Green IT Hub
Professional Devices Lesson 2 of 5

Professional · Lesson 2 · ~8 min

Fleet Lifecycle Strategy.

Extending replacement cycles from three to six years on a 100-laptop fleet roughly halves both the hardware budget and the Scope 3 emissions. The hard part is operational, not technical.

This lesson covers what makes a 6-year fleet realistic, the mid-life refresh that makes it possible, and the internal cascade — engineering hand-me-downs to office, office to kiosks — that gets the most service out of every device.

A laptop glowing with colourful light

What doubling the cycle actually saves

The math is uncomfortable for vendors

Take a 100-laptop fleet at €1,200 per device and ~250 kg CO₂e per manufacturing footprint. Compare a 3-year cycle (industry default, vendor-encouraged) with a 6-year cycle (Green IT default, with a mid-life refresh).

Over six years:

3-year cycle: 100 laptops bought in year 0, 100 more in year 3. Total spend: ~€240,000. Total manufacturing CO₂: ~50 tonnes. Operational overhead: two procurement cycles, two deployments, two decommissionings.

6-year cycle with mid-life refresh: 100 laptops in year 0. At year 3: replace all batteries (~€60 each), upgrade SSDs where needed (~€80 each), clean keyboards. Total spend: ~€134,000. Total manufacturing CO₂: ~26 tonnes. Operational overhead: one procurement, one mid-life touch, one decommissioning.

That's a ~44 % budget saving and ~48 % carbon saving, before counting the avoided ITAD costs and decommissioning labour. Across an organisation of 1,000+ devices, the numbers become serious money and serious Scope 3 reductions.

3-year cycle vs 6-year cycle, side by side

Same 100-laptop fleet, same starting price, over a 6-year window. Hardware spend, CO₂ embedded in manufacturing, and the operational footprint of running each model.
Fleet of 100 laptops, 6-year analysis window
Lifecycle 3-year cycle 6-year cycle (with refresh) Difference
Devices procured 200 100 −50 %
Hardware spend ~€240,000 ~€134,000 (incl. €14k refresh) −44 %
Manufacturing CO₂e ~50,000 kg ~26,000 kg −48 %
Procurement cycles 2 1 −1
Decommissioning events 2 1 −1
Mid-life refresh cost ~€14,000 added
Battery refreshes 0 (replaced wholesale) 100 at year 3 added
Average user-facing performance gap Negligible for office work (see Foundations Lesson 2)

The performance objection is mostly false. Foundations Lesson 2 showed single-thread CPU performance has only quadrupled in 20 years — most of it before 2018. A 6-year-old business laptop with a fresh battery and SSD is, for everyday office work, nearly indistinguishable from a new one. The case for the 3-year cycle is institutional inertia, not user experience.

Knowledge check On a 100-laptop fleet over 6 years, what is the approximate impact of moving from a 3-year to a 6-year cycle with one mid-life refresh?

The mid-life refresh — what it actually involves

Year 3 is when you decide whether the fleet survives to year 6

A 6-year cycle is not 'buy and forget for six years'. It is a planned three-year first phase, then a coordinated refresh, then three more years. The refresh is what keeps the fleet running.

For a typical 100-laptop fleet at year 3:

Battery replacement for every device with battery health below 80 % (typically ~85 % of the fleet at year 3). Cost: €40–80 per battery in bulk. This single intervention is what makes year 4–6 tolerable; without it users will be unplugging dead laptops every afternoon.

SSD upgrade or replacement for any device with under 256 GB or showing SMART warnings. Cost: €50–100 per SSD in bulk. New users coming onto the fleet (replacing leavers) get the SSD upgrade pre-deployment.

RAM upgrade on machines still at 8 GB. By year 3, modern web apps want 16 GB. Cost: €30–60 per machine in bulk.

Deep clean of keyboards, screens, vents (dust kills cooling). Often the difference between 'old laptop' and 'still feels acceptable' in user perception.

OS refresh — clean reinstall, fresh image. Removes accumulated software bloat that often gets blamed on hardware aging.

Optional but valuable: replace cracked screens, swap noisy fans, replace worn keyboards, refresh power adapters. Total cost per device: typically €100–200 in bulk. Compare with €1,200 for a new device.
Knowledge check An engineering laptop reaches its 3-year refresh point. The team needs newer hardware for ML workloads. What is the most carbon-efficient internal use for the 3-year-old laptop?

TCO with a carbon line

What total cost of ownership should actually include

Traditional TCO (Total Cost of Ownership) calculations cover acquisition, support, software licensing, energy, and disposal. They omit the manufacturing carbon footprint because it has no monetary line in the budget — even though it is the single largest environmental impact of the device.

A Green-IT-aware TCO adds a Scope 3 line: an internally-assigned price per kg CO₂e (typically €0.10–0.30 in 2026, rising as carbon pricing tightens). At €0.20/kg, a new laptop adds ~€50 to its true cost (250 kg × €0.20). A refurbished laptop adds ~€10 (avoided manufacturing, only the refurbisher's overhead).

This line item is small but consequential: it makes the case for refurbished-first procurement defensible without requiring sustainability and finance to fight each other. The procurement KPI becomes 'lowest TCO including carbon' rather than 'lowest purchase price', and the answer changes.

Why this matters for the rest of the path

Connecting the dots

Lesson 2 made the case for 6-year cycles with mid-life refreshes. That is only feasible if you can actually repair devices at scale — fast, reliably, without depending on vendor service centres for every battery swap.

That is the topic of Lesson 3 — Repair & Refurbish at Scale: in-house spare-parts stock, mean-time-to-repair targets, manufacturer support deals worth signing, refurbished-first procurement at refresh time.

Replacement strategies: contractual, ecological, unavoidable

Line chart: contractual obsolescence ~5y, ecological break-even ~7y, performance limit ~9y
Three replacement triggers on one timeline: contractual obsolescence (~5 yrs), the ecological break-even (~7 yrs), and the hard performance limit (~9 yrs). Green IT Hub