Schneider LTMR08MFM Motor Management Controller - 접촉기,회로 차단기,태양광 인버터,전기 계량기,태양 전지

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Schneider LTMR08MFM Motor Management Controller - 접촉기,회로 차단기,태양광 인버터,전기 계량기,태양 전지

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Schneider LTMR08MFM Motor Management Controller

Schneider TeSys‑T (LTMR Series) Motor Management Controller — Application Scenarios TeSys‑T is an intelligent motor‑protection & monitoring unit. Core values: comprehensive motor protection + I/O logic control + Modbus RTU bus for motor‑data & fault‑log upload. It targets three‑phase asynchronous motors requiring fine‑grained protection, remote monitoring and predictive maintenance. An external contactor is required for ...

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슈나이더 TeSys‑T (LTMR Series) Motor Management Controller — Application Scenarios

TeSys‑T is an intelligent motor‑protection & monitoring unit. Core values: comprehensive motor protection + I/O logic control + Modbus RTU bus for motor‑data & fault‑log upload. It targets three‑phase asynchronous motors requiring fine‑grained protection, remote monitoring and predictive maintenance. An external contactor is required for motor start‑stop.

제품상태: Planned Obsolete, End‑of‑Life Date: Sep 30, 2026

시리즈: TeSys‑T Intelligent Motor Management Unit, Modbus‑RS485 communication, 0.4‑8A motor circuit protection & 모니터링

  1. 모델 코드 분석
필드암호설명
LTMLTMTeSys‑T motor management system series
아르 자형아르 자형Controller body
88Rated current measuring range 0.4‑8 A
의사소통: 모드버스 RTU (RS485)
에프에프Control supply: 100‑240 V AC
Terminal version M (standard terminals, 6에서 / 3DO relay outputs)
  1. Main Electrical & Hardware Specifications
Motor current measurement range0.4 … 8 A
제어 공급 전압100‑240 V AC; operating tolerance: 93.5~264 V AC, 50/60 헤르츠
Logic Inputs (에서)6‑channel AC‑type logic inputs; 0‑40 V = OFF state, 79‑264 V = ON state
릴레이 출력 (~하다)3아니요 + 1NO+1NC fault relay; 접촉 등급: AC250V/5A; DC30V/5A
통신 인터페이스Modbus‑RTU RS485; 듀얼 RJ45 + terminal block port; 전송 속도:1.2~19.2 kbit/s; 주소 범위:1‑247
Overall dimension (H×W×D)61 × 91 ×122.5 mm; 무게:0.53 kg; DIN‑rail mounting
작동 주변 온도-20 ℃ … +60 ℃; 보관 온도:‑40 ℃~+85 ℃; condensation prohibited
정격절연전압 Ui690 다섯; pollution degree 3, overvoltage category III
배선 토크0.5‑0.6 N·m; wire gauge:0.2‑2.5 mm² solid / 유연한 케이블

III. Built‑in Protection Functions

Thermal overload long‑time protection, locked‑rotor protection, 위상 손실, 위상 불균형, phase‑reversal, earth‑leakage protection

Recordable data: 결함 이벤트, 시동 전류, operating hour counter, trip context, residual thermal capacity; pre‑alarm supported

확장: with LTME expansion module for voltage measurement, power‑factor and load‑variation protection

  1. In‑depth Operating Principle
  2. Current acquisition: Built‑in 3‑phase current transformers measure motor true RMS current; integrated earth‑fault current detection.
  3. Thermal model: Embedded motor thermal‑memory algorithm simulates motor temperature rise for overload protection; cooling delay applied after tripping.
  4. I/O logic: 6 DIs receive external start/stop / local‑remote commands; 3 relay outputs drive contactor coils; fault relay provides alarm signal.
  5. Modbus bus: Upload current, thermal status, 오류 코드, operating status; receive remote start‑stop and parameter modification commands.
  6. Local blue TEST/RESET push‑button: manual fault reset & local test; front‑panel LED indicators (힘 / 달리다 / 경보 / FAULT).

메모: This unit performs only protection & logic control. Main‑circuit contactor must be externally wired to build a complete motor starter circuit.

  1. Key Terminal Definitions (요약)

A1/A2: Controller power supply, 100‑240 VAC

C1‑C6: 6 logic input channels (에서)

21‑24, 31‑34: 3 NO relay outputs (for contactor driving)

95‑96‑97: Fault relay, 1아니요+1NC

모드버스: Dual‑port RS485 (RJ45 + 터미널 블록), supports daisy‑chain networking

  1. 치받이 & Replacement Solution (Official TeSys‑Tera New‑generation Series)

TeSys‑Tera adopts separated architecture: controller body + external CT sensors. Direct‑pin‑to‑pin hardware replacement against legacy LTMR is not feasible; current‑sensing wiring modification is required.

계획Main UnitCurrent Sensor적용 가능한 전류 범위
Scheme 1LTMTMFM (모드버스, 100‑240 VAC/DC)LTMTCTV3UT0.3‑3 A
Scheme 2LTMTMFM (모드버스, 100‑240 VAC/DC)LTMTCTV25UT2.5‑25 A

⚠ Upgrade Risks:

  1. Old LTMR integrates internal CT; new Tera uses external CT, cabinet wiring modification required.
  2. Modbus register mapping & parameters are not fully compatible; PLC program modification & commissioning are mandatory.
  3. I/O terminal layout is completely different; secondary‑wiring inside control cabinet must be reworked.

Ⅶ. 일반적인 애플리케이션 시나리오

Three‑phase asynchronous motors such as pumps, 팬, 압축기 및 컨베이어; 수처리, 야금, oil‑gas, 화학적인, 시멘트 산업; critical motor loops requiring PLC‑based bus access for motor‑protection status and fault‑log reading.

Ⅷ. 선택 참고 사항 & Boundary Conditions

  1. Max measuring current 8 A; not applicable for motors with rated current higher than 8 A.
  2. DIs are AC‑voltage inputs, not dry‑contact inputs; external supply voltage is required for contact closure.
  3. Max relay output switching frequency: 2 헤르츠; unsuitable for high‑frequency cycling applications.
  4. Cabinet‑level protection is required for condensation‑prone or corrosive environments.
  5. Planned end‑of‑life: Sep‑30‑2026; new‑project designs shall adopt TeSys‑Tera preferentially.
  6. General‑process Industrial Equipment (가장 일반적인)
  7. 팬 & Pump Circuits

Circulating pumps, 냉각 펌프, 하수 펌프, makeup‑water pumps, smoke‑exhaust fans, supply‑return fans, cooling‑tower fans.

가치: 초과 적재, locked‑rotor, phase‑loss & earth‑fault protection; upload running current, fault status and runtime; underload protection for pump dry‑run prevention.

산업: 공조, 폐수 처리, water‑works, building MEP.

  1. 컨베이어, belt feeders & 스크류 피더

벨트 컨베이어, scraper conveyors, 스크류 피더, bucket elevators.

가치: fast trip upon mechanical jamming; phase‑unbalance & earth‑fault protection; fault history for jam‑incident analysis; interlock‑logic support.

산업: 채광, building materials, grain storage, logistics handling, chemical processing.

  1. 압축기 & 냉동 장치

Screw air compressors, 냉동 압축기, process compressors.

가치: prevent locked‑rotor / overload caused by liquid‑slugging; thermal‑model winding protection; upload motor status to PLC / SCADA via fieldbus.

  1. Water‑treatment & Municipal Industry (High‑volume TeSys‑T deployment)

Lift pumps, return‑flow pumps, agitator motors for chemical dosing, aeration blowers, bar screens, scrapers.

Site features: large quantity of geographically distributed motors; remote monitoring of current & faults to reduce on‑site inspection; high incidence of phase‑loss & earth‑fault faults.

Typical architecture: Modbus‑RTU multi‑drop networking with PLC, aggregating motor‑protection data to SCADA host.

  1. 화학적인 & 제약 산업

Reactor agitators, 순환 펌프, 계량 펌프, material transfer pumps, 원심분리기.

가치:

  1. Earth‑leakage protection mitigating motor damage from process‑media leakage.
  2. Complete fault event log for process traceability and GMP compliance.
  3. Phase‑reversal protection to prevent reverse rotation after maintenance phase swapping.

메모: Controller body cannot be installed directly in hazardous explosive areas; explosion‑proof enclosures / contactors are required.

  1. 야금, 시멘트 & Building‑materials

Dust‑removal fans, 냉각 팬, distributing actuators, unloading drives, small roller‑table motors.

Operating conditions: heavy shock‑loading, high dust; frequent locked‑rotor & phase‑loss events; combined thermal‑overload & fast locked‑rotor trip safeguards motor windings.

  1. Power‑plant Auxiliary Drives

Small auxiliary motors: 냉각 팬, lube‑oil pumps, seal‑water pumps.

가치: critical auxiliary equipment; pre‑alarm & fault‑snapshot recording for root‑cause analysis after incidents.

  1. Logistics‑packaging & 플라스틱 기계

컨베이어 벨트, 교반기, 피더, auxiliary drives for small extruders.

장점: 현지의 / remote mode selection via DI; contactor‑coil driving via DO eliminates numerous intermediate relays.

✅ Selection Criteria for TeSys‑T

Choose LTMR if any condition below applies:

  1. Fieldbus communication required: read current, thermal‑capacity percentage, 영업시간, fault codes and fault snapshots.
  2. Valuable motors requiring full‑scope protection: 열 과부하, locked‑rotor, phase‑loss, phase‑unbalance, phase‑reversal, earth‑fault, 과부하.
  3. Local‑remote dual control mode plus complex interlock logic; reduce intermediate‑relay count.
  4. On‑site requirement for fault logging for post‑event troubleshooting.
  5. Multi‑motor centralized monitoring network connected to PLC / SCADA.

❌ Unsuitable Application Scenarios

  1. Only simple thermal‑relay protection needed without communication or fault logging: select low‑cost LRD thermal overload relays instead.
  2. Motor full‑load current far exceeds built‑in CT range (max integrated‑CT LTMR:100 에이). Use new‑generation TeSys‑Tera with external CT for higher‑current motors.
  3. High‑frequency motor cycling: relay DO max switching frequency 2 Hz; contact wear will accelerate.
  4. Intrinsically‑safe hazardous zones: controller body cannot mount inside hazardous area.
  5. Single‑phase‑motor protection: TeSys‑T targets three‑phase induction motors.

📌 Old‑vs‑New Generation Summary

Legacy: LTMR series (예를 들어. LTMR08MFM), planned EOL Sep‑30‑2026, built‑in current transformers.

새로운: TeSys‑Tera (LTMT series), external‑CT architecture, broader current coverage; preferred for new‑project engineering.

Thermal‑Overload Protection Principle of Schneider TeSys‑T (LTMR)

TeSys‑T does not rely on physical bimetallic‑strip deformation like conventional thermal relays. It implements thermal‑overload protection via electronic thermal‑model (virtual‑motor thermal‑memory algorithm) + true‑RMS three‑phase‑current sampling.

  1. Hardware Acquisition Stage
  2. Built‑in three‑phase current transformers sample true RMS stator current (not simple peak values).
  3. Integrated earth‑fault‑current detection circuit.
  4. Analog‑current signals are digitized by MCU for periodic load‑current refresh.

For LTMR08MFM: internal CT measuring range:0.4‑8 A for direct stator‑loop current measurement.

  1. 핵심: Virtual‑motor Thermal‑Model (Thermal Memory)

The controller runs a mathematical model simulating motor‑winding heat accumulation and heat dissipation:

theta_{가상} \propto \int(I^2 \cdot t)dt

Heat accumulation: thermal‑capacity percentage rises when operating current exceeds motor rated current.

열 방출: thermal‑capacity percentage decreases during stop or light‑load operation, simulating natural motor cooling.

Two key configurable parameters drive model behaviour:

  1. Motor rated current Ir: set according to motor nameplate full‑load current.
  2. 여행 클래스 (5/10/15/20/30), defines inverse‑time tripping characteristics.

📌 Thermal‑capacity percentage: internal variable 0‑100 %; overload trip triggers at 100 %. This value can be read via Modbus register.

Trip‑Class Definition

여행 클래스Trip Time @7.2 × IrTypical Motor Application
Class 54‑5 sFast‑starting motors
Class 106‑10 sStandard general‑purpose three‑phase induction motors (most‑used)
Class 159‑15 sHeavy‑duty start‑load applications
Class 2012‑20 sHigh‑inertia heavy‑start motors
Class 3018‑30 sLong‑start‑time high‑inertia loads (예를 들어. 대형 팬)
  1. Overload Handling for Two Typical Operating Conditions

① Continuous running overload (persistent over‑current)

Motor runs continuously with I>Ir; virtual thermal‑capacity accumulates until reaching 100 %. The controller outputs trip command, de‑energizes contactor‑coil relay outputs and stops the motor. Over‑load fault code plus fault snapshot (3‑phase current & thermal‑capacity at trip instant) are stored.

② Overload during motor start‑up (high‑magnitude starting inrush current)

Configured Trip‑Class permits short‑term high starting‑current without nuisance tripping; thermal‑model decays accumulated heat after start‑up completes.

⚠ Critical Feature: Thermal‑memory retention

After overload trip, virtual thermal‑capacity value does not reset immediately even if controller power supply remains alive. Model‑simulated cooling‑time must elapse or manual RESET is required.

Practical case: after motor trips from overload, windings remain hot. Instant reset & restart risks motor burnout. Thermal‑memory prevents premature restart and mimics real‑motor cooling behaviour.

  1. Pre‑alarm Function (Overload Early Warning)

Configurable thermal‑capacity threshold (e.g. 80 %). When virtual thermal‑capacity exceeds threshold, overload pre‑alarm activates without tripping. Warning signal can be transmitted via relay DO or Modbus for predictive maintenance before unplanned shutdown.

  1. 비교: Conventional Bimetallic Thermal Relay vs TeSys‑T LTMR Electronic Thermal‑model
Traditional LRD Bimetallic Thermal RelayTeSys‑T LTMR Electronic Thermal‑model Overload Protection
Protection PrincipleBimetallic‑strip physical thermal deformationSoftware‑based virtual thermal‑model with RMS‑current sampling
Thermal‑memory characteristicHeat vanishes upon power‑loss; no thermal retentionThermal‑memory can be retained upon power‑loss (구성 가능)
Ambient‑temperature influenceStrong cabinet‑temperature‑dependent, notable deviationSoftware temperature compensation; low environmental‑temperature sensitivity
Trip‑class setting결정된 (limited models support adjustment)Software‑configurable Class 5‑30
Data‑availabilityNo status outputBus‑readable thermal‑capacity, fault snapshots, current measurements
  1. Boundary‑conditions & 제한사항
  2. Overload protection protects motor‑winding thermal accumulation, not power cables; separate circuit‑breaker required for cable‑conductor protection.
  3. Phase‑loss / phase‑unbalance accelerates thermal‑model accumulation and advances trip threshold.
  4. Locked‑rotor and earth‑fault are independent protection functions, not part of overload logic.
  5. Adjust Trip‑Class if actual motor‑cooling condition deviates from internal model (예를 들어. forced‑air‑cooled motor).
  6. LTMR thermal‑model is designed for standard three‑phase induction motors. Direct reuse for VFD‑fed or special‑purpose motors is invalid; parameter tuning is mandatory.
  7. Fault‑reset Logic
  8. Auto‑reset: parameter‑enabled; reset occurs only after thermal‑model cools down to safe thermal‑capacity level.
  9. 수동 재설정: local front‑panel RESET button, DI terminal reset signal, or Modbus‑bus reset command.

Forbidden operation: repeated forced restarts before motor cools after thermal trip.

  1. 오류 코드

Thermal‑overload trip fault code: OL1. Fault log stores timestamp, three‑phase current and thermal‑capacity percentage, retrievable via Modbus.

이전:

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