Plataforma de fuentes OEM de 1535 nm y 1550 nm

Láseres de fibra pulsados para LiDAR

Lumexis desarrolla láseres de fibra pulsados de nanosegundos compactos para LiDAR, teledetección, mapeo, inspección industrial e instrumentos científicos. La gama de productos existente incluye fuentes compactas de 1535 nm y 1550 nm, láseres de fibra de alta potencia pico y una fuente de luz LiDAR de ocho canales. Las especificaciones publicadas abarcan potencia pico de 1.16 kW hasta 15 kW, repetición de 1–3000 kHz, ancho de pulso de 1–60 ns y salida óptica FC/APC, FC/UPC o fibra multimodo.

La potencia pico, la potencia media, la tasa de repetición y el ancho de pulso dependen de la configuración. Confirme la hoja de datos del modelo seleccionado antes de fijar el diseño óptico, eléctrico o térmico.

Yellow technical line drawing of LiDAR pulsed fiber laser modules
Hasta 15 kW1–3000 kHz1–60 ns
1535 nm compact pulsed fiber laser1535 nm / 1,2 kW
1550 nm compact pulsed fiber laser1550 nm / 1,6 kW
1550 nm 3 kW pulsed fiber laser1550 nm / 3 kW
LONGITUDES DE ONDA1535 / 1550 nm

Dos opciones de fuente de 1.5 µm para arquitecturas seleccionadas de LiDAR y detección.

POTENCIA PICOHasta 15 kW

Clases de potencia pico publicadas, desde arquitecturas de fuente compactas hasta de alta potencia.

ANCHO DE PULSO1–60 ns

Ajustes de pulso de nanosegundos según el modelo y la configuración.

REPETICIÓN1–3000 kHz

Rango de repetición publicado en el archivo de productos existente.

SALIDA DE FIBRAFC/APC / FC/UPC

La opción de conector depende del modelo; verifique con la especificación seleccionada.

RANGO DE OPERACIÓN−40 a +75°C

Rango publicado para la serie; confirme el límite térmico real del host.

Gama completa de productos

Elija la fuente según las condiciones de pulso y la arquitectura LiDAR final.

La potencia pico por sí sola no define el rendimiento del sistema. Compare longitud de onda, ancho de pulso, tasa de repetición, presupuesto de potencia media, tipo de conector e interfaces mecánicas/térmicas antes de la liberación del diseño.

Comparación de modelos

Compare los parámetros técnicos publicados en una tabla.

Los números a continuación son los valores de selección publicados localmente. La especificación técnica específica del pedido define el punto de operación final, la interfaz y las condiciones de aceptación.

ModeloLongitud de ondaPotencia máximaAjustes de repeticiónAjustes de ancho de pulsoPotencia mediaSalida ópticaDimensionesTemp. de funcionamiento.
1535-LXMC1,2KW1535 nm2 kW100 / 500 / 2000 kHz5 / 3 / 3.5 ns2 WFC/APC + FC/UPC55 × 55 × 16 mm−40 a +75°C
1550-LXMC1,6KW1550 nm6 kW100 / 500 / 2000 kHz5 / 3 / 3.5 ns1 WFC/APC50 × 70 × 19 mm−40 a +75°C
1550-LXMC3KW1550 nm3 kW50 / 500 / 2000 kHz3 / 3 / 5 ns2,0 WFC/APC50 × 70 × 19 mm−40 a +75°C
1535 nm Pulsado1532–1537 nm1160 W100–2000 kHz3 ns típico7–1.1 WFC/APC + FC/UPC55 × 55 × 16 mm−40 a +85°C
1550 nm Compacto1547–1553 nm1–2 kW1–2 MHz1–10 ns95–1.05 WFC/APC50 × 70 × 19 mm−40 a +70°C
1550 nm Alto pico1545–1555 nm12 kW típ.; hasta 15 kW30–100 kHz4 ns3–6 WFibra multimodo160 × 160 × 30 mm−40 a +60°C
1550 nm Erbio1545–1555 nm2 kW1–3000 kHz1–60 ns8 WFC/APCØ90 × 24.5 mm−40 a +70°C

Nota de especificación: La alimentación es de 9 / 12 / 13 V para los tres modelos listados. Los valores de pulso y repetición representan configuraciones listadas, no una garantía de que cada combinación esté disponible. Confirme la selección con ingeniería de Lumexis.

Pulso óptico de nanosegundos
Pulso semillaAmplificador de fibraConformación de pulsoSalida de fibra

Fundamentos del láser de fibra pulsada

Del pulso semilla a la salida LiDAR entregada por fibra.

Un láser de fibra pulsada crea una forma de onda semilla controlada y la amplifica a través de una ruta de ganancia basada en fibra. El ancho de pulso de salida, la potencia pico, la tasa de repetición y la potencia promedio deben seleccionarse juntos porque determinan la entrega de energía óptica, la carga térmica y el margen de temporización del sistema de detección final.

01 / SEMILLA

Pulse timing

The seed defines the timing reference and starting pulse shape for the system.

02 / AMPLIFICATION

Fiber gain path

Amplification raises the optical pulse to the required peak-power class.

03 / DELIVERY

Connector interface

Fiber connector selection must match host optics, contamination control and service needs.

04 / CONTROL

Disparo externo

Host timing, electrical grounding and trigger behavior should be validated together.

Selection knowledge

Four linked parameters define the usable pulse envelope.

These sources are selected as part of an optical system. Use the actual receiver, scanning architecture, optical loss, thermal path and data-acquisition timing when choosing a model and its operating point.

01 / PEAK POWER

Signal margin

Peak power affects the available optical intensity during the pulse. Evaluate it together with receiver sensitivity, optical losses and the host safety assessment.

02 / PULSE WIDTH

Timing resolution

Pulse width contributes to time-of-flight resolution, while the practical system result also depends on detector, electronics and signal processing.

03 / REPETITION

Point density

Repetition rate influences measurement cadence, sample density, data throughput and total thermal load in the final instrument.

04 / AVERAGE POWER

Thermal budget

Average optical power and electrical input define cooling and power-supply requirements. Do not size the thermal path around peak power alone.

Pulse energy ≈ peak power × pulse width

Use consistent units: 1 kW × 1 ns ≈ 1 µJ. This is a first-order selection relationship; actual delivered pulse energy and available operating combinations must be taken from the chosen model’s technical specification.

Application solutions

Designed for civil, industrial and scientific LiDAR architectures.

Application performance comes from the entire instrument: source, transmit optics, scanner, receiver, timing electronics, calibration and operating environment. We support model selection around that complete chain.

LiDAR terrain mapping application with airborne survey platform
01 / TERRAIN MAPPING

Terrain mapping

Airborne LiDAR source integration for topographic surveying and terrain-model generation.

LiDAR railway and infrastructure corridor inspection application
02 / INFRASTRUCTURE

Railway & infrastructure corridors

Pulsed-source architectures for rail, road and linear-infrastructure measurement.

Industrial mobile LiDAR mapping application
03 / INDUSTRIAL

Industrial mobile mapping

Compact optical sources for mobile scanning and industrial spatial measurement.

LiDAR forestry and agriculture mapping application
04 / FORESTRY & AGRICULTURE

Forestry & agriculture

Airborne LiDAR workflows for canopy structure, landform and agricultural mapping.

Mechanical & electrical integration

Resolve the fiber, trigger, power and thermal interfaces before freezing the host enclosure.

Use the model-specific drawing, connector definition and operating limits as the design baseline. Validate the assembled host system—including fiber routing, bend management, electrical noise, thermal transfer and service access—rather than the bare laser in isolation.

SALIDA DE FIBRA

Clean, protect, align

Match the FC/APC or FC/UPC interface to host optics and protect end faces from contamination.

TRIGGER

Time the system

Confirm trigger polarity, delay, jitter and grounding with the selected model documentation.

POWER

9–13 V supply

Verify startup, current capacity, ripple and cable drop—not voltage alone.

THERMAL

Build the heat path

Provide controlled chassis contact and test temperature at the actual installed operating point.

LiDAR system chain from pulsed laser source through optics scanner detector and timing electronics

Testing & quality control

Source-level checks focus on pulse, optical delivery and integration-relevant reliability.

The detailed acceptance plan and environmental qualification are defined for the quoted configuration. Request the applicable record and test scope when planning samples or volume delivery.

01

Longitud de onda

Verify the source output against the selected 1535 nm or 1550 nm model specification.

02

Pulse output

Check pulse power and average output at the defined operating point.

03

Timing behavior

Verify pulse width, trigger relationship and repetition behavior as applicable.

04

Fiber delivery

Inspect optical connector condition and output stability at the fiber interface.

05

Environmental screen

Temperature, vibration and aging scope are defined by the project qualification plan.

06

Traceable delivery

Model identification, serial traceability and outgoing-inspection information can accompany shipment.

Safety and compliance: the pulsed fiber laser is an OEM source. The completed instrument is responsible for final laser-safety classification and any applicable approvals in its final optical and operating configuration.

Pre-sales FAQ

Clarify the system inputs before requesting samples.

These questions make the technical discussion more productive and allow us to recommend the right source configuration, integration documents and validation path.

How do I choose between 1535 nm and 1550 nm?

Start with the receiver sensitivity, transmit optics, detector choice, atmospheric path, final safety assessment and existing system architecture. The wavelength should be selected for the complete system rather than from a peak-power number alone.

What does peak power tell me?

It indicates the instantaneous optical power during the pulse. It must be read together with pulse width, repetition rate, average power, fiber delivery and the receiver’s signal margin. It is not a stand-alone measure of final system range or point-cloud quality.

Can I select any pulse-width and repetition-rate combination?

No. The values on this page identify published configuration settings. Available combinations, triggering behavior and performance limits are confirmed in the selected model’s technical specification.

Which fiber output should I use?

The 1535 nm 1.2 kW model lists FC/APC + FC/UPC; the two 1550 nm models list FC/APC. Connector, fiber routing, bend radius, cleanliness and downstream optical compatibility should all be verified during design-in.

What host information is needed for a sample recommendation?

Provide target application, wavelength preference, desired pulse and repetition regime, host optical layout, receiver type, supply rail, available thermal path, enclosure volume, operating temperature and planned evaluation date.

Can Lumexis support customised integration?

We can evaluate OEM requests around optical output, mechanical interface, electrical connection, trigger configuration and programme documentation. Feasibility depends on the requested performance, validation scope and production requirement.

Start an OEM source review

Select the pulsed source with the complete LiDAR system in view.

Send your required wavelength, pulse regime, receiver and optical layout, mechanical envelope, electrical supply and thermal conditions. We will identify the relevant models and engineering documents for evaluation.