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Completed

NCT Number: NCT04160728

Occupational Heat Stress on Workers' Productivity

Workplace heat exposure affects billions of people during their everyday work activities. Occupational heat stress impairs workers' health and capacity to perform manual labour. Therefore, the aim of this study was to observe the heat strain experienced by workers in occupational settings and test different strategies to mitigate it during actual work shifts in agriculture, manufacture, tourism, construction, and other services.

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Key information

Age range

18 year–75 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

FAME Lab, Department of Exercise Science, University of Thessaly

Trikala, Thessaly, 42100, Greece

About this study

The participants followed the study protocol which included, one work shift of sham measurements, one work shift business as usual and four (4) different scenarios (interventions) on different work shifts. Apart from the sham measurements the rest of the scenarios were tested in a random order for different participants.

  • Work/ rest scenario: The participants were asked to take planned breaks in the shade during their work shift. The amount of breaks taken ranged between 3 and 10 minutes every hour depending on the current work duties of the employees.
  • Hydration scenario: The participants were advised (not forced) to drink minimum of 750 ml of water or ice - slushies, every hour during their work shift.
  • Clothing scenario: The participants were randomly provided with different types of clothing, i.e. white breathable coveralls, ventilated garments and breathable uniform with water submerging parts, to wear during their work shift.
  • Assisted labor: The participants in agriculture, that were carrying heavy weights were provided with "e-carts" (automated carrying vehicles), during their work shift.

Baseline data [self-reported age; body stature (Seca 213; seca GmbH & Co. KG; Hamburg, Germany) and body mass (BC1000, Tanita corporation, Tokyo, Japan)] were collected one day prior to the measurements. Medical history of all the participants was recorded. During the field study, continuous heart rate, core temperature and mean skin temperature data were collected using wireless heart rate monitors (Polar Team2. Polar Electro Oy, Kempele, Finland), telemetric capsules (BodyCap, Caen, France), and wireless thermistors (iButtons type DS1921H, Maxim/Dallas Semiconductor Corp., USA), respectively. Skin temperature data were collected from four sites (chest, arm, thigh, and leg) and were expressed as mean skin temperature according to the formula of Ramanathan (Tsk = [0.3(chest + arm) + 0.2(thigh + leg)]). Furthermore, continuous environmental data [air temperature (°C), globe temperature (°C), relative humidity (%), and air velocity (m/s)] were collected using a portable weather station (Kestrel 5400FW, Nielsen-Kellerman, Pennsylvania, USA). Urine samples were collected at the start and the end of the work shift to evaluate the hydration status of each worker. Urine specific gravity was assessed for each urine sample using a refractometer (PAL-10S, ATAGO CO., LTD., Fukaya, Saitama Prefecture, Japan) and was classified as either hydrated (< 1.020) or dehydrated (≥ 1.020). In addition, urine colour was assessed using a urine color scale. Questionnaires were used to assess workers' perception on exertion (Borg scale), thermal comfort/sensation, humidity comfort/sensation, radiation comfort/sensation, wind speed comfort/sensation, skin wetness, sleepiness, physical demands of the workload. The Heat Strain Score Index (HSSI) was used to assess the perceived heat strain of the workers.

Video cameras installed in close proximity (about 40m) to the workers were used to assessed workers labour effort. Video recordings were analyzed on a second by second basis using time-motion analysis method. Importantly, when video cameras were not feasible to be installed real-time task analysis was used to examine workers capacity for manual labour. For that reason, an android-based application (FAME_TASK App) was used to record the tasks of the workers on a second by second basis. The App was continuously monitoring the work time spent on irregular work breaks (unplanned breaks), the duration of uninterrupted work and the time spent as lunch time or other breaks provided by management (planned breaks). The unplanned break was divided into two categories: the breaks during which the workers decided to rest in the shade (unplanned break under the shade) and the breaks during which the workers chose to stay under the sun (unplanned break under the sun). Also, the uninterrupted work was divided into nine categories: work in an outdoor environment with a low metabolic rate; work in an outdoor environment with a moderate metabolic rate; work in an outdoor environment with a high metabolic rate; work in a mixed (outdoor and indoor) environment with a low metabolic rate; work in a mixed (outdoor and indoor) environment with a moderate metabolic rate; work in a mixed (outdoor and indoor) environment with a high metabolic rate; work in an indoor environment with a low metabolic rate; work in an indoor environment with a moderate metabolic rate; work in an indoor environment with a high metabolic rate. The labor effort (i.e., low / moderate / high metabolic rate) was defined according to the ISO 8996:1994 as low, moderate and high metabolic rate. Based on these definitions, the recorded tasks were fourteen. During the work-shift, a researcher was following each worker, monitoring them with the FAME_TASK App, until they end of their work shift.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Workers in the industries of agriculture, construction, manufacture, , tourism, or other services

Exclusion criteria

  • Workers under the age of 18 or non-experienced workers

Treatment and study plan

Work/ rest scenario

Other

For every hour of work, the participants were asked to take 3-10 minutes break in the shade.

Hydration scenario

Other

Participants were asked to consume at least 750ml of water or ice-slushies for every hour of work

Clothing scenario

Other

Participants were asked to wear different types of clothing during the work shift i.e. ventilated garments, white breathable coveralls, clothing with water submerged parts

"E-carts" scenario

Other

Participants that were involved in manual labor by carrying heavy weights were provided with "e-carts" (automated carrying vehicles)

Business as usual scenario

Other

No interference with the usual work day of the participants

Sham evaluation

Other

Participants were monitored during a usual day of work shift while sham measurements were recorded in order for them to get familiarized with the study environment

Primary outcomes

  1. Heart rate

    Time frame: 12-hour workshift

    Heart rate data were continuously monitored using a Polar Team system (Polar® Team 2, Polar Electro Oy, Kempele, Finland

  2. Mean skin temperature

    Time frame: 12-hour workshift

    Temperature at the skin surface area was continuously monitored using iButton sensors (type DS1921 H, Maxim/Dallas Semiconductor Corp., USA)

  3. Core body temperature

    Time frame: 12-hour workshift

    Core body temperature was assessed throughout the entire work shift using telemetric capsules (e-Celsius, BodyCap, Caen, France) that was given to the workers to ingest prior to their work shift

  4. Urine specific gravity to assess the hydration status

    Time frame: Pre and post the 12-hour workshift

    Urine was obtained from the participants pre and post the 12-hour work shift. Urine specific gravity (single assessment-no units) was assessed using a refractometer (PAL-10S, ATAGO CO., LTD., Fukaya, Saitama Prefecture, Japan). Urine color was assessed using a urine color scale

  5. Labour effort

    Time frame: 12-hour workshift

    Actual time (single assessment-hours) of working effort and break time during the 12-hour work shift. They were assessed by time-motion analysis (video) or real time task analysis (surveillance) on a second by second basis

  6. Thermal comfort

    Time frame: At baseline, every two hours up until the end of the 12-hour workshift

    Thermal comfort was assessed via the thermal comfort scale (1 = comfortable; 5 = extremely uncomfortable).

  7. Thermal sensation

    Time frame: At baseline, every two hours up until the end of the 12-hour workshift

    Thermal sensation was assessed via the thermal sensation scale (-3 = cold; +3 = hot)

  8. Perceived exertion

    Time frame: At baseline, every two hours up until the end of the 12-hour workshift

    Perceived exertion was assessed via the Borg 20th Scale (6 = no exertion at all; 20 = maximal exertion)

  9. Heat Strain Score Index

    Time frame: At the end of the 12-hour work shift

    Heat Strain Score Index was assessed via the 18-question Heat Strain Score Index questionnaire that assess the heat and physiological strain

Sponsors and collaborators

Lead sponsor

Petros Dinas

Other

Registry information

Important dates

Study start
2019
Primary completion
2019
Study completion
2019
First posted
Nov 13, 2019
Registry last updated
Nov 29, 2023

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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