Skip to main navigation Skip to main content

CEEM : Clinical and Experimental Emergency Medicine

OPEN ACCESS
ABOUT
BROWSE ARTICLES
FOR CONTRIBUTORS

Articles

Original Article
Resuscitation | Education & Simulation

Chest compression quality, exercise intensity, and energy expenditure during cardiopulmonary resuscitation using compression-to-ventilation ratios of 15:1 or 30:2 or chest compression only: a randomized, crossover manikin study

Clinical and Experimental Emergency Medicine 2016;3(3):148-157.
Published online: September 30, 2016

1Department of Emergency Medicine, The Catholic University of Korea College of Medicine, Seoul, Korea

2Department of Emergency Medicine, Hankook General Hospital, Jeju, Korea

3Department of Family Medicine, The Catholic University of Korea College of Medicine, Seoul, Korea

4Department of Preventive Medicine, The Catholic University of Korea College of Medicine, Seoul, Korea

5CMC Clinical Research Coordinating Center, The Catholic University of Korea, Seoul, Korea

Correspondence to: Young-Min Kim  Department of Emergency Medicine, Seoul St. Mary’s Hospital, 222 Banpo-daero, Seocho-gu, Seoul 06591, Korea  E-mail: emart@catholic.ac.kr
• Received: April 20, 2016   • Revised: May 22, 2016   • Accepted: May 22, 2016

Copyright © 2016 The Korean Society of Emergency Medicine

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/).

  • 14,570 Views
  • 133 Download
  • 17 Web of Science
  • 16 Crossref
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • Muscular fitness thresholds for predicting high-quality CPR: A crossover study of two compression strategies
    Chih-Hsien Chi, Chia-Lung Kao, Ming-Yuan Hong, Su-Chun Cheng, Jui-Yi Tsou
    The American Journal of Emergency Medicine.2026; 100: 148.     CrossRef
  • Effect of 24-h Shifts on Cardiopulmonary Resuscitation Performance and Fatigue: A Simulation-Based Study
    Abdul Samet Sahin, Emre Dilaver, Kaan Basar Candas, Ozgen Gonen Cekic, Muhammet Fatih Beser, Melih Imamoglu, Sinan Pasli
    The Journal of Emergency Medicine.2026; 82: 99.     CrossRef
  • Impact of Cardiopulmonary Resuscitation Health Care Workers' Physical Health Parameters on Cardiopulmonary Resuscitation Performance Quality in Simulated Manikin-Based Settings—A Systematic Review
    Prabha Prakash, Kirtana R. Nayak, Abraham S. Babu, Elsa S. Devi, Souvik Chaudhuri, Dinker R. Pai, Vimal Krishnan S
    JACEP Open.2026; 7(3): 100395.     CrossRef
  • Impact of rescuer position, arm angle, and anthropometric variables on muscle fatigue during cardiopulmonary resuscitation: an international multicentric randomized crossover simulation study
    Carla Sa-Couto, Pedro Sa-Couto, Abel Nicolau, Marc Lazarovici, Christoffer Ericsson, Pedro Vieira-Marques, Ingrid Bispo
    Resuscitation Plus.2025; 24: 100971.     CrossRef
  • Measuring the Effect of Off-Balancing Vectors on the Delivery of High-Quality CPR during Ambulance Transport: A Proof of Concept Study
    Martin A. C. Manoukian, Bryn E. Mumma, Jenny L. Wagner, Matthew T. Linvill, John S. Rose
    Prehospital Emergency Care.2024; 28(1): 107.     CrossRef
  • How Does Rescuer Fitness Affect the Quality of Prolonged Cardiopulmonary Resuscitation?
    Gabe D. Lancaster, Joshua D. Stilley, Warren D. Franke
    Prehospital Emergency Care.2022; 26(2): 195.     CrossRef
  • Effect of rotating providers on chest compression performance during simulated neonatal cardiopulmonary resuscitation
    Tavleen Sandhu, Edgardo G. Szyld, Michael P. Anderson, Birju A. Shah, Jayasree Nair
    PLOS ONE.2022; 17(3): e0265072.     CrossRef
  • Correlation between real-time heart rate and fatigue in chest compression providers during cardiopulmonary resuscitation
    Go Eun Bae, Arom Choi, Jin Ho Beom, Min Joung Kim, Hyun Soo Chung, In Kyung Min, Sung Phil Chung, Ji Hoon Kim
    Medicine.2021; 100(16): e25425.     CrossRef
  • Modified Two-Rescuer CPR With a Two-Handed Mask-Face Seal Technique Is Superior To Conventional Two-Rescuer CPR With a One-Handed Mask-Face Seal Technique
    Louis Gerber, Martin Botha, Abdullah E. Laher
    The Journal of Emergency Medicine.2021; 61(3): 252.     CrossRef
  • Quality of chest compressions during pediatric resuscitation with 15:2 and 30:2 compressions-to-ventilation ratio in a simulated scenario
    Gema Manrique, Araceli González, Maitane Iguiñiz, Ana Grau, Blanca Toledo, Miriam García, Jesús López-Herce
    Scientific Reports.2020;[Epub]     CrossRef
  • Measuring the physiological impact of extreme heat on lifeguards during cardiopulmonary resuscitation. Randomized simulation study
    Roberto Barcala-Furelos, María Fernández-Méndez, Francisco Cano-Noguera, Martín Otero-Agra, Ricardo Morán-Navarro, Santiago Martínez-Isasi
    The American Journal of Emergency Medicine.2020; 38(10): 2019.     CrossRef
  • Physiological Response of Quality Cardiopulmonary Resuscitation, Crossover Trial on Mannequin in Extreme Temperature Conditions
    José Luis Martin-Conty, Begoña Polonio-López, Clara Maestre-Miquel, Alicia Mohedano-Moriano, Carlos Durantez-Fernández, Laura Mordillo-Mateos, Jesús Jurado-Palomo, Antonio Viñuela, Juan José Bernal-Jiménez, Francisco Martin-Rodríguez
    International Journal of Environmental Research and Public Health.2020; 17(16): 5835.     CrossRef
  • How Health Habits Influence the Physiological Response During a Physical Activity in Extreme Temperatures?
    José Luis Martin-Conty, Francisco Martin-Rodríguez, Juan José Criado-Álvarez, Carlos Alberto Castillo-Sarmiento, Clara Maestre-Miquel, Alicia Mohedano-Moriano, Begoña Polonio-López, Carlos Durantez-Fernández, Miguel Ángel Castro-Villamor, Antonio Viñuela
    International Journal of Environmental Research and Public Health.2020; 17(17): 6374.     CrossRef
  • Chest Compression Duration May Be Improved When Rescuers Breathe Supplemental Oxygen
    Anna Clebone, Katherine Reis, Avery Tung, Michael OConnor, Keith J. Ruskin
    Aerospace Medicine and Human Performance.2020; 91(12): 918.     CrossRef
  • Using a smartwatch with real-time feedback improves the delivery of high-quality cardiopulmonary resuscitation by healthcare professionals
    Tsung-Chien Lu, Yao-Ting Chang, Te-Wei Ho, Yi Chen, Yi-Ting Lee, Yu-Siang Wang, Yen-Pin Chen, Chu-Lin Tsai, Matthew Huei-Ming Ma, Cheng-Chung Fang, Feipei Lai, Hendrika W. Meischke, Anne M. Turner
    Resuscitation.2019; 140: 16.     CrossRef
  • Single Ventilation during Cardiopulmonary Resuscitation Results in Better Neurological Outcomes in a Porcine Model of Cardiac Arrest
    Yong Won Kim, Hyung Il Kim, Sung Oh Hwang, Yoon Seop Kim, Gyo Jin An, Kyoung-Chul Cha
    Yonsei Medical Journal.2018; 59(10): 1232.     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

Chest compression quality, exercise intensity, and energy expenditure during cardiopulmonary resuscitation using compression-to-ventilation ratios of 15:1 or 30:2 or chest compression only: a randomized, crossover manikin study
Clin Exp Emerg Med. 2016;3(3):148-157.   Published online September 30, 2016
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
Chest compression quality, exercise intensity, and energy expenditure during cardiopulmonary resuscitation using compression-to-ventilation ratios of 15:1 or 30:2 or chest compression only: a randomized, crossover manikin study
Clin Exp Emerg Med. 2016;3(3):148-157.   Published online September 30, 2016
Close

Figure

  • 0
  • 1
  • 2
Chest compression quality, exercise intensity, and energy expenditure during cardiopulmonary resuscitation using compression-to-ventilation ratios of 15:1 or 30:2 or chest compression only: a randomized, crossover manikin study
Image Image Image
Fig. 1. A participant wearing the MetaMax 3B system during the cardiopulmonary resuscitation experiment.
Fig. 2. Time-serial estimated marginal mean plots of percentage of adequate compression for minutes 1 to 5. (A) All participants, (B) men, and (C) women. CCO, chest compression only.
Fig. 3. Time-serial estimated marginal mean plots of ratings of perceived exertion for minutes 1 to 5. (A) All participants, (B) men, and (C) women. CCO, chest compression only.
Chest compression quality, exercise intensity, and energy expenditure during cardiopulmonary resuscitation using compression-to-ventilation ratios of 15:1 or 30:2 or chest compression only: a randomized, crossover manikin study
All subjects (n=47) Men (n=25) Women (n=22) P-value
Age (yr) 22.1±2.3 22.0±1.5 22.1±3.0 0.524
Height (cm) 168.3±8.4 174.0±6.8 161.7±4.4 < 0.001
Weight (kg) 62.0±12.0 70.90±9.0 51.9±4.9 < 0.001
BMI (kg/m2) 21.9±2.9 23.7±2.5 19.8±1.8 < 0.001
VO2max (mL/kg/min) 50.9±12.3 51.6±12.7 50.2±12.0 0.586
Endurance (%) 65.7±12.4 69.1±11.3 61.9±12.7 0.685
Muscle strength (kg) 23.2±10.6 31.2±8.1 14.2±13.0 < 0.001
Muscle power (W) 342.5±140.9 463.4±70.3 205.1±26.3 < 0.001
Reactive agility (msec) 577.1±86.9 552.9±95.5 604.7±68.1 0.037
C:V ratio
CCO P-value
15:1 30:2
Total compressions (n) 394.4±36.4 408.2±29.2 555.3±29.0 <0.001
Mean compression rate (n/min) 108.2±6.5 107.2±5.2 110.1±5.7 0.051
PAC (%)
 Mean 55.1±37.5 54.0±36.9 31.2±30.3 <0.001
 1 min 74.6±35.9 70.4±36.5 62.3±36.7 0.048
 2 min 66.8±41.3 65.8±39.3 41.7±38.8 <0.001
 3 min 60.2±42.1 58.9±40.9 31.2±38.5 <0.001
 4 min 49.3±43.2 52.2±41.9 25.7±37.3 <0.001
 5 min 45.9±43.1 47.1±42.2 19.7±33.9 <0.001
Hands-off time (sec)
 Total 91.3±17.9 76.2±10.2 0.6±1.6 <0.001
 Mean 3.6±1.1 5.5±1.6 0.5±1.6 <0.001
C:V ratio
CCO P-value
15:1 30:2
Total compressions (n) 387.3±31.3 400.1±25.2 563.8±28.3 <0.001
Mean compression rate (n/min) 107.1±4.9 105.4±4.8 111.7±5.5 -a)
PAC (%)
 Mean 79.5±25.1 61.1±35.4 45.9±28.3 -a)
 1 min 95.4±11.4 74.8±33.0 81.9±21.4 -a)
 2 min 92.5±15.8 72.7±36.5 61.8±32.9 0.004
 3 min 85.7±26.2 65.8±39.0 48.4±39.1 0.002
 4 min 78.5±32.5 60.9±40.1 41.9±40.8 0.004
 5 min 70.8±36.6 56.7±41.1 32.1±38.8 0.001
Hands-off time (sec)
 Total 90.9±20.0 76.8±12.4 0.7±2.1 <0.001
 Mean 3.6±1.3 5.7±1.7 0.6±2.1 <0.001
C:V ratio
CCO P-value
15:1 30:2
Total compression (n) 402.4±40.7 417.4±31.3 545.6±27.3 <0.001
Mean compression rate (n/min) 109.4±7.8 109.2±5.1 108.2±5.6 0.700
PAC (%)
 Mean 27.3±29.1 45.9±37.8 14.5±23.2 <0.001
 1 min 50.9±39.7 65.3±40.3 40.0±38.1 0.028
 2 min 37.6±42.1 58.0±41.6 18.9±32.1 <0.001
 3 min 31.3±38.2 51.1±42.5 11.7±27.4 <0.001
 4 min 16.0±26.7 42.2±42.5 7.2±21.9 <0.001
 5 min 17.7±31.2 36.3±41.7 5.6±20.4 0.001
Hands-off time (sec)
 Total 91.7±15.6 75.5±7.2 0.5±0.9 <0.001
 Mean 3.6±0.9 5.3±1.4 0.4±0.7 <0.001
C:V ratio
CCO P-value
15:1 30:2
Mean RPE score
 1 min 9.64±2.21 9.72±2.10 10.83±2.08 <0.001
 2 min 11.21±2.61 11.04±2.30 13.00±2.13 <0.001
 3 min 12.45±2.23 12.83±2.24 14.45±2.27 <0.001
 4 min 13.17±2.43 13.89±2.24 15.47±2.18 <0.001
 5 min 14.11±2.56 14.62±2.23 16.62±2.03 <0.001
Heart rate
 Initial 92.23±16.51 91.92±15.00 90.75±15.27 0.712
 Peak 118.38±19.35 121.23±16.38 128.57±20.45 <0.001
 Change (peak-initial) 26.15±14.40 29.32±13.40 37.83±18.56 <0.001
VO2max (mL/kg/min)
 1 min 23.73±11.87 24.07±15.99 20.33±11.04 0.122
 2 min 27.45±18.56 26.14±12.71 24.01±10.55 -a)
 3 min 28.57±16.31 23.74±9.94 24.45±10.41 -a)
 4 min 28.33±17.42 25.01±12.49 24.25±10.77 0.217
 5 min 25.50±11.96 25.08±11.12 23.67±11.29 0.521
Energy expenditure (kcal/min) 19.29±6.10 17.46±4.77 16.49±4.35 0.016
C:V ratio
CCO P-value
15:1 30:2
Mean RPE score
 1 min 8.9±1.4 9.1±1.4 9.7±1.5 0.016
 2 min 10.4±1.7 10.2±1.4 11.6±1.7 <0.001
 3 min 11.6±1.8 12.1±1.7 13.1±1.8 0.005
 4 min 12.3±2.2 13.1±1.9 14.2±1.7 < 0.001
 5 min 13.2±2.3 13.9±2.2 15.3±1.7 < 0.001
Heart rate
 Initial 87.7±15.7 90.7±13.1 91.3±12.6 0.397
 Peak 115.2±19.1 115.6±14.8 121.8±16.8 0.053
 Change (peak-initial) 27.5±16.1 24.9±10.9 30.5±15.2 0.227
VO2max (mL/kg/min)
 1 min 21.49±10.31 25.03±18.35 19.72±12.72 0.114
 2 min 30.56±23.98 27.17±13.84 23.04±10.66 0.104
 3 min 26.76±14.82 23.57±10.86 23.49±11.76 0.415
 4 min 25.09±14.05 24.53±15.88 23.14±11.27 0.536
 5 min 23.66±11.85 26.54±13.45 23.35±13.02 0.187
Energy expenditure (kcal/min) 20.9±5.6 19.5±5.0 18.2±4.8 0.119
C:V ratio
CCO P-value
15:01 30:2
Mean RPE score
 1 min 10.5±2.7 10.5±2.6 12.1±1.9 0.001
 2 min 12.2±3.1 12.0±2.7 14.6±1.4 0.001
 3 min 13.5±2.3 13.6±2.5 16.0±1.7 < 0.001
 4 min 14.2±2.3 14.8±2.3 16.9±1.7 < 0.001
 5 min 15.1±2.5 15.5±1.9 18.1±1.2 < 0.001
Heart rate
 Initial 97.4±16.2 93.3±17.1 90.1±18.1 0.601
 Peak 121.9±19.5 127.7±15.9 136.2±21.9 0.002
 Change (peak-initial) 24.6±12.3 34.4±14.4 46.1±18.8 < 0.001
VO2max (mL/kg/min)
 1 min 26.28±13.20 22.98±13.15 21.07±8.89 0.604
 2 min 23.93±8.54 24.96±11.50 25.18±10.55 0.829
 3 min 30.62±17.98 23.93±9.02 25.54±8.77 0.285
 4 min 32.02±20.31 25.55±7.28 25.52±10.30 0.375
 5 min 27.59±12.00 23.41±7.66 24.04±9.22 0.318
Energy expenditure (kcal/min) 17.4±6.2 15.1±3.2 14.5±2.7 0.202
Table 1. General characteristics of study subjects

Data are presented as mean±standard deviation.

BMI, body mass index; VO2max, maximal oxygen uptake.

Table 2. Quality of chest compression for each type of CPR

Data are presented as mean±standard deviation.

CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression only; PAC, percentage of adequate compression.

Table 3. Quality of chest compression for each type of CPR performed by male students

Data are presented as mean±standard deviation.

CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression only; PAC, percentage of adequate compression.

The carryover effects among the 3 groups were significant.

Table 4. Quality of chest compression for each type of CPR performed by female students

Data are presented as mean±standard deviation.

CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression-only; PAC, percentage of adequate compression.

Table 5. Perceived exertion, heart rate, VO2max, and energy expenditure for each type of CPR

Data are presented as mean±standard deviation.

VO2max, maximal oxygen uptake; CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression-only; RPE, ratings of perceived exertion.

The carryover effects among the 3 groups were significant.

Table 6. Perceived exertion, heart rate, VO2max, and energy expenditure for each type of CPR performed by male students

Data are presented as mean±standard deviation.

VO2max, maximal oxygen uptake; CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression-only; RPE, ratings of perceived exertion.

Table 7. Perceived exertion, heart rate, VO2max and energy expenditure for each type of CPR performed by female students

Data are presented as mean±standard deviation.

VO2max, maximal oxygen uptake; CPR, cardiopulmonary resuscitation; C:V, compression-to-ventilation; CCO, chest compression-only; RPE, ratings of perceived exertion.