Search PubMed⌕ Search

Biomedical subjects

Mariusz Zebrowski

Publications and source records attributed to Mariusz Zebrowski.

2 recordsLinked to original sources

Centrifuge training program with "push-pull" elements.

INTRODUCTION: Pilots of fighter aircraft are often exposed to maneuvers that produce negative acceleration (-Gz) immediately followed by positive acceleration (+Gz). This sequence has been found to reduce tolerance to +Gz, a phenomenon known as the "push-pull" effect. We devised a centrifuge training program to demonstrate this phenomenon to pilots. METHODS: The centrifuge of the Military Institute of Aviation Medicine in Warsaw, Poland, was modified in 1996 to allow active positioning of the gondola during rotation. Head-down position of -6 degrees to -40 degrees were used to produce relative -Gz (r-Gz) in a range down to 0.2. As a side effect, this produces Gy acceleration between -1.3 Gy and -1.6 Gy. Pilots completed normal centrifuge training, including a relaxed, gradual-onset run and three rapid-onset runs. They were then exposed to a profile that included a series of push-pull exposures where r-Gz was followed by +Gz with stepwise increases in the latter from +2.5 to +5 Gz. The final profile was a simulated aerial combat maneuver with push-pull elements. RESULTS: The trainees expressed surprise at the push-pull effect, which forced them to begin an anti-G straining maneuver at lower levels than normal. They complained about the presence of the Gy, which rarely occurs in aircraft. DISCUSSION: This type of profile appears useful for training pilots about the push-pull phenomenon. After collection of additional data, the profiles may be refined.

Aerospace Medicine↗

Accuracy of SpaceLabs 90207 is altered by venous blood redistribution.

Validation protocols that have been introduced for automated blood pressure (BP) measuring devices recommend procedures carried out at rest only. We aimed to determine whether venous blood redistribution affects the accuracy of the oscillometric method of BP measurement. For this purpose, we chose a popular oscillometric ambulatory BP monitor--the SpaceLabs 90207 (Osc). Lower body negative pressure (-40 mmHg) (LBNP) was used to simulate changes of body position. Fifty-one young healthy volunteers had their BP measured simultaneously by Osc and mercury sphygmomanometer (HgS) at rest (min 3 and 5), during LBNP (min 7 and 9) and after LBNP (min 11). Differences (delta, mmHg) between HgS and Osc for systolic (SBP) and diastolic BP (DBP) were calculated for every measurement minute. For SBP, deltaSBP-7 and deltaSBP-9 were significantly different from deltaSBP-5 (0.65 +/- 2.6 and 0.33 +/- 2.4 mmHg vs -0.80 +/- 2.9 mmHg, p < 0.003 and p < 0.02, respectively). deltaSBP-11 also differed significantly from deltaSBP-3 and deltaSBP-5 (1.16 +/- 2.5 mmHg vs -0.06 +/- 3.1 mmHg and -0.80 +/- 2.9, p < 0.01 and p < 0.00007, respectively). When graded according to British Hypertension Society protocol, Osc remained in the A class in every measurement minute. The accuracy of SpaceLabs 90207 is altered by venous blood redistribution. These inaccuracies may constitute an additional limitation of oscillometric ambulatory BP monitoring.

Adult↗