PubMed Health⌕ Search

Biomedical subjects

A M Stoll

Publications and source records attributed to A M Stoll.

17 recordsLinked to original sources

Prediction of threshold pain skin temperature from thermal properties of materials in contact.

Aerospace design engineers have long sought concrete data with respect to the thermal safety of materials in contact with human skin. A series of studies on this subject has been completed and some of the results have been reported earlier. In these studies over 2,000 observations were made of pain threshold during contact with materials at elevated temperatures. Six materials were used representing the full range of thermal properties from good conductors to good insulators. Previous reports gave methods for determining the maximum permissible temperatures for any material in safe contact with bare skin for 1-5 s solely from a knowledge of its thermal properties. This report presents the comparison of the theoretical and experimental contact temperatures at pain threshold and provides a method for deriving the skin temperature productive of threshold pain from the thermal properties of any material within the range of those studies. Ratios reflecting the heat transfer coefficient associated with the materials in contact are related to their thermal properties so that the skin temperature at pain threshold may be determined from that calculated from heat transfer theory. Tabular and graphical representation of these data permits interpolation within the range of properties so that any material of known thermal conductivity, density and specific heat may be assessed with respect to its effect on the skin temperature during contact to the end point of pain. These data, in conjunction with those already reported, constitute a system for the complete assessment of the thermal aspects of practically any material suitable for construction and manufacturing applications with respect to safe contact with human skin.

Aerospace Medicine↗

Rocket plume burn hazard.

By use of miniature rocket engines, the burn hazard posed by exposure to ejection seat rocket plume flames was determined in the anaesthetized rat. A reference chart is provided for predicting equivalent effects in human skin based on extrapolation of earlier direct measurements of heat input for rat and human burns. The chart is intended to be used in conjunction with thermocouple temperature measurements of the plume environment for design and modification of escape seat system to avoid thermal injury on ejection from multiplace aircraft.

Accidents, Aviation↗

Thermal conduction effects in human skin.

To determine the maximum permissible temperature any material may attain without causing pain or burn on contact with bare skin, over 2000 observations were made of pain threshold during contact with materials at elevated temperatures. Six materials were used representing the full range of thermal properties from good conductors to good insulators. Time to pain threshold was converted to time to threshold blister on the basis of the relationship between pain and burn established earlier for radiant and for convective heating. Calculated times to blister were used to predict the material temperatures causative of "touch-burn". Experimentally produced threshold blisters at the predicted temperature-times verified the predictions. Graphs and equations were generated for determining safe temperatures for any material in contact with bare skin for 1-5 s solely from a knowledge of its thermal properties. Conversely, the thermal inertia (k rho c) of the optimal material for a specific use and skin contact can be predicted from a knowledge of the maximum material temperature and length of contact time anticipated.

Aerospace Medicine↗

Thermal properties of human skin related to nondestructive measurement of epidermal thickness.

The thermal and physical properties of skin are reviewed briefly in the light of their relationship to skin functions and their influence on temperature measurement and related methodology. Thermal conductivity and epidermal thickness have a direct bearing on the majority of skin functions as these significantly affect heating rates, thermal pain thresholds, and blister formation, as will be seen from the experimental data. The accumulated data on both temperature and pain threshold are used to estimate epidermal thickness in the intact individual. The procedure to accomplish this end utilizes the measured thermal pain threshold, surface temperature, exposure time, and incident energy on a standardized skin site (volar surface of the forearm) to obtain conductivity values. These values are then used in a two-layer system heat flow equation to determine epidermal thickness in other skin sites (fingers) referred to the standard area. Systematic exposures to various materials at high temperatures in contact-burn studies provide data for checking the reliability of this procedure by alternative computations and comparison with predicted tissue temperatures derived from earlier work. Certainly, blister formation and physical measurement of the excised epidermis would provide direct verification of the accuracy of the procedure but these measures have not been undertaken. It is quite possible that over a period of time verification data could be accumulated incidentally in the clinic where skin grafting procedures are carried out. For this purpose only relatively simple measurements of skin temperature and pain threshold, as described herein, would be required to be performed on skin graft donors to provide epidermal thickness measurements for comparison with direct measurements of excised skin immediately after removal.

Fingers↗