AIR-AP1852E-F-K9C is a 1852e indoor access point for separately purchased external antennas in the Cisco Aironet 1850 Series. This exact SKU combines regulatory-domain token F with a single-unit configurable K9C order. The platform is a dual-band 802.11ac Wave 2 access point with four 5 GHz spatial streams in single-user operation and three in multiuser operation.
Cisco states that external antennas are sold separately and certifies the platform for antenna gains up to 6 dBi at both 2.4 and 5 GHz. Record the approved Cisco antenna part numbers, four radio paths, gain, pattern, cable loss, connectors and mounting orientation. A compatible connector alone is not regulatory or RF-design evidence.
Cisco lists K9C as a configurable controller-based order, and its lifecycle table describes affected K9C lines as Mobility Express products. Retain the final domain and software role on the quotation and received unit. Prove the intended controller or Mobility Express state instead of inferring it from the suffix alone.
Cisco lists this profile as 2.4 GHz channels 1-13; 5 GHz blocks at 5.250-5.350 and 5.725-5.825 GHz. The F profile is split between a compact mid-lower block and a high block. It does not match the common 5.180 GHz starting point, so imported controller templates require deliberate review. Validate both separated channel groups on the target controller and confirm that the RF survey used the same boundaries. Record any disabled channel and its local regulatory reason.
Procurement inference: the two separated 5 GHz ranges call for a survey that distinguishes the mid-lower group from the high group. Confirm that expected clients, neighboring radios and controller policy can use the approved choices at the destination. When replacing a unit from a different domain, do not preserve old channel assignments blindly; generate a new assignment and compare measured interference in both F-profile groups.
The 1852 provides a PoE Gigabit uplink and a Gigabit AUX port for link aggregation. Cisco states that 802.3af disables AUX and USB on both antenna forms and reduces the 1852e 2.4 GHz radio from 3x4 to 2x3. Record negotiated power before promising the complete interface and radio state.
Compare antenna form, regulatory token, configuration suffix, pack quantity and complete Cisco part number on the authorized quotation. Treat any changed token as a substitution that requires a new technical and regulatory review. Procurement should not accept a nearby Aironet 2802 line merely because the family name matches. Preserve the approved line, received label and exception decision so the final asset can be traced to the exact order reviewed here. A K9, K9C, K910, K910C, antenna-form or regulatory-token change is a different 1852 procurement line and must not be accepted as a cosmetic substitution.
If purchased as a spare, name the protected site population, compatible controller image, storage location, storage conditions and periodic power-on test. Confirm that regulatory token, antenna architecture and mounting parts match the population it protects. Set a final-use review date. A stored unit can become unsuitable while untouched because controller software, country approval, certificates or network architecture may change. A spare 1852 must be checked against the protected controller release, certificate behavior, regulatory domain, antenna form and 2027 support cutoff before assignment.
Define the neighboring access points and client types used for roaming validation. Record handoff behavior, interruption observed, authentication result and controller events along the intended movement path. Compare the outcome with the site's design target rather than declaring success from static association. Where this unit replaces an older AP, test both entry and exit from its cell so a local improvement does not hide a boundary problem. When replacing a neighboring legacy AP, preserve roaming evidence in both directions and compare it with the 1852's installed radio and channel state.
Define the expected concurrent clients, application mix, airtime utilization and channel-width assumptions for this location. After commissioning, capture radio utilization, retry behavior and representative throughput during a meaningful load period. Compare the observation with the survey design and state any shortfall. A peak link rate from a data sheet is not a site capacity result and should not replace measured operating evidence. Capacity acceptance should show actual client mix, airtime and retries under the available regulatory-domain channels, not only a maximum PHY figure.
Preserve the pre-install and post-install noise, neighboring-radio and channel-occupancy observations for the selected location. Record any controller-driven channel change during acceptance. If the regulatory profile limits the channel choices, state how that constraint affected reuse and mitigation. This baseline gives future troubleshooting a reference point and prevents an unrelated interference change from being attributed to the hardware order. The 1852 domain table varies materially by token, so preserve interference observations against the exact enabled-channel list rather than a generic country template.
Map this unit to controller, licenses, authentication services, switch power, cable, bracket, antenna design and monitoring objects. For an end-of-sale platform, state which dependencies can be reused by the planned Catalyst migration and which require change. A nominal access-point replacement can fail when the surrounding platform was never inventoried. Keep the map with the asset rather than only in a one-time project file. Cisco names the Catalyst 9115AX family as the migration option in the lifecycle bulletin; map controller, power, cabling, mount and antenna changes before replacement.
Build the acceptance record so power, wired link, controller join, radio state, authentication and application reachability can be reviewed independently. Preserve timestamps and device identifiers across switch and controller logs. When a test fails, identify the failing boundary before replacing hardware. This avoids classifying a cable, policy or controller problem as an access-point defect and creates evidence that can be reused during support escalation. Use controller, switch and client timestamps to separate a PoE/AUX limitation, CAPWAP issue, RF condition and authentication failure before declaring a hardware defect.
Store the initial controller events, switch-port state, radio assignment, channel list and client test results with a consistent asset identifier. Define how long commissioning evidence is retained and who can retrieve it. A later firmware, controller or RF change should add a new dated observation rather than overwrite the original. The resulting history supports lifecycle decisions and distinguishes a new regression from the accepted baseline. Preserve the original 1852 controller join, power mode, AUX state, channel list and client tests so later changes can be compared with an accepted baseline.
Cisco ended sale of the Aironet 1850 Series on 1 May 2022, ended software maintenance on 1 May 2023 and lists 30 April 2027 as the last support date. Cisco identifies Catalyst 9115AX as the migration family. Available inventory does not extend those milestones.
Official evidence: Cisco Aironet 1850 Series data sheet; Cisco Aironet 1850 hardware guide; Cisco Aironet 1850 lifecycle bulletin; and Cisco wireless compliance tool.
| Exact model / SKU | AIR-AP1852E-F-K9C |
| Exact Cisco PID | AIR-AP1852E-F-K9C |
| Product family | Cisco Aironet 1850 Series |
| Wireless design | 802.11ac Wave 2; 4x4:4 single-user and 4x4:3 multiuser at 5 GHz |
| Antenna form | External antennas, sold separately |
| Published antenna limit | Certified for antenna gains up to 6 dBi at 2.4 and 5 GHz |
| Order form | single-unit configurable K9C order |
| Physical quantity | 1 |
| Regulatory-domain token | F |
| Cisco-listed channel profile | 2.4 GHz channels 1-13; 5 GHz blocks at 5.250-5.350 and 5.725-5.825 GHz |
| Interfaces | PoE Gigabit uplink; Gigabit AUX for link aggregation |
| 802.3af effect | AUX and USB disabled; 1852e 2.4 GHz radio reduces from 3x4 to 2x3 |
| Lifecycle | End of sale 2022-05-01; software maintenance ended 2023-05-01; last support 2027-04-30 |
| Migration family | Cisco Catalyst 9115AX |
| Source match | AIR-AP1852E-F-K9C: 1852E, domain F, single-unit configurable K9C order, quantity 1 |
| Official manufacturer reference | Cisco Aironet 1850 exact lifecycle bulletin |
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AIR-AP1852E-F-K9C Cisco Aironet 1852e 802.11ac Wave 2 4x4 MIMO AP is a CISCO Aironet 1850 Series Access Points product supplied by YYST Global for enterprise IT procurement and infrastructure projects.
For AIR-AP1852E-F-K9C, the manufacturer specification lists wireless design as 802.11ac Wave 2; 4x4:4 single-user and 4x4:3 multiuser at 5 GHz.
For AIR-AP1852E-F-K9C, the manufacturer specification lists interfaces as PoE Gigabit uplink; Gigabit AUX for link aggregation.
AIR-AP1852E-F-K9C is in stock at YYST Global. Contact the sales team to confirm the required quantity, exact configuration, delivery destination and current lead time before ordering.
Please request a quote for AIR-AP1852E-F-K9C. Final pricing depends on stock, quantity, configuration and delivery destination.
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