Critical Review and Potential Improvement of the New International Airport Pavement Strength Rating System
Abstract
:1. Introduction
2. Background
2.1. Airport Pavements
2.2. International Civil Aviation Organisation
2.3. Pavement Strength Rating Systems
3. Review of the ACN–PCN and ACR–PCR Systems
3.1. Existing Strength Rating System
- Category A. High strength. Represented as CBR 15;
- Category B. Medium strength. Represented by CBR 10;
- Category C. Low strength. Represented by CBR 6;
- Category D. Ultra-low strength. Represented by CBR 3.
3.2. New Strength Rating System
- Strain is used as the relative damage indicator, rather than deflection;
- All wheels are considered explicitly, rather than being converted to an equivalent single wheel;
- Actual pavement materials and composition are considered explicitly, rather than being converted to a standard composition;
- Load repetitions, tire pressures, and pavement structures are more comparable to typical modern airport pavement structures;
- Elastic modulus is used as the subgrade bearing capacity characteristic, replacing CBR for flexible pavements and the modulus of subgrade reaction (k-value) for rigid pavements;
- Rigid and flexible pavement subgrade categories use the same elastic modulus ranges and characteristics values for subgrade characterization.
- Increase the knowledge of pavement thickness, material characteristics, and bearing capacity [40];
- Reduce greenhouse gas emissions [40];
- Result in an extended pavement design life [42];
- Provide reduced pavement thicknesses for new pavement construction [40];
- Representative subgrade characteristics;
- The number of subgrade categories;
- Tire pressure limits for surface protection;
- Light aircraft provision;
- The rational basis for strength rating.
4. Potential Improvements to ACR–PCR
4.1. Representative Subgrade Characteristic
4.2. Number of Subgrade Categories
4.3. Tire Pressure Limits for Surface Protection
4.4. Light Aircraft Provision
4.5. Rational Basis for Strength Rating
5. Conclusions
Funding
Conflicts of Interest
References
- Fabre, C.; Balay, J.; Lerat, P.; Mazars, A. Full-scale aircraft tire pressure test. In Proceedings of the Eight International Conference on the Bearing Capacity of Roads, Railways and Airfields, Urbana-Champaign, IL, USA, 29 June–2 July 2009; pp. 1405–1413. [Google Scholar]
- Roginski, M.J. Effects of aircraft tire pressures on flexible pavements. In Proceedings of the Advanced Characterisation of Pavement and Soil Engineering Materials Conference, Athens, Greece, 20–22 June 2007; pp. 1473–1481. [Google Scholar]
- Rodway, B. Asphalt deformation due to high tyre pressure. In Proceedings of the FAA Airport Pavement Working Group Annual Meeting, Federal Aviation Administration, Atlantic City, NJ, USA, 21–23 July 2009. [Google Scholar]
- Anstee, H.; White, G. Defining the gap associated with compacting and proving granular layers and fills for airport pavement construction. In Proceedings of the International Conference on Transport and Development, Seattle, WA, USA, 31 May–3 June 2022. [Google Scholar]
- International Civil Aviation Organization. Aerodrome Design Manual: Part 3, 2nd ed.; ICAO 9157; International Civil Aviation Organization: Montreal, QC, Canada, 1983. [Google Scholar]
- Federal Aviation Administration. Airport Pavement Design and Evaluation; AC 150/5320-6C; Federal Aviation Administration: Washington, WA, USA, 1978. [Google Scholar]
- Australian Airports Association. Airport Practice Note 12—Airfield Pavement Essentials; Australian Airports Association: Canberra, ACT, Australia, 2017; Available online: www.scribd.com/document/596050238/Australian-Airports-Asscociation-2017-Manual-Airfield-Pavement-Essentials (accessed on 1 January 2023).
- Federal Aviation Administration. FAARFIELD 2.1.1; Airport Design Software FAARFIELD 2.1.1; Federal Aviation Administration: Washington, WA, USA, 22 December 2023. Available online: www.airporttech.tc.faa.gov/Products/Airport-Safety-Papers-Publications/Airport-Safety-Detail/ArtMID/3682/ArticleID/2841/FAARFIELD-20 (accessed on 11 August 2024).
- Brill, D.R.; Kawa, I. Advances in FAA pavement thickness design Software: FAARFIELD 1.41. In Proceedings of the International Conference on Highway Pavements and Airfield Technology, Philadelphia, PA, USA, 27–30 August 2017. [Google Scholar]
- Civil Aviation Safety Authority. Part 139 (Aerodromes) Manual of Standards 2019: Amendments to F2024L00292; Civil Aviation Safety Authority: Canberra, ACT, Australia, 13 March 2024. Available online: www.legislation.gov.au/F2019L01146/latest/text (accessed on 11 August 2024).
- White, G.; Farelly, J.; Jamieson, S. Estimating the value and cost of Australian aircraft pavement assets. In Proceedings of the International Airfield and Highway Pavement Conference, American Society of Civil Engineersa, Virtual, 8–10 June 2021. [Google Scholar]
- Federal Aviation Administration. Standardized Method of Reporting Aircraft Pavement Strength—PCN; Advisory Circular 150/5335-5C; Federal Aviation Administration: Washington, WA, USA, 14 August 2024. [Google Scholar]
- Federal Aviation Administration. COMFAA 3.0; Federal Aviation Administration, 14 August 2014. Available online: www.airporttech.tc.faa.gov/Products/Airport-Pavement-Software-Programs/Airport-Software-Detail/ArtMID/3708/ArticleID/10/COMFAA-30) (accessed on 11 August 2024).
- Tipnis, M.; Patil, M. Design program based PCN evaluation of aircraft pavements’. In Proceedings of the FAA World Wide Airport Technology Transfer, Galloway, NJ, USA, 5–7 August 2014. [Google Scholar]
- White, G. Practical implications for the implementation of the new international airport pavement strength rating system. In Proceedings of the 11th International Conference on the Bearing Capacity of Roads, Railways and Airfields, Trondheim, Norway, 28–30 June 2022; Volume 1, pp. 210–225. [Google Scholar]
- International Civil Aviation Organization. Aerodrome Design Manual: Part 3, 3rd ed.; ICAO 9157; International Civil Aviation Organization: Montreal, QC, Canada, 2022. [Google Scholar]
- Brill, D.R.; Garg, N. Airport Pavement Design and Evaluation Workshop—Introduction to FAARFIELD2.0 and ICAO’s ACRPCR System. In Proceedings of the International Airfield & Highway Pavements Conference, Austin, TX, USA, 12–14 June 2023. [Google Scholar]
- Honey, H.; Crislip, J. ICAO ACR-PCR Procedure of Reporting Airport Pavement Stregth. In Proceedings of the Fourth Meeting of the Asia/Pacific Aerodrome Design and Operations Task Force, Chiang Rai, Thailand, 10–13 January 2023; Available online: www.icao.int/APAC/Meetings/2023%20APADOTF4 (accessed on 11 August 2024).
- Deilami, S.; White, G. Review of reflective cracking in composite pavements. Int. J. Pavement Res. Technol. 2020, 13, 524–535. [Google Scholar] [CrossRef]
- Ahlvin, R.G. Origin of Developments for Structural Design of Pavement; In Technical Report GL91-26; US Army Corps of Engineers Waterways Experiment Station: Vicksburg, MS, USA, 1991. [Google Scholar]
- White, G.; Kelly, G.; Fairweather, H.; Jamshidi, A. Theoretical socio-enviro-financial cost analysis of equivalent flexible aircraft pavement structures. In Proceedings of the 99th Annual Meeting of the Transportation Research Board, Washington, WA, USA, 12–16 January 2020. [Google Scholar]
- Jamieson, S.; White, G. Defining Australian rigid aircraft pavement design and detailing practice. In Proceedings of the International Airfield and Highway Pavement Conference, American Society of Civil Engineers, Virtual, 8–10 June 2021. [Google Scholar]
- Jamieson, S.; White, G. Review of rigid aircraft pavement joint types, effectiveness, distress, maintenance and analysis. In Proceedings of the International Airfield & Highway Pavements Conference, Austin, TX, USA, 12–14 June 2023. [Google Scholar]
- International Civil Aviation Organization. About ICAO; International Civil Aviation Organization: Montreal, QC, Canada. Available online: www.icao.int/about-icao/Pages/default.aspx (accessed on 11 August 2024).
- International Civil Aviation Organization. Aerodrome Design and Operations; Annex 14, Volume 1, to the Conventions on International Civil Aviation; International Civil Aviation Organization: Montreal, QC, Canada, 2013. [Google Scholar]
- International Civil Aviation Organization. Member States; International Civil Aviation Organization: Montreal, QC, Canada; Available online: www.icao.int/about-icao/Pages/member-states.aspx (accessed on 11 August 2024).
- Armeni, A.; Loizos, A. Reporting the bearing capacity of airfield pavements using PCR index. NDT 2024, 2, 16–31. [Google Scholar] [CrossRef]
- Federal Highway Administration. Bridge Formula Weights; FHWA-HOP-19-028; Federal Highway Administration: Washington, WA, USA, 2019. Available online: https://ops.fhwa.dot.gov/freight/publications/brdg_frm_wghts/fhwahop19028.pdf (accessed on 11 August 2024).
- White, G. Shear stresses in an asphalt surface under various aircraft braking conditions. Int. J. Pavement Res. Technol. 2016, 9, 89–101. [Google Scholar] [CrossRef]
- Federal Aviation Administration. Airport Pavement Design and Evaluation; AC 150/5320-6G; Federal Aviation Administration: Washington, WA, USA, 7 June 2021. [Google Scholar]
- Roginski, M.J. ICAO update—Status of high tyre pressure revision to Annex 14. In Proceedings of the FAA Working Group Meeting, Federal Aviation Administration, Atlantic City, NJ, USA, 15–17 April 2013. [Google Scholar]
- Shepson, O. Boeing and Airbus tire pressure test programs. In Proceedings of the ALACPA Airport Pavement Seminar and FAA Workshop, Sao Paulo, Brazil, 26–30 October 2009. [Google Scholar]
- Fabre, C. The Airbus high tyre pressure test. Flight Airworth. Support Technol. 2011, 48, 2–9. [Google Scholar]
- White, G. Limitations and potential improvement of the aircraft pavement strength rating system. Int. J. Pavement Eng. 2017, 18, 1111–1121. [Google Scholar] [CrossRef]
- Civil Aviation Safety Authority. Strength Rating of Aerodrome Pavements; AC139.C-07; Civil Aviation Safety Authority: Canberra, ACT, Australia, 2021. Available online: www.casa.gov.au/rules/regulatory-framework/casr/part-139-casr-aerodromes#Guidancematerial (accessed on 13 August 2024).
- White, G. Spray seals for airports. In Proceedings of the 2nd International Sprayed Sealing Conference, Melbourne, VIC, Australia, 10–12 October 2010. [Google Scholar]
- White, G. Comparison of bituminous surface options for regional airport runway pavements. In Proceedings of the 8th International Conference Bituminous Mixtures and Pavements, Thessaloniki, Greece, 12–14 June 2024. [Google Scholar]
- Fabre, C. The ACR-PCR Method; International Coordinating Council of Aerospace Industries Association: Montreal, QC, Canada, 2019. [Google Scholar]
- Airports Council International. Top 10 Busiest Airports in the World Shift with the Rise of International Air Travel Demand; 14 April 2024. Available online: www.aci.aero/2024/04/14/top-10-busiest-airports-in-the-world-shift-with-the-rise-of-international-air-travel-demand (accessed on 11 August 2024).
- International Civil Aviation Organisation. Pavement Asset Optimisation of the Overall Lifecycle of Pavement for Mastering Airports Operations, Cost Efficiency and GHG Footprint; Working Paper WPA41-WP/269; International Civil Aviation Organisation: Montreal, QC, Canada, 2022. [Google Scholar]
- Fabre, C. Aircraft/pavement classification rating ACR-PCR. In Proceedings of the Central American and Caribbean Working Group (NACC/WG) Aerodromes and Ground Aids (AGA) Implementation Task Force Meeting, NACC/WG/AGA/TF/2, Mexico City, Mexico, 15–17 May 2024; Available online: www.icao.int/NACC/Documents/Meetings/2024/AGATF2/AGATF2-P02.pdf (accessed on 11 August 2024).
- Pavement Management Services. ACR-PCR: The New Airport Pavement Rating Method Explained; Pavement Management Services: Sydney, NSW, Australia; Available online: www.pavement.com.au/news/acr-pcr-the-new-airport-pavement-rating-method-explained#:~:text=The%20ACR-PCR%20system%20enhances%20pavement%20use%20and%20ensures,life%20cycle%20through%20predictive%20maintenance%20and%20usage%20optimisation (accessed on 11 August 2024).
- New Method to Report Pavement Strength (ACR-PCR); Webinar Presentation, 6 October 2022. Available online: www.easa.europa.eu/en/newsroom-and-events/events/new-method-report-pavement-strength-acr-pcr-webinar (accessed on 11 August 2024).
- Australia: State of the Environment 2021; Department of Climate Change, Energy, the Environment and Water: Canberra, ACT, Australia. 2021. Available online: https://www.dcceew.gov.au/science-research/soe (accessed on 12 August 2024).
- LEDFAA 1.3; Federal Aviation Administration, 4 March 2012. Available online: www.airporttech.tc.faa.gov/Airport-Pavement-OLD/Pavement-Design-and-Evaluation/Advanced-Pavement-Design/LEDFAA) (accessed on 12 August 2024).
- APSDS—Airport Pavement Design Software; Pavement Science. Available online: https://pavement-science.com.au/softover/apsds/ (accessed on 12 August 2024).
- Alize LCPC; Ifstar. Available online: www.alize-lcpc.com (accessed on 12 August 2024).
- Federal Aviation Administration. ICAO-ACR 1.4; Federal Aviation Administration: Washington, WA, USA, 16 March 2020. Available online: www.airporttech.tc.faa.gov/Products/Airport-Pavement-Papers-Publications/Airport-Pavement-Detail/ArtMID/3684/ArticleID/2838/ICAO-ACR-13 (accessed on 13 August 2024).
- White, G. Modification of the airport pavement strength rating system for improved protection of asphalt surfaces. Int. J. Pavement Eng. 2019, 20, 519–529. [Google Scholar] [CrossRef]
- Airservices Australia. Aeronautical Information Package; Airservices Australia: Canberra, ACT, Australia. Available online: www.airservicesaustralia.com/aip/aip.asp (accessed on 14 August 2024).
Category | Original Tire Pressure Limits | Revised Tire Pressure Limits |
---|---|---|
W | Unlimited | Unlimited |
X | 1.50 MPa | 1.75 MPa |
Y | 1.10 MPa | 1.25 MPa |
Z | 0.50 MPa | 0.50 MPa |
Layer | Thickness under ACN–PCN System | Thickness under ACR–PCR System | |
---|---|---|---|
For Aircraft with 1–2 Wheels | For Aircraft with 3 or More Wheels | ||
Asphalt surface (P-401) | 75 mm | 76 mm | 127 mm |
Crushed rock (P-209) | 150 mm | As required | As required |
Uncrushed gravel (P-154) | As required | Not used | Not used |
Subgrade | Infinite | Infinite | Infinite |
Layer | Thickness under ACN–PCN System | Thickness under ACR–PCR System |
---|---|---|
Concrete base (P-501) | As required | As required |
Crushed rock (P-209) | Combined with subgrade | 200 mm |
Subgrade | Infinite | Infinite |
Subgrade Category | ACN–PCN System | ACR–PCR System | ||
---|---|---|---|---|
Nominal CBR | CBR Range | Nominal CBR | CBR Range | |
A | 15 | 13 and above | 20 | 15 and above |
B | 10 | 8–12 | 12 | 10–14 |
C | 6 | 4–8 | 8 | 6–9 |
D | 3 | 4 and below | 5 | 5 and below |
Wheel Load (t) | Tire Pressure (kPa) | ||||||||
---|---|---|---|---|---|---|---|---|---|
<500 | 500–750 | 750–1000 | 1000–1250 | 1250–1500 | 1500–1750 | 1750–2000 | 2000–2250 | >2250 | |
<5 | 11 | 14 | 16 | 17 | 18 | 19 | 19 | 19 | 20 |
5–10 | 13 | 17 | 19 | 21 | 22 | 23 | 24 | 24 | 24 |
10–15 | 14 | 18 | 21 | 23 | 24 | 26 | 27 | 27 | 27 |
15–20 | 15 | 19 | 22 | 24 | 26 | 27 | 28 | 29 | 31 |
20–25 | 15 | 19 | 23 | 25 | 27 | 28 | 29 | 30 | 31 |
25–30 | 15 | 20 | 23 | 26 | 28 | 29 | 30 | 32 | 33 |
30–35 | 15 | 20 | 24 | 26 | 28 | 30 | 32 | 32 | 34 |
>35 | 15 | 20 | 24 | 26 | 29 | 31 | 32 | 33 | 35 |
ACR–PCR Subgrade Category | Representative Modulus Value (MPa) | Allowable Aircraft Mass (Tonnes) |
---|---|---|
A | 200 | 26.0 |
B | 120 | 15.1 |
C | 80 | 9.9 |
D | 50 | 7.4 |
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White, G. Critical Review and Potential Improvement of the New International Airport Pavement Strength Rating System. Appl. Sci. 2024, 14, 8491. https://doi.org/10.3390/app14188491
White G. Critical Review and Potential Improvement of the New International Airport Pavement Strength Rating System. Applied Sciences. 2024; 14(18):8491. https://doi.org/10.3390/app14188491
Chicago/Turabian StyleWhite, Greg. 2024. "Critical Review and Potential Improvement of the New International Airport Pavement Strength Rating System" Applied Sciences 14, no. 18: 8491. https://doi.org/10.3390/app14188491
APA StyleWhite, G. (2024). Critical Review and Potential Improvement of the New International Airport Pavement Strength Rating System. Applied Sciences, 14(18), 8491. https://doi.org/10.3390/app14188491