux uniquement. Immune to dust, moisture and oil. Long-range models cost higher and subject to material reduction.
Photoelectric: Detects metal and non-metal. Prone to failure when lens contaminated by dust or water mist.
Supplément
⚠️ Inductive proximity sensors are NOT distance measuring sensors. They only provide a binary signal indicating whether metal enters the threshold distance, no numerical distance output.
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