Weighting of Firefighting Turnout Gear Risk Factors According to Expert Opinion
Abstract
:1. Introduction
2. Literature Review
2.1. Research on Fire Protective Clothing
2.2. Research on Sustainable Apparel
3. Research Method
3.1. AHP Expert Survey
3.2. Risk Assessment Indicators
- Protection: putting on the gear components in the wrong order, insufficient water resistance, insufficient flame resistance, insufficient resistance to tears or punctures, and insufficient heat resistance;
- Comfort: insufficient internal circulation, poor air permeability, poor agility, heavy overall weight;
- Materials: high levels of toxicity, short lifespan, lack of flame-resistant fibers, shrinkage after washing, no resistance to fouling (oil stains, carbon particles, etc.), difficulty to clean, lack of reflectivity;
- Cutting: insufficient protection at the collar, unideal pocket design, insufficient protection at sleeve cuffs, loose front fastenings, poor fit in trousers and waist, loose seams, and excessive tightness in joints;
- Technology: lack of heat sensors, no indicators of oxygen storage data, no display of respiratory or heartbeat data, lack of falling or collision sensors, no air filtration devices.
4. Results and Discussion
4.1. AHP Survey Results and Discussion
4.1.1. Risk Decision Constructs
4.1.2. Analysis of Risk Decision Factors
- Risk decision factors relating to protection
- 2.
- Risk decision factors relating to comfort
- 3.
- Risk decision factors relating to material
- 4.
- Risk decision factors relating to clothing cutting
- 5.
- Risk decision factors relating to technology
4.2. Risk Assessment
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Risk Level | Tolerable Risk Range | Level of Tolerance |
---|---|---|
High | 59% or less | Requires improvement |
Moderate | 60–79% | Acceptable |
Low | 80–100% | Negligible |
Decision Construct | Weight Values | Rank |
---|---|---|
Protection | 0.422366 | 1 |
Comfort | 0.178665 | 3 |
Material | 0.186749 | 2 |
Cutting | 0.073938 | 5 |
Technology | 0.138282 | 4 |
Sum of weight values = 1 |
Decision Construct (A) | Decision Factor (B) | Weight (A × B) | Rank |
---|---|---|---|
Protection (0.422366) | Putting on gear components in the wrong order (0.200990) | 0.08489 | 3 |
Insufficient water resistance (0.119449) | 0.05045 | 7 | |
Insufficient flame resistance (0.264305) | 0.11163 | 1 | |
Insufficient resistance to tears or punctures (0.156022) | 0.06590 | 4 | |
Insufficient heat resistance (0.259234) | 0.10949 | 2 | |
Total weight sum = 1 |
Decision Construct (A) | Decision Factor (B) | Weight (A × B) | Rank |
---|---|---|---|
Comfort (0.178665) | Insufficient internal circulation (0.226364) | 0.04044 | 10 |
Poor air permeability (0.202039) | 0.03610 | 12 | |
Poor agility (0.288961) | 0.05163 | 5 | |
Heavy overall weight (0.282635) | 0.05050 | 6 | |
Total weight sum = 1 |
Decision Construct (A) | Decision Factor (B) | Weight (A × B) | Rank |
---|---|---|---|
Material (0.186749) | High levels of toxicity (0.243913) | 0.04555 | 9 |
Short lifespan (0.087807) | 0.01640 | 19 | |
Lack of flame-retardant fibers (0.264281) | 0.04935 | 8 | |
Shrinkage after washing (0.107304) | 0.02004 | 17 | |
No resistance to fouling (0.072347) | 0.01351 | 21 | |
Difficulty to clean (0.090263) | 0.01686 | 18 | |
Lack of reflectivity (0.134084) | 0.02504 | 15 | |
Total weight sum = 1 |
Decision Construct (A) | Decision Factor (B) | Weight (A × B) | Rank |
---|---|---|---|
Cutting (0.073938) | Insufficient protection at the collar (0.199514) | 0.01475 | 20 |
Unideal pocket design (0.054806) | 0.00405 | 28 | |
Insufficient protection at the sleeve cuffs (0.150593) | 0.01113 | 26 | |
Loose front fastenings (0.168525) | 0.01246 | 23 | |
Poor fit in the legs and waist (0.109916) | 0.00813 | 27 | |
Loose seams (0.162610) | 0.01202 | 24 | |
Excessive joint tightness (0.154038) | 0.01139 | 25 | |
Total weight sum = 1 |
Decision Construct (A) | Decision Factor (B) | Weight (A × B) | Rank |
---|---|---|---|
Technology (0.138282) | Lack of heat sensors (0.171950) | 0.02378 | 16 |
No oxygen storage indicators (0.260081) | 0.03596 | 13 | |
No display of respiratory or heartbeat data (0.196213) | 0.02713 | 14 | |
Lack of falling or collision sensors (0.096776) | 0.01338 | 22 | |
No air filtration device (0.274980) | 0.03802 | 11 | |
Total weight sum = 1 |
Rank | Risk Decision Factors | Weight | Cumulative Weight |
---|---|---|---|
1 | Insufficient flame resistance | 0.11163 | 0.11163 |
2 | Insufficient heat resistance | 0.10949 | 0.22113 |
3 | Putting on gear components in the wrong order | 0.08489 | 0.30602 |
4 | Insufficient resistance to tears or punctures | 0.06590 | 0.37192 |
5 | Poor agility | 0.05163 | 0.42354 |
6 | Heavy overall weight | 0.05050 | 0.47404 |
7 | Insufficient water resistance | 0.05045 | 0.52449 |
8 | Lack of flame-retardant fibers | 0.04935 | 0.57384 |
9 | High levels of toxicity | 0.04555 | 0.61940 |
10 | Insufficient internal circulation | 0.04044 | 0.65984 |
11 | No air filtration device | 0.03802 | 0.69786 |
12 | Poor air permeability | 0.03610 | 0.73396 |
13 | No oxygen storage indicators | 0.03596 | 0.76993 |
14 | No display of respiratory or heartbeat data | 0.02713 | 0.79706 |
15 | Lack of reflectivity | 0.02504 | 0.82210 |
16 | Lack of heat sensors | 0.02378 | 0.84588 |
17 | Shrinkage after washing | 0.02004 | 0.86591 |
18 | Difficulty to clean | 0.01686 | 0.88277 |
19 | Short lifespan | 0.01640 | 0.89917 |
20 | Insufficient protection at the collar | 0.01475 | 0.91392 |
21 | No resistance to fouling | 0.01351 | 0.92743 |
22 | Lack of falling or collision sensors | 0.01338 | 0.94081 |
23 | Loose front fastenings | 0.01246 | 0.95327 |
24 | Loose seams | 0.01202 | 0.96530 |
25 | Excessive joint tightness | 0.01139 | 0.97669 |
26 | Insufficient protection at the sleeve cuffs | 0.01113 | 0.98782 |
27 | Poor fit in the legs and waist | 0.00813 | 0.99595 |
28 | Unideal pocket design | 0.00405 | 1.00000 |
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Chang, T.-Y.; Lu, H.-P.; Luor, T.-Y.; Chang, P.-W. Weighting of Firefighting Turnout Gear Risk Factors According to Expert Opinion. Sustainability 2022, 14, 7040. https://doi.org/10.3390/su14127040
Chang T-Y, Lu H-P, Luor T-Y, Chang P-W. Weighting of Firefighting Turnout Gear Risk Factors According to Expert Opinion. Sustainability. 2022; 14(12):7040. https://doi.org/10.3390/su14127040
Chicago/Turabian StyleChang, Tsui-Yuan, Hsi-Peng Lu, Tain-Yi Luor, and Ping-Wu Chang. 2022. "Weighting of Firefighting Turnout Gear Risk Factors According to Expert Opinion" Sustainability 14, no. 12: 7040. https://doi.org/10.3390/su14127040
APA StyleChang, T. -Y., Lu, H. -P., Luor, T. -Y., & Chang, P. -W. (2022). Weighting of Firefighting Turnout Gear Risk Factors According to Expert Opinion. Sustainability, 14(12), 7040. https://doi.org/10.3390/su14127040