View All

Please refer to the English Version as our Official Version.Return

Europe
France(Français) Germany(Deutsch) Italy(Italia) Russian(русский) Poland(polski) Czech(Čeština) Luxembourg(Lëtzebuergesch) Netherlands(Nederland) Iceland(íslenska) Hungarian(Magyarország) Spain(español) Portugal(Português) Turkey(Türk dili) Bulgaria(Български език) Ukraine(Україна) Greece(Ελλάδα) Israel(עִבְרִית) Sweden(Svenska) Finland(Svenska) Finland(Suomi) Romania(românesc) Moldova(românesc) Slovakia(Slovenská) Denmark(Dansk) Slovenia(Slovenija) Slovenia(Hrvatska) Croatia(Hrvatska) Serbia(Hrvatska) Montenegro(Hrvatska) Bosnia and Herzegovina(Hrvatska) Lithuania(lietuvių) Spain(Português) Switzerland(Deutsch) United Kingdom(English)
Asia/Pacific
Japan(日本語) Korea(한국의) Thailand(ภาษาไทย) Malaysia(Melayu) Singapore(Melayu) Vietnam(Tiếng Việt) Philippines(Pilipino)
Africa, India and Middle East
United Arab Emirates(العربية) Iran(فارسی) Tajikistan(فارسی) India(हिंदी) Madagascar(malaɡasʲ)
South America / Oceania
New Zealand(Maori) Brazil(Português) Angola(Português) Mozambique(Português)
North America
United States(English) Canada(English) Haiti(Ayiti) Mexico(español)
HomeProductsCrystals, Oscillators, ResonatorsOscillatorsASD1-10.000MHZ-LR-T
ASD1-10.000MHZ-LR-T Image
Image may be representation.
See specifications for product details.
EXPRESS OPTION
Payment method

ASD1-10.000MHZ-LR-T - Abracon LLC

Manufacturer Part Number
ASD1-10.000MHZ-LR-T
Manufacturer
Abracon
Allelco Part Number
98D-ASD1-10.000MHZ-LR-T
Warranty
1 Year Allelco Warranty - Find out more
Stock Status:
804,803 pcs available, New & Original
Parts Description
XTAL OSC XO 10.0000MHZ HCMOS SMD
Package
4-SMD, No Lead
Data sheet
ASD1-10.000MHZ-.pdf

3D Drawings

ASD.pdf.pdf

Environmental Information

Cylindrical Battery Holders.pdf
RoHs Status
ROHS3 Compliant
Our certification
In stock: 804803

Required fields are indicated by an asterisk (*)
Please send RFQ, we will respond immediately.

Quantity

Specifications

ASD1-10.000MHZ-LR-T Tech Specifications
Abracon LLC - ASD1-10.000MHZ-LR-T technical specifications, attributes, parameters and parts with similar specifications to Abracon LLC - ASD1-10.000MHZ-LR-T

Product Attribute Attribute Value
Manufacturer Abracon
Voltage - Supply 3V
Type XO (Standard)
Size / Dimension 0.098' L x 0.079' W (2.50mm x 2.00mm)
Series ASD
Ratings -
Package / Case 4-SMD, No Lead
Package Tape & Reel (TR)
Output HCMOS
Operating Temperature -40°C ~ 85°C
Product Attribute Attribute Value
Mounting Type Surface Mount
Height - Seated (Max) 0.039' (1.00mm)
Function Enable/Disable
Frequency Stability ±25ppm
Frequency 10 MHz
Current - Supply (Max) 4mA
Current - Supply (Disable) (Max) 20µA
Base Resonator Crystal
Absolute Pull Range (APR) -

Environmental & Export Classifications

ATTRIBUTE DESCRIPTION
RoHs Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) Not Applicable
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8542.39.0001

Frequently Asked Questions(FAQ)

What are the key electrical and performance parameters to consider when selecting the ASD1-10.000MHZ-LR-T oscillator for a high-stability embedded system operating in industrial temperature ranges?
The ASD1-10.000MHZ-LR-T is a 10 MHz HCMOS XO oscillator with a frequency stability of ±25ppm across the -40°C to 85°C operating range, making it suitable for industrial-grade timing applications where clock accuracy must be maintained under thermal stress. It operates at 3V supply voltage with a maximum supply current draw of 4mA during active operation and reduces to just 20µA when disabled, enabling power-conscious designs. The device features an enable/disable function that allows software-controlled shutdown to minimize standby power consumption. With a compact 2.50mm x 2.00mm footprint in a surface-mount package without leads, it integrates well into space-constrained PCB layouts while maintaining reliable crystal-based oscillation through the entire specified temperature span.
How does the ASD1-10.000MHZ-LR-T compare to alternative 10 MHz oscillators in terms of power efficiency and enable functionality, particularly when used in battery-powered or low-power IoT devices?
Compared to typical 10 MHz crystal oscillators without enable pins, the ASD1-10.000MHZ-LR-T offers significant advantages in power-sensitive applications due to its explicit disable capability, which reduces supply current from 4mA to just 20µA—effectively cutting active power by over 99%. While many standard XOs lack this feature, some competing models may offer similar disable functionality but often at the cost of higher base current or inferior frequency stability. The combination of ±25ppm stability, 3V operation, and precise disable state makes the ASD1-10.000MHZ-LR-T particularly effective in extending battery life in intermittent-operation scenarios such as sensor polling or wireless transmission bursts in IoT endpoints.
In what design scenarios would the ASD1-10.000MHZ-LR-T be preferable versus using a standalone crystal with an external CMOS inverter, and what trade-offs should engineers evaluate?
The ASD1-10.000MHZ-LR-T is advantageous over discrete crystal-resonator solutions when board space, component count, or time-to-market are critical, as it integrates load capacitance matching, startup assurance, and output buffering in a single package. Unlike bare crystals requiring careful layout of feedback resistors and capacitors, this oscillator simplifies PCB routing and improves reliability. However, using a discrete approach may yield better frequency control at lower costs for high-volume production, or allow tuning of drive levels for specific crystal characteristics not matched by the internal design. The ASD1-10.000MHZ-LR-T’s ±25ppm stability is sufficient for most microcontroller and communication interface clocks, but applications demanding tighter tolerance (e.g., <±10ppm) might still require TCXOs or OCXOs despite the added complexity and cost.
Can the ASD1-10.000MHZ-LR-T be used in automotive-grade systems, and what environmental or qualification criteria must be verified before deployment in harsh environments?
The ASD1-10.000MHZ-LR-T is rated for -40°C to +85°C operation, which aligns with commercial and industrial standards but falls short of the AEC-Q200 qualification required for automotive applications. Therefore, it is not directly suitable for automotive-grade deployments unless additional system-level validation confirms robust performance under vibration, humidity cycling, and long-term reliability testing. Engineers considering use in vehicles should verify that the oscillator meets relevant OEM specifications beyond temperature range alone, including shock resistance, solder joint integrity after thermal cycling, and immunity to electromagnetic interference. For true automotive compliance, components must carry AEC-Q200 certification, which this model does not currently possess.
What impact does enabling or disabling the ASD1-10.000MHZ-LR-T have on system-level power budgeting and wake-up latency in microcontroller-based designs?
Disabling the ASD1-10.000MHZ-LR-T reduces its supply current from 4mA to 20µA, resulting in a power reduction factor of approximately 200x. This enables significant energy savings during sleep modes in microcontrollers like those found in wireless sensor nodes. However, re-enabling the oscillator introduces startup delay—typically tens of microseconds depending on internal circuitry—which affects wake-up time. Designers must balance power savings against responsiveness requirements; for example, in real-time control loops, frequent disable/enable cycles may negate benefits due to cumulative latency. Proper evaluation includes modeling total energy per cycle: E = P_active × t_active + P_standby × t_sleep, ensuring net improvement over continuous operation.
How does the frequency stability specification of ±25ppm for the ASD1-10.000MHZ-LR-T translate into actual timing error over time, and what implications does this have for synchronization protocols like SPI or UART communication?
At 10 MHz, ±25ppm equates to a maximum frequency deviation of ±250 Hz. Over one second, this results in a timing error of ±25 parts per million of one million cycles, or ±25 µs. For UART communication at common baud rates such as 115.2 kbps, each bit lasts about 8.68 µs; thus, accumulated drift could affect symbol timing over extended periods. In systems relying on precise inter-frame spacing or multi-drop configurations, this drift may necessitate periodic resynchronization or use of more stable references. Conversely, for short-duration transactions or buffered communications, the error remains manageable. Engineers should assess whether application-specific timing windows accommodate this level of jitter without impacting data integrity.
What are the recommended land pattern dimensions and PCB layout considerations when mounting the ASD1-10.000MHZ-LR-T to ensure optimal performance and manufacturability?
The ASD1-10.000MHZ-LR-T uses a 4-SMD, no-lead package measuring 2.50mm x 2.00mm with a height of up to 1.00mm. Optimal pad design should follow IPC-7351 guidelines, providing adequate copper area for soldering while minimizing parasitic inductance. Critical layout practices include placing decoupling capacitors within 1–2 mm of the VDD pin, using short, wide traces for power and ground returns, and avoiding routing sensitive signals beneath the oscillator to reduce EMI coupling. Ground plane stitching around the component enhances stability, and symmetric placement relative to crystal traces minimizes phase noise. Thermal relief pads improve reflow soldering reliability during assembly, especially in automated SMT lines.
Are there any known compatibility issues between the ASD1-10.000MHZ-LR-T and certain microcontroller families, particularly regarding logic threshold voltages or drive strength mismatches?
The ASD1-10.000MHZ-LR-T outputs standard HCMOS levels compatible with most 3V3 microcontrollers, including popular ARM Cortex-M series and PIC devices. However, interfacing with legacy 5V-tolerant MCUs requires careful attention to input thresholds; some older 5V systems may interpret low-level signals below 0.7×VDD as invalid if driven by a 3V source. Although the oscillator’s output swing is designed to meet TTL-compatible logic highs and lows at 3V, direct connection without level shifting could result in undefined states. Additionally, capacitive loading on the output line should remain below the datasheet-recommended limit to prevent signal degradation. Always consult the target MCU’s absolute maximum ratings and setup/hold times when integrating the ASD1-10.000MHZ-LR-T into synchronous designs.
How does moisture sensitivity or packaging affect storage and handling of bulk quantities of the ASD1-10.000MHZ-LR-T, and what precautions apply during DIP or wave soldering processes?
The ASD1-10.000MHZ-LR-T has an MSL rating listed as "Not Applicable," indicating it is either inherently moisture-resistant or packaged in a way that eliminates delamination risk during normal conditions. Nevertheless, standard ESD precautions apply during manual handling, and bulk materials should be stored in dry environments with relative humidity kept below 60% to avoid condensation-induced failures post-reflow. Since it is intended for surface mount only, it is incompatible with wave soldering unless specifically designed for that process—this model lacks conformal coating or special protection, so contact with molten solder should be avoided. DIP insertion is not supported given its SMD form factor, reinforcing the necessity of proper pick-and-place equipment during manufacturing.
What role does the enable/disable pin play in system diagnostics and fault recovery mechanisms, and how can it be leveraged for testability during development?
The enable/disable pin allows software-driven control over oscillator activity, enabling integration into built-in self-test routines where clock verification is required. During development, toggling the enable line permits observation of startup waveforms with oscilloscopes or logic analyzers without physical probing risks. In production, disabling the oscillator can help isolate faults in downstream circuits by eliminating clock-related noise sources. Furthermore, monitoring enable transitions aids in diagnosing stuck clocks or software hangs—if the oscillator fails to re-enable after reset, it may indicate a hardware defect rather than firmware issue. This diagnostic capability enhances debug efficiency and supports compliance with safety-critical testing standards where clock health monitoring is mandated.
Given the absence of Absolute Pull Range (APR) data in the ASD1-10.000MHZ-LR-T specification, what assumptions can be made about its load capacitance matching and suitability for custom resonator designs?
The omission of APR (Absolute Pull Range) suggests that the ASD1-10.000MHZ-LR-T is optimized for fixed-load conditions, likely matching a standard 12pF or 18pF load as inferred from typical HCMOS oscillator designs. Unlike programmable oscillators, it is not intended for fine-tuning via external capacitors, meaning designers must ensure their printed circuit board traces and package parasitics align with the intended load. Attempting to adjust frequency by adding discrete capacitors risks instability or excessive drive levels. For applications requiring adjustable frequency trimming, alternative components with explicit pull range specifications would be more appropriate. Thus, the ASD1-10.000MHZ-LR-T assumes a well-characterized environment where load capacitance is predictable and consistent across production units.
What are the regulatory and export classification details for the ASD1-10.000MHZ-LR-T, and how do these affect global sourcing or compliance documentation?
The ASD1-10.000MHZ-LR-T carries RoHS3 compliance, indicating adherence to EU Directive 2011/65/EU as amended, with exemption tracking for restricted substances. It is classified under ECCN EAR99, meaning it is subject to U.S. Export Administration Regulations but generally unrestricted for international shipment without special licenses. HTSUS code 8542.39.0001 applies for customs purposes in the United States, denoting integrated circuit oscillators. REACH status is listed as unaffected, implying no SVHCs (Substances of Very High Concern) above threshold concentrations. These classifications simplify procurement across regions but require suppliers to maintain accurate SDS and compliance certificates. End customers in regulated industries should request full documentation bundles to support audits or certifications like ISO 27001 or IATF 16949.
How does the ASD1-10.000MHZ-LR-T perform in terms of electromagnetic emissions and susceptibility, and what shielding strategies are recommended for noise-sensitive RF coexistence scenarios?
As a digital oscillator, the ASD1-10.000MHZ-LR-T generates conducted and radiated emissions primarily at its fundamental frequency (10 MHz) and harmonics. Without specific FCC or CE test data provided, general mitigation involves minimizing loop areas in power traces, using ferrite beads near the VDD pin, and enclosing the oscillator in a grounded metal shield if sharing a board with radios operating near 100 MHz bands. Keep-out zones around the component should prohibit high-speed digital lines or analog inputs sensitive to conducted noise. Layout symmetry and controlled impedance routing further reduce differential-mode radiation. If coexistence with BLE, Wi-Fi, or cellular modules is required, consider adding RC filters at the output or selecting a spread-spectrum variant if available, though the ASD1-10.000MHZ-LR-T lacks such features.
What is the expected lifetime and failure rate characteristics of the ASD1-10.000MHZ-LR-T under continuous operation, and how do these inform reliability planning in long-life deployments?
While explicit lifetime data isn’t published, crystal oscillators like the ASD1-10.000MHZ-LR-T typically exhibit >10-year operational life under rated conditions, assuming stable temperature, voltage, and mechanical stress. Failure modes usually stem from crystal fatigue, solder joint cracking, or contamination rather than electronic degradation. Accelerated aging tests suggest frequency drift may occur gradually over decades, but ±25ppm stability implies sufficient margin for most applications. For mission-critical systems, derating supply voltage slightly below 3V or operating below 85°C improves longevity. Reliability blocks should include redundant clocks or watchdog timers capable of detecting clock failure via enable-pin monitoring, ensuring graceful degradation in field-deployed assets like metering or telemetry nodes.
Can the ASD1-10.000MHZ-LR-T be used in parallel with another oscillator on the same bus, and what precautions are necessary to prevent contention or signal degradation?
No, the ASD1-10.000MHZ-LR-T is not designed for parallel operation with other oscillators. Connecting multiple clock sources directly to a shared microcontroller input creates race conditions, bus contention, and potential damage due to conflicting drive levels. Even with tristate capability, simultaneous assertion risks shoot-through currents and distorted waveforms. Instead, multiplexers or clock-switching ICs should be used when redundancy is required. If primary/backup clocking is needed, select components with automatic failover circuitry or design firmware that disables the inactive oscillator completely before switching. Direct paralleling violates best practices for synchronous digital systems and compromises both signal integrity and device reliability.
How does the package size and height profile of the ASD1-10.000MHZ-LR-T influence selection for portable or wearable electronics compared to larger alternatives?
At 2.50mm x 2.00mm footprint and 1.00mm max height, the ASD1-10.000MHZ-LR-T occupies minimal board area, making it ideal for compact form factors like fitness trackers, hearing aids, or medical patches where thickness and weight are constrained. Its surface-mount, leadless design avoids protruding elements that interfere with flexible substrates or tight enclosures. Larger packages may offer marginally better thermal performance or easier inspection but consume valuable PCB real estate in densely populated boards. The trade-off favors miniaturization here, provided layout discipline maintains signal integrity. Engineers should confirm that automated assembly lines can handle such small components reliably, as hand-soldering becomes impractical below certain size thresholds.
What steps should be taken to validate the ASD1-10.000MHZ-LR-T in a prototype environment before committing to production, especially regarding startup behavior and long-term drift?
Initial validation should include measuring startup time (<1 ms typical) using a logic analyzer or oscilloscope to confirm rapid stabilization after enable assertion. Monitor frequency accuracy over the full temperature range using calibrated counters or spectrum analyzers. Perform accelerated life testing under elevated temperatures (e.g., 85°C+) to observe early drift trends. Verify disable functionality by measuring current draw in off-state and confirming absence of residual oscillations. Additionally, conduct vibration and shock tests if mechanical robustness is a concern. Only after these checks pass should design freeze occur. Production samples must be cross-referenced with exact part number ASD1-10.000MHZ-LR-T to avoid counterfeit or substituted variants that might differ in performance or packaging.
Are there alternative Abracon oscillators that closely match the ASD1-10.000MHZ-LR-T in function but offer enhanced features such as lower jitter or wider temperature range, and how should substitution decisions be approached?
Abracon offers several members of the ASD series with similar footprints and frequencies, some featuring improved stability (±10ppm), extended temperature ranges (-40°C to +125°C), or reduced phase noise. For instance, models like ASD1-10.000MHZ-LC-T may provide better frequency control, while others include spread spectrum or LVCMOS outputs. Substitution requires verifying compatibility of supply voltage, output type, package dimensions, and enable logic polarity. Cross-reference tables and application notes from Abracon should be consulted to map equivalent functions. Blind replacement without validation risks timing violations, especially in precision ADCs or high-speed interfaces where jitter tolerance is narrow. Always perform side-by-side testing with the target platform before committing to change orders.

Parts with Similar Specifications

The three parts on the right have similar specifications to Abracon LLC ASD1-10.000MHZ-LR-T

Product Attribute ASD1-12.000MHZ-LR-T ASD1-10.000MHZ-EC-T ASD1-10.000MHZ-EC-T3 ASD1-12.000MHZ-EC-T
Part Number ASD1-12.000MHZ-LR-T ASD1-10.000MHZ-EC-T ASD1-10.000MHZ-EC-T3 ASD1-12.000MHZ-EC-T
Manufacturer Abracon LLC Abracon LLC Abracon LLC Abracon LLC
Frequency - - - -
Series - - - -
Height - Seated (Max) - - - -
Function - - - -
Package / Case - 196-LFBGA 16-DIP (0.300', 7.62mm) 64-VFQFN Exposed Pad
Current - Supply (Disable) (Max) - - - -
Voltage - Supply - - - -
Type - - - -
Mounting Type - Surface Mount Through Hole Surface Mount
Output - - - -
Size / Dimension - - - -
Operating Temperature - -40°C ~ 85°C 0°C ~ 70°C -40°C ~ 85°C
Package - Tape & Reel (TR) Tube Tape & Reel (TR)
Ratings - - - -
Current - Supply (Max) - - - -
Frequency Stability - - - -
Absolute Pull Range (APR) - - - -
Base Resonator - - - -

ASD1-10.000MHZ-LR-T Datasheet PDF

Download ASD1-10.000MHZ-LR-T pdf datasheets and Abracon LLC documentation for ASD1-10.000MHZ-LR-T - Abracon LLC.

Datasheets
Cylindrical Battery Holders.pdf
3D Drawings
ASD.pdf.pdf
Environmental Information
Cylindrical Battery Holders.pdf

Customer Reviews

Evaluation: 10 Articles

  • Circ***FixerTom
    Sep 2, 2026

    Used this rectifier in a high-current power supply repair. Forward behavior looked normal on the bench and the supply has been running under load without trouble.

  • Retr***UWorks
    Aug 31, 2026

    Needed the exact ST10F269Z2Q6 for servicing an older control unit. The chip programmed successfully and the board passed our functional test afterward. Much easier than redesigning around a newer MCU.

  • Andr***PCBLab
    Aug 28, 2026

    I needed this ADC for an older data acquisition board. Readings have been repeatable and the noise level is comparable to the original circuit. Happy with the purchase.

  • Leat***O'Keefe
    Aug 20, 2026

    one of my hobbies is skydiving. and when i'm skydiving this works great.

  • Ilen***
    Aug 20, 2026

    This product works considerably well. It secretly improves my basketball by a lot.

  • Indu***ialPower
    Aug 17, 2026

    Installed this IGBT module in a power conversion cabinet. Switching characteristics remained stable even under continuous heavy operation.

  • Nikh***ech
    Aug 13, 2026

    Great low-power MCU for portable equipment. Flash programming was simple and current consumption matched the datasheet.

  • Embe***dMotion
    Aug 5, 2026

    Purchased this DSP controller for a motor control application. Stable processing performance and very good response under varying loads.

  • FPGA***dio
    Jul 30, 2026

    This FPGA handled our logic design without any surprises. Configuration completed quickly and timing met the project requirements.

  • Nord***mbedded
    Jul 20, 2026

    Reliable FPGA with predictable behavior. Configuration and testing went smoothly, making development faster than expected.

Write a Review

Your Email address will not be published.

Shipment

Delivery Time

In-stock items can be shipped within 24 hours. Some parts will be arranged for delivery within 1-2 days from the date all items arrive at our warehouse. And Allelco ships order once a day at about 17:00, except Sunday. Once the goods are shipped, the estimated delivery time depends on the shipping methods and Delivery destination. The table below shows are the logistic time for some common countries.

Delivery Cost

  1. Use your express account for shipment if you have one.
  2. Use our account for the shipment. Refer to the table below for the approximate charges.
(Different time frame / countries / package size has different price.)

Delivery Method

  1. Global Common Shipment by DHL / UPS / FedEx / TNT / EMS / SF we support.
  2. Others more shipping ways, please get in touch with your customer manager.

Common Countries Logistic Time Reference
Region Country Logistic Time(Day)
America United States 5
Brazil 7
Europe Germany 5
United Kingdom 4
Italy 5
Oceania Australia 6
New Zealand 5
Asia India 4
Japan 4
Middle East Israel 6
DHL & FedEx Shipment Charges Reference
Shipment charges(KG) Reference DHL(USD$)
0.00kg-1.00kg USD$30.00 - USD$60.00
1.00kg-2.00kg USD$40.00 - USD$80.00
2.00kg-3.00kg USD$50.00 - USD$100.00
Note:
The above table is for reference only. There may have some data bias for the uncontrollable factors.
Contact us if you have any questions.
  • QC (Quality Warranty)
  • Payment Support
  • Packaging
  • Certifications & Memberships

QC (Quality Warranty)

Allelco is committed to exceeding customer expectations through customer service excellence, order accuracy, and on-time delivery.
This is achieved through our commitment to the continual improvement of our processes, services, and products.


Strict quality inspection builds a solid foundation for electronic component quality.
  1. Visual inspection
  2. Performance testing and reliability verification
  3. Standardized full-process testing
  4. Precise control of every parameter
We eliminate defective components and ensure the stable operation of electronic devices through professional quality standards.

Payment Support

The payment method can be chosen from the methods shown below: Wire Transfer (T/T, Bank Transfer), Western Union, Credit card, PayPal.
  • HKBea
  • Paypal
  • MasterCard
  • Western-Union
  • VISA
Stable Delivery, Sincere Partnership — Your Faithful Supply Chain Partner
  • Efficient Supply Management
  • Cost-Saving Procurement
  • Fast Sourcing & Delivery
Contact us if you have any questions.

Packaging

Electrostatic Discharge Protection and Handling

All electrostatic-sensitive components are handled in accordance with electrostatic discharge control procedures. The products are hermetically sealed in anti-static safe packaging to prevent electrostatic damage. Appropriate labeling is also applied for identification and traceability. This ensures product integrity during storage, handling and transportation.


ESD

Certifications & Memberships

Third-party certified, strict quality control. Our certification
  • ISO 9001: 2015
  • ISO 13485: 2016
  • ISO 14001: 2015
  • ISO 28000: 2007
  • ISO 45001: 2018
  • GB/T 27922-2011
  • SMTA
  • IPC
  • ESD
  • PSMA
ASD1-10.000MHZ-LR-T Image

ASD1-10.000MHZ-LR-T

Abracon LLC
98D-ASD1-10.000MHZ-LR-T

Want a better price? Add to Cart and Submit RFQ now, we'll contact you immediately.

0 RFQ
Shopping cart (0 Items)
It is empty.
Compare List (0 Items)
It is empty.
Feedback

Your feedback matters! At Allelco, we value the user experience and strive to improve it constantly.
Please share your comments with us via our feedback form, and we'll respond promptly.
Thank you for choosing Allelco.

Subject
E-mail
Comments
Captcha
Drag or click to upload file
Upload File
types: .xls, .xlsx, .doc, .docx, .jpg, .png and .pdf.
Max file size: 10MB