10G SFP+ AOC

10G SFP+ TO 10G SFP+ AOC

Rate10GCommon selectable lengths1m / 1.5m / 2m / 3m / 5m / 7m / 10m / 15m / 20m / 30m / 50m / 70m / 100mWavelength850NMInterface-
Fiberland part number
FLD-SFP+AOC-X
Unit priceAsk Our Manager

Key Specifications

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Form TypeSFP+

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Technical Specifications

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14 specifications shown
Fiberland Part NumberFLD-SFP+AOC-XVendor NameFIBERLAND
Data Rate10GWavelength850NM
Common selectable lengths1m / 1.5m / 2m / 3m / 5m / 7m / 10m / 15m / 20m / 30m / 50m / 70m / 100mForm TypeSFP+
Optical Interface-DDM SupportYES
Commercial Temp.0~70℃Industrial Temp.-
Compatible BrandsCisco,Huawei,Nvidia...200+ brandsComplianceCE,FCC,ROHS,REACH
Warranty3 YearsModeMM

Product Compatibility Mapping

Cross-reference the original manufacturer part number with the corresponding Fiberland part number before confirming the target device and firmware.

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Verified cross-references14 manufacturer part numbersAcross 2 brands
Showing 8 of 14 verified matches

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Original part numberBrandFiberland part numberProduct description
AOC-S-S-10G-3MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 3 m.
AOC-S-S-10G-5MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 5 m.
AOC-S-S-10G-7MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 7 m.
AOC-S-S-10G-10MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 10 m.
AOC-S-S-10G-15MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 15 m.
AOC-S-S-10G-20MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 20 m.
AOC-S-S-10G-25MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 25 m.
AOC-S-S-10G-30MARISTAFLD-SFP+AOC-X10G SFP+ to SFP+ active optical cable, 30 m.

A part-number cross-reference is a model-selection starting point, not a blanket device guarantee. Final fit depends on the exact device, firmware or OS, target port and requested coding profile.

See Where This Product Fits in the Network

Review common data-center, DCI, campus, server and metro-network connections before confirming speed, reach, fiber type and connector.

Application planning

Optical Transceiver Application and Link Map

Compare representative network topologies and link paths to identify the appropriate product family for the intended deployment.

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Optical transceiver application diagram covering data center, DCI, campus, server and metro networks

Review the Quality-Control and Test Flow

Follow the checkpoints used to verify materials, firmware, optical performance, temperature stability, compatibility and final inspection.

Testing and quality

Quality Control and Test Flow

Review the sequence from material verification and firmware programming through optical, temperature, compatibility and final QA inspection.

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Quality control flow covering material, firmware, optical, temperature, compatibility and final QA checks

Frequently Asked Questions

Answers to common compatibility, installation and troubleshooting questions.

How can I tell whether the problem is compatibility-related or an optical-link problem?

Check whether the host correctly identifies the transceiver first. If the module is rejected, incorrectly identified, or generates vendor-related warnings, investigate compatibility. If it is correctly recognized but the link remains down, investigate fiber, optical power, wavelength, FEC, polarity, and the remote endpoint.

Are compatible transceivers suitable for data centers?

Yes. Compatible optical modules are widely used for server, switch, storage, and data-center interconnect applications when the correct interface and compatibility requirements are met.

Why does replacing an OEM transceiver with a compatible transceiver result in no link?

First verify that the compatible replacement matches the OEM module's form factor, data rate, wavelength, reach, fiber type, connector, and interface standard. Then confirm that it has the correct compatibility coding for the host platform.

Can third-party transceivers damage a switch?

A properly designed transceiver that meets the required electrical, mechanical, thermal, and interface specifications should operate within the host platform's intended transceiver interface requirements.

Why are the DDM/DOM readings incorrect or abnormal?

Abnormal temperature, voltage, TX power, RX power, or bias-current readings may indicate an optical or hardware issue, but they can also result from incorrect calibration or communication between the compatible module and host device.

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Engineering resources

Technical proof for faster project review

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