Keyword search (4,163 papers available)

"sars-cov-2" Keyword-tagged Publications:

Title Authors PubMed ID
1 Energy Measures as Biomarkers of SARS-CoV-2 Variants and Receptors Ghannoum Al Chawaf K; Lahmiri S; 41596038
JMSB
2 Emerging hazardous chemicals and biological pollutants in Canadian aquatic systems and remediation approaches: A comprehensive status report Adeola AO; Paramo L; Fuoco G; Naccache R; 39278485
CHEMBIOCHEM
3 Insomnia symptoms among older adults during the first year of the COVID-19 pandemic: A longitudinal study Gong K; Garneau J; Grenier S; Vasiliadis HM; Dang-Vu TT; Dialahy IZ; Gouin JP; 37380593
HKAP
4 Two Chemical Engineers Look at the COVID-19 Pandemic De Visscher A; Pinheiro Patrício PC; 35942051
ENCS
5 Evaluating SARS-CoV-2 airborne quanta transmission and exposure risk in a mechanically ventilated multizone office building Yan S; Wang LL; Birnkrant MJ; Zhai J; Miller SL; 35602249
ENCS
6 Predicted coronavirus Nsp5 protease cleavage sites in the human proteome Scott BM; Lacasse V; Blom DG; Tonner PD; Blom NS; 35379171
ENCS
7 COVID-19-Related Concerns and Symptoms of Anxiety: Does Concern Play a Role in Predicting Severity and Risk? Benzouak T; Gunpat S; Briner EL; Thake J; Kisely S; Rao S; 34987892
PSYCHOLOGY
8 Removal of SARS-CoV-2 using UV+Filter in built environment: simulation/evaluation by utilizing validated numerical method Feng Z; Cao SJ; Haghighat F; 34367884
ENCS
9 Structure-Based Virtual Screening Reveals Ibrutinib and Zanubrutinib as Potential Repurposed Drugs against COVID-19 Kaliamurthi S; Selvaraj G; Selvaraj C; Singh SK; Wei DQ; Peslherbe GH; 34209188
CHEMBIOCHEM
10 Exploring the Role of Glycans in the Interaction of SARS-CoV-2 RBD and Human Receptor ACE2 Nguyen K; Chakraborty S; Mansbach RA; Korber B; Gnanakaran S; 34067878
PHYSICS
11 Are the Allergic Reactions of COVID-19 Vaccines Caused by mRNA Constructs or Nanocarriers? Immunological Insights Selvaraj G; Kaliamurthi S; Peslherbe GH; Wei DQ; 34021862
CHEMBIOCHEM
12 Tools and Techniques for Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2)/COVID-19 Detection Safiabadi Tali SH; LeBlanc JJ; Sadiq Z; Oyewunmi OD; Camargo C; Nikpour B; Armanfard N; Sagan SM; Jahanshahi-Anbuhi S; 33980687
IMAGING
13 Indoor airborne disinfection with electrostatic disinfector (ESD): Numerical simulations of ESD performance and reduction of computing time Feng Z; Cao SJ; Wang J; Kumar P; Haghighat F; 33994653
ENCS
14 Identifying potential drug targets and candidate drugs for COVID-19: biological networks and structural modeling approaches Selvaraj G; Kaliamurthi S; Peslherbe GH; Wei DQ; 33968364
CERMM
15 Identifying and addressing psychosocial determinants of adherence to physical distancing guidance during the COVID-19 pandemic - project protocol. Durand H, Bacon SL, Byrne M, Kenny E, Lavoie KL, McGuire BE, Mc Sharry J, Meade O, Mooney R, Noone C, O'Connor LL, O'Flaherty K, Molloy GJ 33490860
HKAP
16 Designing a hybrid reinforcement learning based algorithm with application in prediction of the COVID-19 pandemic in Quebec. Khalilpourazari S, Hashemi Doulabi H 33424076
ENCS
17 The COVID-19 pandemic: model-based evaluation of non-pharmaceutical interventions and prognoses. De Visscher A 32836820
ENCS

 

Title:Two Chemical Engineers Look at the COVID-19 Pandemic
Authors:De Visscher APinheiro Patrício PC
Link:https://pubmed.ncbi.nlm.nih.gov/35942051/
DOI:10.1002/cjce.24557
Publication:The Canadian journal of chemical engineering
Keywords:Chemical EngineeringEpidemiological ModelMortality RateSARS-CoV-2
PMID:35942051 Category: Date Added:2022-08-09
Dept Affiliation: ENCS
1 Department of Chemical and Materials Engineering Gina Cody School of Engineering and Computer Science, Concordia University, Montreal Quebec Canada.

Description:

Chemical engineering involves a skill set that is transferrable to a broad range of other areas. A case in point is the work that is being done by chemical engineers to better understand and fight the COVID-19 epidemic. In this study, we consider a problem that has eluded the COVID-19 research community, which is nevertheless very tractable with a chemical engineering mindset: the true or intrinsic mortality rate of COVID-19, i.e., the fraction or percentage of COVID-19 infected people that die of the disease. We solve this problem in two locations (Spain and the state of New York) for the epidemic's first wave with a combination of daily death data, a fit of a computer simulation of an epidemiological model with adjustable parameters, and independent results of immunological blood testing on a random sample of the population. Parallels are drawn with the problem of determining the turnover frequency of a catalyst based on a similar combination of data and approaches. It is concluded from the study that the intrinsic mortality rate of COVID-19 was 1.45 ± 0.45 % during the first wave, a number that reflects OECD countries. By incorporating data on the age dependence of the mortality rate, a relationship f mort = (3.0 ± 0.7)×10-5 exp(0.1a), where a is the age in years, is tentatively put forward for the mortality rate as a fraction. This article is protected by copyright. All rights reserved.





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