Capacity modelling may also be necessary to better forecast the amount of equipment, benching, storage, desks, lockers, etc.
Rather than cater to all eventualities, a cost-benefit analysis will often drive an ’80:20’ approach towards future flexibility..While office to lab conversions may seem to make good economic sense, compromises around productivity and flexibility can impact the life science business, tenant, or developer in ways that aren’t immediately obvious.
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Many of these issues can be mitigated simply through good design, and, in our experience, layouts need to be detailed earlier than a new-build project.Capacity modelling may also be necessary to better forecast the amount of equipment, benching, storage, desks, lockers, etc.over the long-run.. Capacity model for a biopharma QC lab showing utilisation of individual equipment items over time.. 2.
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Height.. Limited headroom in existing offices may be insufficient for taller lab equipment or increased services distribution.. An ideal starting-point for a lab is a floor-to-floor height between 4.2 and 4.5m, with an office typically being in the 3.6 to 4.2m range.. Taller items such as fume cabinets and MBSCs can normally be accommodated under a 2.7m high ceiling (similar to what you might find in a modern office), however some specialist or larger-scale equipment will require additional headroom or maintenance and withdrawal space, and localised raised ceilings may be necessary, or the equipment simply might not fit.. Labs require many more services than an office, which normally means a deeper ceiling void.Limited risers in offices can also result in more service crossovers and congestion, increasing this depth further still.
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It is often possible to mitigate some of this through good design, such as lowering ceilings in corridors to accommodate main ductwork runs or positioning lower height rooms close to risers.
Ground floor units and older office buildings may also have larger floor-to-floor heights, and there can even be opportunities to increase headroom by removing raised-access floors (though this will impact floor thresholds.)Using a design configurator to rapidly translate this equipment list, a library of equipment and building components, and codified design rules (e.g.
building regulations, safety, and quality standards) into a coordinated and compliant multidisciplinary facility design..Using an execution model to rapidly translate this lab design, historic project data, and other inputs, into a cost and programme estimate, as well as other useful business metrics.. Fast Lab allows teams to complete all these steps in a single workshop, with numerous design iterations, scenarios, and improvements taking place in real time.
This makes it possible to start permitting, procurement, and construction activities in a matter of weeks, rather than months, and opens the door to warp-speed lab deployment.. Fast Lab combines our experience in multidisciplinary lab design, capacity modelling, asset optimisation, automated design tools, and the creation of fast, scalable solutions to the world’s biggest construction challenges.It is aimed at life science businesses and developers including:.
(Editor: Popular Routers)