Proposal of Combined Noise and Hand-Arm Vibration Index for Occupational Exposure: Application to a Study Case in the Olive Sector
Abstract
:1. Introduction
1.1. Simultaneous Exposure to Noise and Vibration
1.2. Standards and Regulations
1.3. Main Hypothesis and Objectives of This Research
2. Occupational HAV and Noise in the Olive Oil Sector
3. Materials and Methods
3.1. Data Acquisition and Testing Method
3.2. Equipment Used for Data Acquisition
3.3. Calculation of Exposure Level
4. Results: Proposal of a Combined Index and Methodology for Its Calculation
- Noise Energy Dose. The noise energy dose received by a worker is defined as:
- HAV Energy Dose. The HAV energy dose is defined as the assessment of the exposure level to HAV is based on the calculation of daily exposure, which can be measured using the methods of ISO 5349-1:2001 and ISO 5349-2:2002 [72,73].
- Combined Noise and HAV energy dose. This index is defined by a combination of the two indexes defined above. Since a value of any of the above indexes equal to 1 means that in terms of energy, the worker has received the total amount of energy allowed by the regulation. The combined noise and HAV energy () dose is defined consequently as the weighted arithmetic mean of both energy doses:
- Criterion for action:
- This criterion in fact also implies that
- HAV Energy Doses are calculated for the , i =1…N.
- Finally is calculated, i.e., the maximum time given the calculated dose , i.e., the value corresponding to this pair (,). For this calculation, is given by:
- Noise Energy Doses are calculated for the , i = 1…N.
- Finally, the it is calculated , i.e., the maximum time given the calculated dose , i.e., it is calculated the value corresponding to this pair (,). For this calculation, is given by:
- 1.
- Let us suppose that a given worker uses a machine that generates noise and HAV exposure to the worker. This machine is characterized by the noise level (noise equivalent level during a measurement time ) and HAV (measured as the HAV equivalent continuous acceleration over the measurement time ).
- 2.
- The criterion is that the Combined Noise and HAV energy dose becomes lesser than 1, i.e.,
- 3.
- The maximum exposure time can be calculated from the equation above when the equality is accomplished:
5. Application Example: Study Case in Workers in the Olive Sector
5.1. Data Acquisition and Measurement
5.2. Measuring Results and Exposure Time Calculation
6. Discussion and Limitations of the Suggested Approach
- (1)
- There are two different sources that may affect the worker; one being workers who are exposed to HAV through the normal operation of machinery and the other being another source not in contact that emits noise whose wave propagation reaches the worker. Since there is simultaneous exposure to both noise and HAV, the activity implies the worker receives exposure to both agents and it should be considered preventively.
- (2)
- The second general possibility is that there is one single source or machine, which transmits both agents simultaneously to the worker.
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Directive 2002/44/EC | Directive 2003/10/EC | |||
---|---|---|---|---|
Daily Limit Values | A(8) | Daily Limit Values | [dBA] | [dBC] |
EAV | 2.5 m/s2 | Upper EAV | 85 | 137 |
ELV | 5 m/s2 | ELV | 87 | 140 |
Model | Engine cc | Power | Noise 1 | Vibration 2 |
---|---|---|---|---|
1 | 48.7 cm3 | (3.0 HP) (2.2 KW) | = 102 dB(A) = 113 dB(A) | left = 5.7 m/s2 right = 5.7 m/s2 |
Operator | X m/s2 | Y m/s2 | Z m/s2 | Vibration | Arithmetic Average | Noise | Logarithmic Average |
---|---|---|---|---|---|---|---|
1 | 2.707 | 5.609 | 2.553 | 6.731 | 97.3 | ||
3.105 | 3.508 | 2.506 | 5.312 | 93.8 | |||
4.069 | 3.926 | 2.239 | 6.081 | 94.2 | |||
6.714 | 5.176 | 3.010 | 8.996 | 96.7 | |||
2.698 | 2.767 | 2.104 | 4.400 | 90.6 | |||
6.304 | 95.1 | ||||||
2 | 2.917 | 3.999 | 1.409 | 5.146 | 96.4 | ||
2.301 | 3.720 | 2.352 | 4.966 | 97.7 | |||
1.455 | 2.633 | 0.985 | 3.165 | 82.6 | |||
1.834 | 1.869 | 1.070 | 2.828 | 94.2 | |||
5.135 | 12.488 | 3.560 | 13.964 | 97.1 | |||
6.014 | 95.6 | ||||||
3 | 4.074 | 9.057 | 4.534 | 10.917 | 99.3 | ||
5.495 | 6.516 | 2.884 | 8.998 | 100.1 | |||
1.288 | 1.991 | 1.660 | 2.894 | 100.1 | |||
2.415 | 3.681 | 2.941 | 5.294 | 97.6 | |||
2.701 | 3.627 | 2.645 | 5.238 | 103.2 | |||
6.668 | 100.4 |
Noise (Equation (13)) | HAV (Equation (14)) |
---|---|
1.248 h |
0.748 | 0.252 |
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Nieto-Álvarez, R.; de la Hoz-Torres, M.L.; Aguilar, A.J.; Martínez-Aires, M.D.; Ruiz, D.P. Proposal of Combined Noise and Hand-Arm Vibration Index for Occupational Exposure: Application to a Study Case in the Olive Sector. Int. J. Environ. Res. Public Health 2022, 19, 14345. https://doi.org/10.3390/ijerph192114345
Nieto-Álvarez R, de la Hoz-Torres ML, Aguilar AJ, Martínez-Aires MD, Ruiz DP. Proposal of Combined Noise and Hand-Arm Vibration Index for Occupational Exposure: Application to a Study Case in the Olive Sector. International Journal of Environmental Research and Public Health. 2022; 19(21):14345. https://doi.org/10.3390/ijerph192114345
Chicago/Turabian StyleNieto-Álvarez, Raquel, María L. de la Hoz-Torres, Antonio J. Aguilar, María Dolores Martínez-Aires, and Diego P. Ruiz. 2022. "Proposal of Combined Noise and Hand-Arm Vibration Index for Occupational Exposure: Application to a Study Case in the Olive Sector" International Journal of Environmental Research and Public Health 19, no. 21: 14345. https://doi.org/10.3390/ijerph192114345
APA StyleNieto-Álvarez, R., de la Hoz-Torres, M. L., Aguilar, A. J., Martínez-Aires, M. D., & Ruiz, D. P. (2022). Proposal of Combined Noise and Hand-Arm Vibration Index for Occupational Exposure: Application to a Study Case in the Olive Sector. International Journal of Environmental Research and Public Health, 19(21), 14345. https://doi.org/10.3390/ijerph192114345