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High-Power 1064nm Laser Designator System LDR60K1 for UAV and Vehicle Integration

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Product Model:LDR60K1

The LDR60K1 is a 60 mJ 1064 nm laser target designator/rangefinder module optimized for airborne and turret-mounted applications. It offers long-range ranging up to 10 km, precise frequency-coded illumination for laser-guided weapons, and ±2 m accuracy with ≥ 98% detection probability. With compact dimensions, low SWaP, RS-422 digital control, and built-in self-test across a −40 °C to +55 °C operating range, the LDR60K1 is ideal for integration into UAV gimbals, EO/IR pods, and ground fire-control systems.

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Senior Engineer, Yilin

Tel : +86 28 81076698

WhatsApp : +86 18000520222

ERDI Pre-Sales Notice & Customer Information

(Please Read Before Purchase or Inquiry) Thank you for your interest in ERDI TECH LTD. We are committed to providing customers worldwide with high-precision, high-reliability laser products and technical solutions. Before placing an order, please read the following information carefully to better understand our company, services, and purchasing policies.

  • About ERDI​

     ERDI is a professional manufacturer specializing in the research, development, and production of laser modules, laser measurement systems, and related optoelectronic components.
    We integrate design, R&D, production, and sales, with a focus on safety, innovation, and precision.

    Our products are widely used in:

    • Industrial measurement and alignment systems
    • Scientific research and educational applications
    • Optical instrumentation and laser testing
    • Consumer and OEM laser solutions

    ERDI operates certified facilities and maintains rigorous quality control to ensure that every product meets international standards.

  • Global Presence and Trade Reliability​

    ERDI has established official stores on leading global platforms including Amazon, Alibaba International Station, and Made-in-China.com, allowing customers worldwide to purchase safely and conveniently. We are a verified and trusted factory, not a reseller, and we ensure that all transactions, quotations, and logistics follow transparent and secure trade practices.
  • Sample and Lead Time​

    To help customers evaluate our products and performance, we offer sample orders for most product categories.

    • Standard samplesare typically delivered within one week after order confirmation.
    • Customized modulesmay require additional processing time depending on design complexity and optical requirements.
      Our logistics team will provide real-time tracking and documentation for every shipment.
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     ERDI supports full-range customization including:

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    We provide technical co-development, logo engraving, packaging customization, and batch production services to meet both small-scale and mass-production requirements.

  • Technical Support and Service System​

    ERDI maintains technical service centers and distribution partners worldwide, enabling rapid customer response.
    We provide:

    • Comprehensive technical consultation and project evaluation
    • One-on-one on-site technical assistanceat the customer’s facility when required
    • Lifetime after-sales supportand technical maintenance guidance

    Each laser product is delivered with a full set of user documentation, including Laser Module Usage Precautions and Safety Guidelines.

  • Quality Assurance and Warranty​

    ERDI implements strict multi-stage quality control throughout production:

    • Incoming material inspection
    • Optical alignment verification
    • Output power and wavelength calibration
    • Safety and durability testing under standard conditions

    We guarantee that all products leaving our factory meet design and performance specifications.
    Except for man-made damage, we will replace any defective unit within one year free of charge and provide lifetime maintenance support thereafter.

    For more details, please refer to our After-Sales Service & Warranty Policy.

  • Important Safety Reminder

    Before using any ERDI laser product:

    • Carefully read and follow the Laser Module Usage Precautions.
    • Always use appropriate laser protective eyewear.
    • Operate only in controlled environmentsunder trained personnel supervision.
      Failure to observe safety instructions may result in injury or equipment damage.
  • Communication and Order Confirmation​

    To ensure efficient service, please confirm the following before placing an order:

    • Product model, wavelength, output power, and working voltage/current
    • Whether you require custom mechanical dimensions, optical configurations, or driver circuitry.
    • Packaging, labeling, and shipping preferences.
    • Any specific export or compliance documentation needed for your country.

    Our sales engineers will provide an official quotation and delivery schedule upon confirmation of all specifications.

  • Final Statement​

    ERDI upholds the values of safety, integrity, and precision. We sincerely welcome customers from all over the world to visit our facilities, discuss cooperation, and experience our advanced laser technologies firsthand. Your satisfaction and trust are our highest pursuit.

After-Sales Service & Warranty Policy

We strive to provide high-quality laser modules and excellent customer service. Please read the following terms carefully to understand your rights and our responsibilities.

  • Product Origin and Quality Assurance​

    • All ERDI products are manufactured directly by the factory, ensuring consistent quality and full traceability.
    • We provide a diverse rangeof laser modules and laser distance measurement modules to suit various industrial, educational, and research applications.
    • Every product is tested and inspectedbefore shipment to guarantee that it meets specification standards.
  • Return and Exchange Policy​

    • Customers may request a return or exchange within 30 daysof receiving the goods, provided that:
    • The product remains in original condition, unused, and without affecting secondary sales.
    • A valid reason for return or exchangeis provided.
    • Upon approval, we will replace or refund according to our service policy.
    • The buyer is responsible for shipping costsassociated with returns, exchanges, or repairs, based on international freight cost rules.
  • Warranty Coverage​

    • The main functional componentsof ERDI laser products are covered by a 2-year warranty from the date of purchase, excluding cosmetic appearance.
    • Within the first 12 months, if a verified manufacturing defect occurs, we will replace the item with a brand-new productfree of charge.
    • Replacement of cosmetic or housing components (e.g., enclosure, labeling, or exterior parts) may incur a reasonable cost feebased on material expenses.
    • Warranty does not cover:
    • Damage due to misuse, improper installation, or modification.
    • Operation outside the recommended power supply or temperature range.
    • Accidental or physical damage, including drops, fire, or liquid ingress.
  • Receiving Inspection​

    • Upon delivery, please inspect the parcel immediately in the presence of the courier.
    • If there is any quantity discrepancy, visible damage, or mismatch, do not signthe delivery receipt.
    • Once the package is signed for (by you, family, or colleagues), it is considered accepted as correct and complete.
  • Customer Support

    For technical assistance, warranty claims, or safety inquiries, please contact our official service team through the contact information listed on erdicn.com.
    Our support engineers will provide professional guidance on installation, alignment, safety, and maintenance procedures.

Laser Module Usage Precautions

(Important – Buyers Must Read Before Use)

Operating laser modules involves potential optical and thermal hazards. To ensure safe and proper use, please read the following precautions carefully before powering on your laser product.

  • General Safety Warnings​

    • Invisible Radiation Warning– Some laser modules emit infrared (IR) or ultraviolet (UV) radiation that is invisible to the human eye. Never assume the laser is malfunctioning simply because you cannot see the beam. Always confirm that the power is disconnected before inspecting the module.
    • Do Not Look Directly into the Laser Aperture– Even when wearing certified laser safety goggles, never stare directly into or near the beam exit of a working laser module.
    • Avoid Reflected Beams from High-Power Lasers– Reflection from Class IV lasers (output power > 500 mW) can cause severe and permanent eye damage. Always wear wavelength-specific safety goggles when operating or aligning high-power laser systems.
    • Keep Away from Flammable Materials– Do not place flammable or explosive items (such as paper, cloth, leather, or plastics) in the laser path. Black or dark-colored materials absorb laser energy more easily and may ignite. (Exception: controlled material-burning experiments with proper fire protection.)
    • Avoid Direct Human Exposure– Class IIIa or higher lasers (≥ 5 mW) can burn skin or eyes. Never point a laser beam at any part of a person’s body.
    • Restrict Access to Trained Personnel Only – Keep all laser devices out of reach of untrained individuals, children, and pets.
  • Optical Path and Reflection Safety​

    • Never Aim Toward Glass Surfaces– Ordinary glass reflects roughly 4 % of incident light, which can redirect dangerous laser radiation into your eyes. Avoid operating lasers in front of mirrors or reflective windows.
    • Working Plane Awareness– When setting up an experimental platform, note the laser emission height. Do not position your head or eyes near this level during operation. Lenses and mirrors may reflect or refract light unexpectedly. Always align optical components downward or horizontally—never angle a beam upward.
    • Remove Reflective Accessories– Watches, jewelry, and other shiny objects can reflect laser light unpredictably. Remove them before use.
    • Infrared Beam Detection– IR lasers (wavelength > 800 nm) are almost completely invisible. Use a beam-viewing card, IR detector, or up-conversion screen to visualize the beam path safely.
    • Visual Brightness Misjudgment– Some wavelengths (below 430 nm or above 700 nm) appear much dimmer than their actual power output. Do not rely on visual brightness to judge beam intensity.
    • Pulsed Laser Caution– Pulsed lasers can have extremely high peak power even at modest average power levels. Verify that all optical elements and samples in your experiment exceed the laser’s damage threshold before exposure.
    • Prohibited Uses– It is strictly forbidden to point laser beams at moving vehicles, aircraft, or any area where light could distract or endanger others.
    • End-of-Beam Safety Stop– Always place a black anodized or matte metal plate at the end of your optical path to absorb residual energy and prevent laser leakage into surrounding areas.

    Low-Power Modules – ERDI laser modules rated below 1 mW are considered eye-safe under normal operating conditions and can be used without hazard when handled properly.

  • Recommended Protective Measures​

    • Protective Eyewear– Always wear certified laser safety goggles designed for the specific wavelength and power level of your module.
    • Appropriate Clothing– Light-colored or white long-sleeved clothing reduces the risk of heat absorption or ignition if stray laser light contacts the fabric.
    • UV Laser Protection– For ultraviolet lasers, apply broad-spectrum sunscreen (SPF 30 or higher) to exposed skin areas to minimize UV radiation effects.
    • Environmental Safety– Operate lasers in a controlled laboratory or industrial environment with minimal reflective surfaces. Ensure that all personnel nearby are informed of ongoing laser use and have received proper training.

TECHNICAL SPECIFICATIONS

Operating modes

Ranging, illumination (designation)

Laser wavelength

1064 nm ± 3 nm

Operating Conditions

  • Target size: 2.3 m × 2.3 m.
  • Target reflectivity (for laser): ≥ 0.2.
  • Visibility: ≥ 20 km.
  • Operating temperature: −40 °C to +55 °C.
  • Storage temperature: −45 °C to +65 °C.

Average pulse energy

≥ 60 mJ

Pulse energy stability

within a single illumination cycle, the energy fluctuation of individual pulses shall not exceed ±10% of the average energy (measured over the full temperature range, statistic taken 2 s after emission begins).

Beam divergence

 ≤ 0.3 mrad

Laser pulse width

15 ns ± 5 ns

Spatial pointing instability of the laser beam

≤ 0.05 mrad

Non-parallelism between the mounting datum plane and the laser emission axis

≤ 0.3 mrad

Ranging frequency

1 Hz / 5 Hz / single-shot

  • 1 Hz continuous ranging duration: ≥ 10 minutes, then rest 1 minute;
  • 5 Hz continuous ranging duration: ≥ 5 minutes, then rest 1 minute.

Minimum measurable distance

≤ 300 m

Maximum measurable distance

 ≥ 10 km (large target)

Ranging accuracy

±2 m

Probability of valid ranging (detection probability)

 ≥ 98%

Illumination (designation) performance

  • Illumination frequency: per weapon-system requirements (fundamental frequency 20 Hz);
  • Coding method: precise frequency coding; supports user-defined precise frequencies;
  • Coding accuracy: 2.5 μs.

Illumination (designation) cycles

  • Short-cycle mode: single illumination duration 17 s, interval 10 s, up to 6 consecutive cycles;
  • Long-cycle mode: single illumination duration 47 s, interval 30 s, up to 2 consecutive cycles.
    After completing one short-cycle or long-cycle sequence, the next illumination shall not begin earlier than 30 minutes later.

Code types

precise frequency code, 8 fixed code patterns

Laser turn-on (response) time

≤ 800 ms (time from receipt of ranging/illumination command to emission)

Power-on startup time

≤ 10 s

 Service life

 ≥ 1,000,000 pulses (one million emissions)

Dimensions and mass

  • Overall envelope: ≤ 116 mm × 52 mm × 96 mm;
  • Mass: ≤ 680 g.

Power

  • Standby power consumption: ≤ 5 W;
  • Peak power consumption: ≤ 120 W;
  • Operating voltage range: 18 V – 32 V.

Electronic “three-proof” treatment

After PCB design and debugging, printed circuit boards shall be coated with a three-proof (conformal) coating to provide protection against moisture, dust and corrosive environments.

Temperature Requirements

High-Temperature Requirements

  • Operating temperature: ≤ +55 °C
  • Storage temperature: ≤ +65 °C

Low-Temperature Requirements

  • Operating temperature: ≥ −40 °C
  • Storage temperature: ≥ −45 °C

Vibration Requirements

The equipment shall withstand flight-induced vibration and shocks occurring during takeoff and landing. All components shall also meet the environmental conditions of vehicle transport.

Vibration spectrum:

  • From 15 Hz to 33 Hz, constant-displacement sinusoidal vibration with amplitude 91 mm;
  • From 33 Hz to 700 Hz, constant-acceleration sinusoidal vibration with amplitude 2 g.
  • Duration: 1 hour per axis in three orthogonal directions (X, Y, Z).

Test conditions:
The product shall be mounted on the vibration platform in its normal operating configuration and powered on during testing.

OUTLINE DIMENSION(mm)

 ranging, illumination (designation)

PIN INTERFACE

Rangefinder connector model: J30J-15ZKP
Mating plug model (on the electro-optical system side): J30J-15TJL (WL150A4)

The specific signal definitions of the laser target designator/rangefinder are shown in Table 1.

Table 1 — Electrical Interface Definition

Pin No.

Signal Definition

Input/Output

Description

Remarks

1. 

+28V

Input

The power supply characteristics comply with the relevant requirements of MIL-STD-810G.

Power Supply

2. 

+28V

3. 

+28V

4. 

+28V_GND

5. 

+28V_GND

6. 

+28V_GND

7. 

Power-On Control (+)

Input/Output

Refer to the requirements specified in the Power-On Control section.

I/O Control

8. 

Power-On Control (-)

9. 

RS422_RX+

Input/Output

The logic level and drive capability comply with the RS-422 interface standard.
Characteristic impedance: 120 Ω.

The transmit/receive pin definitions correspond to the laser rangefinder itself.

10. 

RS422_RX-

11. 

RS422_TX+

12. 

RS422_TX-

13. 

RS422_GND

14. 

External Synchronization Control Signal

Input

The logic level and drive capability comply with the RS-422 interface standard.

External synchronization signal used to control laser coding.

15. 

External Synchronization Control Signal (–)

Product Description

LDR60K1 60 mJ 1064 nm Laser Rangefinder & Target Designator

The LDR60K1 1064nm laser rangefinder designator is a compact 60 mJ module that combines long-range distance measurement and coded laser illumination in one unit. Designed mainly for airborne platforms and stabilized EO/IR gimbals, it measures target distance while providing coded laser energy for laser-guided munitions, offering a good balance of size, weight and long-range performance for modern fire-control systems.

Under standard operating conditions (2.3 m × 2.3 m diffuse target, reflectivity ≥ 0.2, visibility ≥ 20 km), the LDR60K1 offers a measuring range from ≤ 300 m out to ≥ 10 km with ±2 m accuracy and a valid detection probability of at least 98%. It supports single-shot ranging as well as 1 Hz and 5 Hz continuous modes: at 1 Hz it can operate for at least 10 minutes before a 1-minute rest; at 5 Hz it can run for at least 5 minutes followed by a 1-minute rest. Each laser pulse returns both distance and status information so the host can monitor measurement quality in real time.

The laser operates at 1064 nm ± 3 nm with average pulse energy ≥ 60 mJ, pulse width 15 ns ± 5 ns and beam divergence ≤ 0.3 mrad. Within a single illumination cycle, pulse-to-pulse energy variation does not exceed ±10% of the mean once emission has stabilized, and beam pointing instability is ≤ 0.05 mrad. The mounting datum and emission axis non-parallelism is kept within 0.3 mrad, making optical alignment with cameras or sights straightforward and ensuring a tight, stable spot on target even at long ranges.

For laser designation, the LDR60K1 uses precise frequency coding with a fundamental frequency of 20 Hz and coding accuracy of 2.5 μs. It supports eight fixed frequency-code patterns and allows the user to define precise frequencies through software. Short-cycle illumination provides 17 s of laser-on time with 10 s intervals and up to six consecutive cycles, while long-cycle illumination offers 47 s of laser-on time with 30 s intervals and up to two cycles. After completing one short-cycle or one long-cycle sequence, the next illumination session must start at least 30 minutes later, protecting the laser head and extending service life beyond 1,000,000 pulses.

Electrically, the module operates from a DC 18–32 V supply, with standby power consumption ≤ 5 W and peak power ≤ 120 W. Power and control are routed through a J30J-15ZKP connector: multiple +28 V and ground pins, differential power-on control lines and RS-422 TX/RX pairs, plus an RS-422 external synchronization input used to control coded emission. PCBs are coated with a conformal “three-proof” treatment (moisture, dust, corrosion) to improve long-term reliability in demanding environments.

Communication with the host computer uses a full-duplex RS-422 serial link at 115200 bps, with 8 data bits, 1 start bit, 1 stop bit and no parity. Messages use a fixed header, subsystem ID and checksum, and the protocol supports self-test, single and continuous ranging (1 Hz and 5 Hz), short and long illumination, one-cycle illumination, range-gate setting, first/last-target selection, laser-pulse count query and code read/write. The device performs power-on self-test automatically and can also run periodic or manual self-tests; results and any fault flags are reported in status words together with current temperature and operating mode.

The mechanical envelope of the LDR60K1 is ≤ 116 mm × 52 mm × 96 mm, with a mass ≤ 680 g, making it easy to mount in small gimbals, pods or compact turrets. The unit is qualified for an operating temperature range from −40 °C to +55 °C and storage from −45 °C to +65 °C. It withstands swept-sine vibration (15–33 Hz at 0.91 mm displacement, 33–700 Hz at 2 g) for 1 hour on each of three orthogonal axes, as well as 10 g shocks along vertical, lateral and longitudinal axes with 11 ms post-peak sawtooth pulses, while powered on and required to function normally afterwards. These characteristics make the LDR60K1 well suited for aircraft takeoff/landing environments, vehicle transport and other harsh field conditions.

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