AIR-AP1852E-R-K9 is a 1852e indoor access point for separately purchased external antennas in the Cisco Aironet 1850 Series. This exact SKU combines regulatory-domain token R with a single-unit fixed-domain K9 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 K9 as a controller-based dual-band 802.11ac Wave 2 order. Match the complete fixed-domain PID at receiving. Create one serial-level asset record and stage CAPWAP join, controller software, country setting and radio operation before production release.
Cisco lists this profile as 2.4 GHz channels 1-13; 5 GHz blocks at 5.180-5.320 and 5.660-5.805 GHz. The R profile uses a lower 5 GHz block and a distinct high block beginning at 5.660 GHz. That second boundary is different from the broader middle ranges used by other domains. Confirm the exact start and end of the high block in the controller output. Preserve that evidence with the R-domain destination check and post-install RF measurements.
Procurement inference: the high group begins at a distinctive boundary and should be treated separately from broad middle-band plans. Preserve the exact high-group channel output and test representative clients there. If the site migrates from a profile whose second group starts lower, revise the interference map and channel-reuse assumptions before installation. Similar overall channel counts do not make the profiles operationally equivalent.
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.
Measure power after the access point has joined its controller and the planned radios and services are active. Record switch model, port, negotiated power level, LLDP result and any reduced-capability warning. An idle boot result is not sufficient evidence for the deployed power budget. If an injector is proposed, verify its supported use and include its exact identity in the maintained bill of materials rather than treating it as an unspecified accessory. The 1852 draws up to 20.9 W; 802.3af also disables AUX Ethernet and USB, while the external-antenna 1852e reduces its 2.4 GHz radio from 3x4 to 2x3.
Preserve the permanent-link test, patch-lead identities, switch port, negotiated Ethernet rate and error counters. Investigate pair faults, excessive length or rate fallback before wireless acceptance begins. A link light only proves connectivity at some rate; it does not demonstrate the intended uplink performance. Tie the cable result to the AP serial so a later throughput problem can be separated from radio, controller and wired-path causes. The platform has one PoE Gigabit interface and one Gigabit AUX interface used for link aggregation, so preserve both link states and the power condition under which AUX is available.
Attach the approved RF survey location, mounting height, orientation, expected client density, channel width and neighboring-radio assumptions to the order. After installation, compare measured coverage and interference with that design. If ceiling construction, antenna placement or obstructions changed, document the deviation and repeat the affected measurements. This provides a site-specific acceptance reason for the exact unit instead of relying on a family data sheet alone. Relate the survey result to the 1852's 4x4:4 single-user and 4x4:3 multiuser 5 GHz design rather than treating the published 1.7 Gbps PHY rate as measured site throughput.
Save the Cisco compliance lookup result, lookup date, deployment country, approved regulatory token and reviewer. If the destination changes, stop and repeat the approval rather than moving the unit on the strength of an earlier purchase. Compare the controller country setting and available channels with the retained evidence. Regulatory eligibility is a deployment condition and cannot be inferred from connector fit, stock location or a similar-looking part number. Cisco explicitly makes the customer responsible for country approval; retain the lookup alongside the 1852's controller country and enabled-channel evidence.
Record the controller release approved for this unit, the source used to verify support, the last tested date and the owner for software advisories. Available hardware does not prove compatibility with a current or future controller train. Review Cisco support information before every expansion or replacement. The lifecycle file should also state when this Aironet generation must leave service and which surrounding dependencies need migration. Cisco ended 1850 Series software maintenance in 2023, so controller compatibility evidence is especially important for inventory purchased late in the lifecycle.
Retain the approved controller policy, management authorization, certificate or trust workflow, client authentication test and logging destination. Confirm behavior on the deployed controller software instead of promising a protocol from the hardware family name. Remove temporary onboarding access and verify administrative reachability after handover. This keeps product identity separate from software-dependent security claims. Record the security behavior verified on the deployed controller release; do not turn a family data-sheet capability into an unconditional software claim.
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-R-K9 |
| Exact Cisco PID | AIR-AP1852E-R-K9 |
| 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 fixed-domain K9 order |
| Physical quantity | 1 |
| Regulatory-domain token | R |
| Cisco-listed channel profile | 2.4 GHz channels 1-13; 5 GHz blocks at 5.180-5.320 and 5.660-5.805 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-R-K9: 1852E, domain R, single-unit fixed-domain K9 order, quantity 1 |
| Official manufacturer reference | Cisco Aironet 1850 exact lifecycle bulletin |
Product Quotation | ![]() | Condition and Packaging | |
![]() | Technical Support Enquiry | Returns and Replacement | |
Shipping Arrangements | ![]() | Warranty Terms |
AIR-AP1852E-R-K9 Cisco Aironet 1852e Indoor 4x4 MIMO Access Point is a CISCO Aironet 1850 Series Access Points product supplied by YYST Global for enterprise IT procurement and infrastructure projects.
For AIR-AP1852E-R-K9, 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-R-K9, the manufacturer specification lists interfaces as PoE Gigabit uplink; Gigabit AUX for link aggregation.
Contact YYST Global to confirm availability for AIR-AP1852E-R-K9, the required quantity, exact configuration, delivery destination and current lead time before ordering. A product listing does not confirm current inventory.
Please request a quote for AIR-AP1852E-R-K9. Final pricing depends on stock, quantity, configuration and delivery destination.
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