

AIR-AP2802E-C-K9C is a Cisco Aironet 2800 Series controller-based 802.11ac Wave 2 access point order. The exact line combines a 2802E indoor access point for external antennas, regulatory-domain token C, and a single-unit, configurable order.
Cisco documents four RP-TNC antenna connectors plus a Smart Antenna connector on the 2802E. Antennas are a separate engineered part of the deployment bill of materials. Before release, record each Cisco-supported antenna part number, connector use, gain, pattern, cable type, cable loss, mounting orientation and local approval. A connector fit alone does not establish RF performance or regulatory suitability.
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 C profile as 2.4 GHz channels 1-13 and the 5.745-5.825 GHz upper block. The C profile listed by Cisco does not include the lower or middle 5 GHz blocks shown for many other domains. That narrower 5 GHz choice can materially change capacity and channel reuse assumptions.
Reject a design copied from a lower-band domain. Commission the site against the upper-block channel set, record the controller country setting and repeat the survey if the original design assumed unavailable 5 GHz channels. 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: this is an upper-5-GHz-focused profile in Cisco's table, so the buying decision should be based on a survey that can operate without lower or middle 5 GHz choices. Check client and infrastructure support for the selected operating plan at the actual site. A successful bench join in a different country or controller setting does not validate the channel availability required by the deployment.
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.
Assign owners for AP reachability, controller join failures, radio utilization, client health and switch-port errors. Confirm that the exact serial appears in inventory and monitoring, then test the alert path. Record dashboard object, notification route and escalation owner. Telemetry that is not tied to an owned asset does not provide a reliable service baseline and will not support later comparison after channel or software changes.
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.
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.
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.
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.
The handover package should include exact order identity, destination approval, serial record, controller evidence, switch port, mounting or antenna record, user-path tests and named operational owners. Review the package with the receiving team and list unresolved exceptions. A unit is not operationally accepted when important evidence remains only in installer notes, email attachments or an unowned temporary dashboard.
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-AP2802E-C-K9C |
| Exact Cisco order model | AIR-AP2802E-C-K9C |
| Access-point family | Cisco Aironet 2800 Series |
| Wireless generation | Controller-based 802.11ac Wave 2 |
| Antenna architecture | External-antenna model; four RP-TNC connectors plus Smart Antenna connector |
| Antenna procurement boundary | Compatible antennas and installation hardware require a separate approved bill of materials |
| Order form | single-unit, configurable order |
| Physical unit quantity | 1 |
| Configuration state | Configurable order; retain final selected domain evidence |
| Regulatory-domain token | C |
| Cisco-listed channel profile | 2.4 GHz channels 1-13 and the 5.745-5.825 GHz upper block |
| 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-AP2802E-C-K9C: 2802E antenna form, C regulatory-domain profile, single-unit, configurable order, quantity 1 |
| Official manufacturer reference | Cisco Aironet 2800 Series official data sheet |
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AIR-AP2802E-C-K9C Cisco Aironet 2800e Indoor WiFi5 Access Point is a CISCO Aironet 2800 Series Access Points product supplied by YYST Global for enterprise IT procurement and infrastructure projects.
For AIR-AP2802E-C-K9C, the manufacturer specification lists wireless generation as Controller-based 802.11ac Wave 2.
AIR-AP2802E-C-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-AP2802E-C-K9C. Final pricing depends on stock, quantity, configuration and delivery destination.
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