

AIR-AP2802I-K-K9C is a Cisco Aironet 2800 Series controller-based 802.11ac Wave 2 access point order. The exact line combines a 2802I indoor access point with integrated antennas, regulatory-domain token K, and a single-unit, configurable order.
Cisco documents twelve cross-polarized internal antennas in the 2802I enclosure. No external antenna is selected by this access-point SKU. The RF result therefore depends on enclosure orientation, mounting height, obstructions and the surveyed placement. Receiving should confirm the mounting kit, while commissioning should retain photographs of the final orientation and compare measured coverage with the approved survey.
Cisco's ordering convention uses K9C for a configurable single unit. The C suffix does not make the access point globally deployable; the final configured domain and destination approval must still be present on the quotation and received label. Hold the unit at receiving if the configured domain is absent or differs from the approved order. Preserve the configuration selection, chassis serial, destination evidence and controller-domain check as one release record. Because this is a configurable line, purchasing must retain the finally selected domain on both the authorized quotation and received label. The single unit needs one serial-level record, while accessories, controller readiness and destination approval remain separate acceptance items.
Cisco's 2800 Series data sheet lists the K profile as 2.4 GHz channels 1-13; 5 GHz blocks at 5.180-5.320, 5.500-5.620, and 5.745-5.805 GHz. The K profile has three separated 5 GHz groups, with narrower middle and upper limits than several neighboring profiles. Those boundaries must be reflected in controller and survey records.
Verify all three channel groups and their upper limits after the AP joins the controller. Retain the output with the K-domain purchase line so a broader template cannot be mistaken for compliance. Regulatory-domain letters are identifiers, not country names; use Cisco's compliance tool for the actual deployment country and retain the lookup date.
Procurement inference: three separated groups with distinct upper limits make boundary verification more important than a simple channel count. The acceptance package should list each enabled group and compare it with the K-domain survey. If the controller aggregates the output into one display, export a detailed channel list for evidence. Recheck those boundaries after controller migration or country-setting changes.
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.
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.
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.
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.
Document staging evidence, production window, installer, rollback owner and measurable success criteria. Preserve the prior controller or AP state needed for recovery. After the change, close temporary credentials, compare authentication, monitoring and RF results with the approved baseline, and record the final decision. The work is not complete merely because the unit powers on or appears in a controller list.
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.
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.
At receipt, compare model label, regulatory token, antenna form, quantity, serials and visible condition with the authorized order. Photograph labels before cartons are separated. Quarantine shortages, mixed units, damaged connectors or unapproved substitutions. Do not rely on a distributor description as evidence that the exact Cisco order arrived. Close the inspection only when every physical unit is accounted for.
Official evidence: Cisco Aironet 2800 Series data sheet; Cisco 2800 Series getting started guide; Cisco 2800 Series support and lifecycle page; and Cisco wireless compliance tool.
| Exact model / SKU | AIR-AP2802I-K-K9C |
| Exact Cisco order model | AIR-AP2802I-K-K9C |
| Access-point family | Cisco Aironet 2800 Series |
| Wireless generation | Controller-based 802.11ac Wave 2 |
| Antenna architecture | Integrated antenna model; twelve cross-polarized internal antennas |
| Antenna procurement boundary | No external antenna is selected by this access-point SKU |
| Order form | single-unit, configurable order |
| Physical unit quantity | 1 |
| Configuration state | Configurable order; retain final selected domain evidence |
| Regulatory-domain token | K |
| Cisco-listed channel profile | 2.4 GHz channels 1-13; 5 GHz blocks at 5.180-5.320, 5.500-5.620, and 5.745-5.805 GHz |
| Lifecycle | End of sale 31 October 2022; last support date 31 October 2027 |
| Migration family | Cisco Catalyst 9100 family; validate the exact replacement design |
| Source match | AIR-AP2802I-K-K9C: 2802I antenna form, K regulatory-domain profile, single-unit, configurable order, quantity 1 |
| Official manufacturer reference | Cisco Aironet 2800 Series official data sheet |
Product Quotation | ![]() | Condition and Packaging | |
![]() | Technical Support Enquiry | Returns and Replacement | |
Shipping Arrangements | ![]() | Warranty Terms |
AIR-AP2802I-K-K9C Cisco Aironet 2800i Indoor 5.2 Gbps Access Point is a CISCO Aironet 2800 Series Access Points product supplied by YYST Global for enterprise IT procurement and infrastructure projects.
For AIR-AP2802I-K-K9C, the manufacturer specification lists wireless generation as Controller-based 802.11ac Wave 2.
Contact YYST Global to confirm availability for AIR-AP2802I-K-K9C, 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-AP2802I-K-K9C. Final pricing depends on stock, quantity, configuration and delivery destination.
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