Field Shelter Solutions

Choosing High-Pressure or Low-Pressure Inflatable Shelters

SUNSHINE Technical Team · 29 June 2026

This note explains the decision factors for large, longer-duration inflatable shelters. It is based on an anonymised technical evaluation and referenced internal test records. Customer identity, project identifiers, commercial terms, and pricing have been removed.

Executive summary

A high-pressure air-beam structure is generally better suited to a large shelter that requires stable internal geometry, functional partitions, HVAC integration, large access openings, and longer field deployment. A low-pressure structure can remain appropriate where lower initial cost, simpler manufacturing, and short-duration use are the main priorities.

Technology comparison

Criterion High-pressure air-beam shelter Low-pressure inflatable shelter
Typical operating pressure Approximately 0.18–0.25 MPa Approximately 0.02–0.04 MPa
Structural behaviour Semi-rigid air-beam frame with greater geometry stability Flexible air-rib or membrane structure with more deformation under load
Pressure retention Designed for longer intervals between pressure checks May require more frequent supplementary inflation
Best-fit use Large span, longer deployment, demanding environmental loads Temporary use, moderate loads, cost-sensitive applications

Referenced design and test evidence

The following values describe the referenced specimen and conditions, not a blanket rating for every shelter.

Item Referenced condition Observed result
Structural design basis Representative 300 mm air beam at approximately 0.20 MPa Selected material met the assumed support-unit requirement
Wind simulation 24.8 m/s for 60 minutes; basic wind pressure 0.38 kN/m² -87.3 mm vertical and 328.8 mm horizontal midpoint displacement
Snow simulation 100 mm snow; density 150 kg/m³; basic snow pressure 15 kg/m²; 60 minutes 40.2 mm uniform and 65.6 mm non-uniform vertical displacement
Post-test inspection Wind/snow simulations and repeated deflation/inflation No observed wrinkling, cracking, rope-pull failure, or main-beam damage in the referenced specimen

These results must not be presented as project certification. Project-specific engineering is still required.

Inputs required before quotation

  • Final dimensions and openings
  • Partitions, HVAC, and equipment loads
  • Operating and storage temperatures
  • Wind, snow, rainfall, and corrosion requirements
  • Ground type and anchor pull-out capacity
  • Required fire classification and destination-market documentation
  • Deployment, staffing, packing, and transport constraints

Pressure safety and anchoring

The referenced logic used approximately 0.20 MPa as a working-pressure basis and considered a pressure-resistance target around three times working pressure, subject to final material and beam specification. Anchoring is part of the structural load path and must be validated for the actual site.

Conclusion

For large, partitioned, longer-duration shelters, high-pressure technology can provide better structural stiffness, pressure retention, and geometry control. Low-pressure systems remain useful for shorter-duration or cost-sensitive applications. The final decision should follow a documented requirements review and project-specific structural validation.

Discuss the technical details.

Our engineering team is ready to apply this to your project.

WhatsApp

Request a Quote

Tell us about your project

Our engineering team reviews every inquiry and responds within 24 hours. No resellers, no commission — you speak directly with the source manufacturer.

B2B Project Enquiry