Wells-Riley model

The Wells-Riley model is a simple model of the airborne transmission of infectious diseases,[1][2] developed by William F. Wells and Richard L. Riley for tuberculosis[3] and measles.[4]

Wells-Riley can also be applied to other diseases transmitted in the air, such as COVID-19.[5][6][7] The model describes the situation where one or more infected people are sharing a room (and so the room air) with other people who are susceptible to infection. It makes predictions for the probability that a susceptible person becomes infected. The prediction is that infection is more likely for small poorly ventilated rooms, and if the infected person is highly infectious.

The Wells-Riley is a highly simplified model of a very complex process, but does at least make predictions for how the probability of infection varies with things within our control, such as room ventilation.

Description of model

Wells-Riley assumes that the air contains doses of the infectious bacterium or virus, and that you become infected if you breathe one dose in, i.e., the probability a person becomes infected, , is given by[1][2]

This dose is not a single bacterium or virus, but however many are needed to start an infection. These infectious doses are sometimes called 'quanta' - no relation to quantum physics. The doses are breathed out or otherwise emitted by the infectious person into the air of the room, such that in the room there is a concentration of these doses per unit volume of the air. If you are breathing in air at volume rate , then after a time in the room, the

The Wells-Riley then relies on standard Poisson statistics which predicts for the probability of infection

after a time in the room. This is just the Poisson statistics expression for the probability of one or more doses being inhaled, once we know the mean number.

So the prediction is that you are more likely to become infected if the concentration of infectious doses in the room air is high, or if you spend longer in the room. The concentration of doses will tend to be high in small, poorly ventilated rooms, and smaller in larger, better ventilated rooms.

Relation of the Wells-Riley model to epidemiology

Note that the Wells-Riley model approaches transmission of an airborne diseases as a physical transport problem, i.e., as the problem of how a virus or bacterium gets from one human body to another.

For transmission of COVID-19, for example, this would be how a virus breathed out by an infected person, can cross a room and be breathed in by a susceptible person. This is a different approach from that taken in the epidemiology of infectious diseases, which may gather information about who (e.g., nurses, factory workers) becomes infected, in what situations (e.g., the home, factories), and understand the spread of a disease in those terms - without considering how a virus or bacterium actually gets from one person to another.

However, the probability of infection predicted by the Wells-Riley model is close to the attack rate (also called secondary attack rate, and note that this 'rate' is a probability not a rate) in epidemiology. Compare the definition of in this page with the definition of the attack rate.

Mechanism of transmission of infectious diseases through the air

Wells-Riley is only applicable for transmission directly via the air, not via the susceptible person picking up the infectious agent from a surface (fomite transmission).[1] Because the model assumes the air is well mixed it does not account for the region within one or two metres of an infected person, having a higher concentration of the infectious agent. Breathing and speaking produce a cone of warm (body temperature), humid air that moves out into and dissipates into the room air over a distance of about one to two metres,[8] while a sneeze, with its much faster moving air, produces air movement up to metres away.[9] If the person breathing/speaking/sneezing is infected then an infectious agent such as tuberculosis bacterium or a respiratory virus is expected to be more concentrated in this cone of air, but the infectious agent can also (at least in some cases) spread into the room air.[10]

Assumptions made by the Wells-Riley model

Estimating the number of inhaled doses requires more assumptions. The assumptions made by the model are essentially:[2][1]

  • That the air contains the infectious agent in the form of doses of fixed size.
  • That infection occurs whenever a dose is breathed in.
  • That an infected person breathes out doses at some constant rate .
  • That the air inside the room is well-mixed, i.e., that when these doses are breathed out, they rapidly become uniformly distributed in the air.
  • That the doses have some lifetime , before being removed. This is due to a combination of the infectious agent leaving the air, and it decaying/dying.
  • That the air is at steady state, i.e., concentration of doses in the air is not changing with time.

Assumptions 4 to 6 mean that the concentration of doses in the room air, , is

Doses can be removed in three ways:

  • The infectious agent can decay or die. Viruses in particular are known to be fragile and often short-lived outside their host.
  • The dose can fall from the air onto a surface such as the floor.
  • Room ventilation or filtration can either remove the air containing the dose to the outside, or filter the dose from the air.

Assuming we can add the rates of these processes

for the lifetime of the infectious agent in air, the lifetime of a dose in the air before settling onto a surface or the floor, and the lifetime of the dose before it is removed by room ventilation or filtration. Then the concentration of doses is

If the susceptible person spends a time inside the room and inhales air at a rate (volume per unit time) then they inhale a volume and so a number of infectious doses

or

Prediction equation

Putting all this together, the Wells-Riley prediction for the probability of infection is

where:

  • is breathing out rate of an infected person
  • is a person inhaling rate
  • is the time a person spends in the room
  • is the volume of the room
  • is the lifetime of the infectious agent in the air
  • is the lifetime of a dose in the air before settling on a surface
  • is the lifetime of a dose before it is removed from the room by ventilation or filtration

The lifetime of room air is just one over the air changes per hour - one measure of how well ventilated a room is. Building standards recommend several air changes per hour, in which case will be tens of minutes.

Relation to carbon dioxide concentration in a room

The Wells-Riley model assumes that an infected person continuously breathes out infectious virus. They will also continuously breathe out carbon dioxide, and so excess carbon dioxide concentration has been proposed as a proxy infection risk.[11][12][13] In other words, the higher the carbon dioxide concentration in a room, the higher the risk of infection by an airborne disease. The excess concentration of carbon dioxide is that over the background level in the Earth's atmosphere, which is assumed to come from human respiration (in the absence of another source such as fire).[11][12][13] Then the excess concentration of carbon dioxide is[13]

for people each exhaling carbon dioxide at a rate . Carbon dioxide neither sediments out (it is a molecule) nor decays, leaving ventilation as the only process that removes it. In the second equality we used , i.e., the rate of production of carbon dioxide is the breathing rate (volume of air exhaled per second = volume of air inhaled per second) times the concentration of carbon dioxide in exhaled breath .[13] Note that this implies that we can estimate how well ventilated a room is[13] if we know how many people are in the room, and the room's volume, from

If for the virus ventilation is the dominant route for removal of the virus, i.e., , the Wells-Riley prediction for the infection probability is then

which predicts that the higher the room concentration of carbon dioxide, the higher the infection risk.

Application to COVID-19

Although originally developed for other diseases such as tuberculosis, Wells-Riley has been applied[5][14] to try and understand (the still poorly understood[15][16]) transmission of COVID-19, notably for a superspreading event in a chorale rehearsal in Skagit Valley (USA).[5]

The Wells-Riley model is implemented as an interactive Google Sheets spreadsheet,[6] and interactive apps showing estimates of the probability of infection.[17] Even for the simple Wells-Riley model, the infection probability, , depends on seven parameters. The probability of becoming infected is predicted to increase with how infectious the person is ( - which may peak around the time of the onset of symptoms and is likely to vary hugely from one infectious person to another,[2][15] how rapidly they are breathing (which for example will increase with exercise), the length of the time they are in the room, as well as the lifetime of the virus in the room air.

This lifetime can be reduced by both ventilation and by removing the virus by filtration. Large rooms also dilute the infectious agent and so reduce risk - although this assumes that the air is well mixed - a highly approximate assumption.[2][8][10] A study of a COVID-19 transmission event in a restaurant in Guangzhou, went beyond this well-mixed approximation, to show that a group of three tables shared air with each other, to a greater extent than with the remainder of the (poorly ventilated) restaurant.[18] One infected person on one of these tables (a few metres apart) infected people on the other two tables.

The COVID-19 pandemic has led to work on improving the Wells-Riley model to account for factors such as the virus being in droplets of varying size which have varying lifetimes,[19] and an improved model[19] also has an interactive app.[20]

References

  1. Sze To GN, Chao CY (February 2010). "Review and comparison between the Wells-Riley and dose-response approaches to risk assessment of infectious respiratory diseases". Indoor Air. 20 (1): 2–16. doi:10.1111/j.1600-0668.2009.00621.x. PMC 7202094. PMID 19874402.
  2. Noakes CJ, Beggs CB, Sleigh PA, Kerr KG (October 2006). "Modelling the transmission of airborne infections in enclosed spaces". Epidemiology and Infection. 134 (5): 1082–91. doi:10.1017/S0950268806005875. PMC 2870476. PMID 16476170.
  3. Riley RL (January 2001). "What nobody needs to know about airborne infection". American Journal of Respiratory and Critical Care Medicine. 163 (1): 7–8. doi:10.1164/ajrccm.163.1.hh11-00. PMID 11208616.
  4. Riley EC, Murphy G, Riley RL (May 1978). "Airborne spread of measles in a suburban elementary school". American Journal of Epidemiology. 107 (5): 421–32. doi:10.1093/oxfordjournals.aje.a112560. PMID 665658.
  5. Miller SL, Nazaroff WW, Jimenez JL, Boerstra A, Buonanno G, Dancer SJ, et al. (March 2021). "Transmission of SARS-CoV-2 by inhalation of respiratory aerosol in the Skagit Valley Chorale superspreading event". Indoor Air. 31 (2): 314–323. doi:10.1111/ina.12751. PMC 7537089. PMID 32979298.
  6. Jimenez JL, Peng Z. "COVID-19 Aerosol Transmission Estimator".
  7. Peng, Z.; Rojas, A.L. Pineda; Kropff, E.; Bahnfleth, W.; Buonanno, G.; Dancer, S.J.; Kurnitski, J.; Li, Y.; Loomans, M.G.L.C.; Marr, L.C.; Morawska, L. (2022-01-18). "Practical Indicators for Risk of Airborne Transmission in Shared Indoor Environments and Their Application to COVID-19 Outbreaks". Environmental Science & Technology. 56 (2): 1125–1137. doi:10.1021/acs.est.1c06531. hdl:10261/259515. ISSN 0013-936X. PMID 34985868. S2CID 245771265.
  8. Yang F, Pahlavan AA, Mendez S, Abkarian M, Stone HA (2020-12-01). "Towards improved social distancing guidelines: Space and time dependence of virus transmission from speech-driven aerosol transport between two individuals". Physical Review Fluids. 5 (12): 122501. Bibcode:2020PhRvF...5l2501Y. doi:10.1103/PhysRevFluids.5.122501. ISSN 2469-990X.
  9. Bourouiba L (May 2020). "Turbulent Gas Clouds and Respiratory Pathogen Emissions: Potential Implications for Reducing Transmission of COVID-19". JAMA. 323 (18): 1837–1838. doi:10.1001/jama.2020.4756. PMID 32215590.
  10. Jones NR, Qureshi ZU, Temple RJ, Larwood JP, Greenhalgh T, Bourouiba L (August 2020). "Two metres or one: what is the evidence for physical distancing in covid-19?". BMJ. 370: m3223. doi:10.1136/bmj.m3223. PMID 32843355.
  11. Peng, Zhe; Jimenez, Jose L. (2021-05-11). "Exhaled CO2 as a COVID-19 Infection Risk Proxy for Different Indoor Environments and Activities". Environmental Science & Technology Letters. 8 (5): 392–397. doi:10.1021/acs.estlett.1c00183. PMC 8043197.
  12. Burridge, Henry C.; Fan, Shiwei; Jones, Roderic L.; Noakes, Catherine J.; Linden, P. F. (2021-09-28). "Predictive and retrospective modelling of airborne infection risk using monitored carbon dioxide". Indoor and Built Environment. 31 (5): 1363–1380. doi:10.1177/1420326X211043564. ISSN 1420-326X. S2CID 244244848.
  13. Rudnick, S. N.; Milton, D. K. (2003). "Risk of indoor airborne infection transmission estimated from carbon dioxide concentration: Indoor airborne transmission of infectious diseases". Indoor Air. 13 (3): 237–245. doi:10.1034/j.1600-0668.2003.00189.x. PMID 12950586.
  14. Evans, Matthew J. (2020-05-25). "Avoiding COVID-19: Aerosol Guidelines". medRxiv 10.1101/2020.05.21.20108894.
  15. Tang JW, Bahnfleth WP, Bluyssen PM, Buonanno G, Jimenez JL, Kurnitski J, et al. (April 2021). "Dismantling myths on the airborne transmission of severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2)". The Journal of Hospital Infection. 110: 89–96. doi:10.1016/j.jhin.2020.12.022. PMC 7805396. PMID 33453351.
  16. Leung NH (March 2021). "Transmissibility and transmission of respiratory viruses". Nature Reviews. Microbiology. 19 (8): 528–545. doi:10.1038/s41579-021-00535-6. PMC 7982882. PMID 33753932.
  17. Wei-Haas M, Elliot K (11 August 2020). "Measure the risk of airborne COVID-19 in your office, classroom, or bus ride". National Geographic.
  18. Li Y, Qian H, Hang J, Chen X, Cheng P, Ling H, et al. (June 2021). "Probable airborne transmission of SARS-CoV-2 in a poorly ventilated restaurant". Building and Environment. 196: 107788. doi:10.1016/j.buildenv.2021.107788. PMC 7954773. PMID 33746341.
  19. Bazant, Martin Z.; Bush, John W. M. (2021-04-27). "A guideline to limit indoor airborne transmission of COVID-19". Proceedings of the National Academy of Sciences. 118 (17): e2018995118. doi:10.1073/pnas.2018995118. ISSN 0027-8424. PMC 8092463. PMID 33858987.
  20. "COVID-19 Indoor Safety Guideline". indoor-covid-safety.herokuapp.com. Retrieved 2021-04-24.
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