Deployment Planning

Planning a Business Network Deployment

Updated 5 min read

The most expensive networking mistake is surveying an empty building. Coverage measured across a bare warehouse floor bears no resemblance to coverage once racking is up and loaded, and by the time anyone discovers that, the cabling is in the ceiling and the access points are mounted.

Who this is for

  • Fitting out a new site, or moving into one
  • Replacing consumer or ageing equipment with something supportable
  • Adding a warehouse, mezzanine, or outdoor area to an existing network
  • Rolling out scanners or IP phones onto a network that was not designed for them

Establish what the network has to carry

  1. Inventory the client devices, including which bands they support. Warehouse scanners are frequently 2.4 GHz only, and that single fact can invalidate an otherwise sensible design.
  2. Count peak concurrent devices per area, not total headcount. A conference room is the densest place in most buildings for one hour at a time.
  3. Identify what must be segmented. Guest Wi-Fi, payment devices, cameras, and building systems generally should not share a network with staff machines.
  4. List everything needing PoE and its real power draw.
  5. Note anything that cannot tolerate interruption — payment terminals, voice, and any process that fails badly mid-transaction.
  6. Establish the internet link speed, which is usually the real ceiling for internet-bound traffic regardless of how good the LAN is.
Survey the space as it will actually be used

Metal racking, stock, liquid inventory, cold rooms, and concrete all attenuate signal heavily. A survey in an empty warehouse produces coverage predictions that are simply wrong once it is full. If the site is not yet fitted out, survey again after it is and budget for adjusting access point placement — that contingency is much cheaper than discovering dead aisles during go-live.

Sizing access points on density, not area

The instinct is to place access points so their coverage circles overlap and stop there. That produces adequate coverage and inadequate capacity, because every device in range shares the same airtime.

Coverage design versus capacity design Designing for coverage places the fewest access points needed for a signal everywhere. Designing for capacity places more access points so device count per radio stays manageable. Two ways to place access points COVERAGE DESIGN Fewest access points for a signal everywhere Bars show full, performance is poor Everyone shares one radio's airtime CAPACITY DESIGN More access points, lower power each Devices spread across more radios Channel reuse becomes possible "Full bars but slow" is the signature of a coverage-designed network carrying a capacity-sized load. You cannot fix that by turning transmit power up — that makes channel reuse worse.
Denser deployments generally run access points at lower transmit power so cells stay small and channels can be reused.

Worked example. A distribution centre with a 30,000 square foot warehouse, a 40-person office, and a small conference suite.

  • Warehouse: coverage-driven, but aisles create signal shadows. Access points positioned along aisles rather than in a grid, with a survey once racking is loaded.
  • Office: capacity-driven at roughly 40 laptops plus phones and printers, so device count sets the number rather than square footage.
  • Conference suite: highest density in short bursts. Designed for a full room, not an average one.
  • Loading bay: outdoor-rated units, and a survey with the doors both open and closed.
Warehouse aisles need access points along them, not above them

Loaded racking blocks signal effectively. Access points placed on a uniform ceiling grid end up covering the tops of racks while the aisles where people work have dead spots. Positioning along aisles, sometimes with directional antennas down the aisle, is what actually works — and it is very hard to retrofit once cabling is in.

Roaming

Roaming is what lets a scanner or a phone move across a site without dropping its connection. It matters far more in warehouses and hospitals than in offices, and it is easy to design out accidentally.

  • Plan overlap between cells, enough that a device can find the next access point before losing the current one.
  • Keep transmit power consistent across access points. A single unit running much hotter creates a cell devices cling to long after they should have moved on.
  • Use the same SSID and security settings everywhere, or roaming cannot be seamless.
  • Test by walking the real route with the actual device — a full pick path, or a ward round — not by standing still and reading signal strength.
  • Check voice and scanning applications specifically, since these fail visibly during a bad roam while a web page simply pauses.

VLAN design, decided before cabling

A starting structure. Fewer, well-chosen VLANs beat many that nobody maintains.
VLAN Why it is separate
Staff / corporate The main working network.
Guest Internet only, no reachability into anything internal. Non-negotiable if you offer guest Wi-Fi.
Voice Separated for quality of service and simpler troubleshooting.
Payment / POS Segmentation here is frequently a compliance requirement, not a preference.
Cameras and building systems Chatty, rarely patched, and should not reach anything else.
Management Switches, access points, UPS management cards, and out-of-band interfaces. Restricted to administrators.
Guest Wi-Fi must not reach the internal network

A guest network that can see internal systems is an open door, and "we gave them a separate password" is not separation. Guest traffic needs its own VLAN with client isolation and internet-only access. This is the most common serious misconfiguration in small business networks, and it is usually the result of adding guest access to a flat network after the fact.

Cabling and power

  1. Run cable to more locations than you plan to use. The cable is cheap during a fit-out and expensive afterwards. Spare drops at likely access point positions cost very little now.
  2. Use a cable category appropriate for the speeds you intend, including multi-gigabit access points.
  3. Respect maximum run lengths. Long runs cause intermittent faults that look like device problems.
  4. Plan the PoE budget across switches, not per port — see choosing switches and access points.
  5. Put network equipment on a UPS. A running server with no network is not much use — see sizing a UPS.
  6. Ventilate the comms room. Heat shortens the life of everything in it, batteries first.
  7. Label both ends of every cable during installation. Nobody ever does this afterwards.

Rolling it out

Phase What happens
1. Inventory and requirements Client devices and their bands, peak density per area, PoE list, segmentation needs.
2. Survey With the space as it will be used. Predictive design first if the building is empty, validated later.
3. Design Access point placement, VLANs, addressing, PoE and uplink sizing.
4. Cable and power Drops, comms room, UPS. The part that is expensive to change later.
5. Configure and pilot one area One floor or one zone, with real users and real devices.
6. Validate by walking it Roaming, dead spots, and the applications that actually matter.
7. Roll out the rest Applying what the pilot taught you.
8. Document Addressing, VLANs, credentials location, cable labels, and a floor plan with access point positions.
Validate with the worst device you own, not the best

A new laptop will connect almost anywhere. An eight-year-old 2.4 GHz scanner will not. Test coverage and roaming with the least capable device in the fleet, because that device defines where your network genuinely works — and it is the one whose failure stops the warehouse.

Official manufacturer resources

Design guidance, coverage planning tools, and validated reference designs are vendor-specific. Confirm against documentation for the models you are deploying.

Fitting out a site?

Send us a floor plan, the device inventory, and what each area is used for. We will help you size access points on density rather than area, and flag the cabling decisions that are expensive to reverse.

Still stuck? Talk to someone who works on this hardware daily.

Tell us the model, what you have already tried, and what you are seeing. We will tell you whether it is a setting, a consumable, or a part — and we will say so if you do not need to buy anything.