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N Weiler

Publications and source records attributed to N Weiler.

43 records · Page 3Linked to original sources

An adaptive lung ventilation controller.

Closed loop control of ventilation is traditionally based on end-tidal or mean expired CO2. The controlled variables are the respiratory rate RR and the tidal volume VT. Neither patient size or lung mechanics were considered in previous approaches. Also the modes were not suitable for spontaneously breathing subjects. This report presents a new approach to closed loop controlled ventilation, called Adaptive Lung Ventilation (ALV). ALV is based on a pressure controlled ventilation mode suitable for paralyzed, as well as spontaneously breathing, subjects. The clinician enters a desired gross alveolar ventilation (V'gA in l/min), and the ALV controller tries to achieve this goal by automatic adjustment of mechanical rate and inspiratory pressure level. The adjustments are based on measurements of the patient's lung mechanics and series dead space. The ALV controller was tested on a physical lung model with adjustable mechanical properties. Three different lung pathologies were simulated on the lung model to test the controller for rise time (T90), overshoot (Ym), and steady state performance (delta max). The pathologies corresponded to restrictive lung disease (similar to ARDS), a "normal" lung, and obstructive lung disease (such as asthma). Furthermore, feasibility tests were done in 6 patients undergoing surgical procedures in total intravenous anesthesia. In the model studies, the controller responded to step changes between 48 seconds and 81 seconds. It did exhibit an overshoot between 5.5% and 7.9% of the setpoint after the step change.(ABSTRACT TRUNCATED AT 250 WORDS)

Equipment Design↗

[Modification of oxygen consumption following major abdominal surgery by epidural anesthesia].

In the postoperative period patients are at risk of excessive oxygen consumption (VO2). However, patients suffering from cardiovascular disease may be unable to increase their oxygen transport capacity sufficiently and may be especially vulnerable to tissue hypoxia as part of the reaction to intraoperative stress. During the last 10 years conflicting results concerning the benefits of a combined epidural and light general anaesthesia have been published. Some of the results indicate that postoperative catabolism may be depressed and that the neuroendocrine response to stress may be inhibited by such a combined technique. We studied the effect of a combined epidural and light general anaesthesia on VO2 in the early post-operative period. PATIENTS AND METHODS. Three groups of patients were studied: group 1 contained 10 patients scheduled for major urological procedures of at least 3 h duration who received a combined epidural and light general anaesthesia. Group 2 contained 17 patients with procedures comparable to group 1 but received a standard general anaesthesia with isoflurane, N2O and fentanyl. In addition, 13 patients undergoing minor urological procedures of less than 2 h duration and undergoing standard general anaesthesia were included in the study as a control group (group 3). All patients gave informed consent. Preoperative management was the same in the three groups. Perioperative risk was assessed according to the ASA classification. In group 1 patients, an epidural catheter was placed preoperatively at the L3/4 interspace and tested for correct positioning using 4 ml of 2% mepivacaine with epinephrine 1:200,000. After induction of anaesthesia an epidural block was established with 0.5% bupivacaine for intraoperative analgesia and 0.25% bupivacaine for postoperative pain relief. The initial dosage was determined (according to Bromage's method) to reach a sensory level of T-6. Two-thirds of the initial dose was the given on two occasions, each 90 min after the dose before. End-tidal isoflurane concentrations ranged between 0.3 and 0.6 vol% in this group. In groups 2 and 3, endtidal isoflurane concentrations of 1.0 to 1.5 vol% were applied. Postoperative analgesia was achieved in these groups using repeated doses of 7.5 mg piritramide i.v. Oxygen consumption was measured in the recovery room using the Deltatrac (Datex) metabolic monitor. Measurements were performed with a canopy room air dilution technique. Arterial oxygen saturation of the patients was monitored continuously using pulse oximetry. Data acquisition was started within 10 min after extubation and continued for at least 60 min until a steady state of oxygen consumption was reached. We recorded the average VO2 during the initial 5 min of the measurement period and during another 5-min period after the steady state was reached (45-60 min after extubation). RESULTS. Patients in the three groups were comparable in age, height and body weight (Table 1). The duration of procedures in groups 1 and 2 ranged between 4 and 7 h. Groups 1 and 2 were further comparable in terms of intraabdominal procedures, intraoperative blood loss, fluid replacement, and fall in body temperature during the operation (Table 2). Heart range was significantly higher in group 2 during the 5-min test interval (Table 3). Figure 1 shows the typical course of oxygen consumption in patients of groups 1, 2, and 3. The readings in the group 1 patient as well as in the group 3 patients were stable throughout the observation period. Oxygen consumption was in the physiological range. In contrast, in the group 2 patients during the early postoperative period, increased values of VO2 (approx. 50% above normal) were observed. These findings were highly significant in our study. In the early postoperative period (5 min) patients in group 1 showed a VO2 or 3.6 +/- 0.4 ml.kg-1.min-1. This was the same as in group 3 (3.5 +/- 0.3 ml.kg-1.min-1). In contrast, in group 2 a VO2 of 5.3 +/- 0.7 ml.kg-1.min-1

Abdomen↗

[Modern forms of artificial respiration].

Mechanical ventilation has become a widely used technique in anaesthesiology and intensive care medicine. Difficulties arise with patients who suffer from acute or chronic pulmonary disease. Lung models are used to simulate the behaviour of healthy and diseased lungs and to optimize breathing patterns. Flow-controlled ventilation is suitable for healthy lungs. Diseased lungs need more finely differentiated ventilatory modes that adapt to the different time constants within the lung. PCV seems to have some advantages in ventilation of such lungs. It has been demonstrated that prolongation of inspiratory time and inversion of the I:E ratio can open nonventilated compartments of the lung and thus reduce intrapulmonary shunt. BiPAP ventilation and APRV serve the same purpose. Additionally, they support spontaneous breathing of the patient. Weaning from the respirator can be achieved by either reducing the number of mandatory breaths (IMV, SIMV, MMV) or reducing the work of breathing by applying inspiratory pressure support (PSV). Both techniques can be applied simultaneously. BiPAP ventilation and APRV are also suitable for weaning patients from a ventilator. Respirators able to adapt breathing patterns to the lung mechanics of a patient automatically on the basis of a breath-to-breath lung function analysis (ALV) are currently in clinical development.

Humans↗

[Propofol for sedation during postoperative mechanical ventilation. A comparative study with Lytic Mixture].

Propofol infusion was found to provide excellent sedation and rapid recovery in intensive care. The present study compared Propofol with lytic solution (lytic solution = mixture of 100 mg Pethidine, 50 mg Promethazine and 0.6 mg Dihydroergotamine) during 6 hours of postoperative artificial ventilation. 60 patients after major abdominal surgical procedures were studied with ethical committee approval and informed consent. Patients were randomly allocated to receive either Propofol or lytic solution. We aimed at a sedation level of stage 5 according to the Ramsey score. The mean drug dosages were 3.9 mg/kg/h of Propofol and 4.2 ml/h of lytic solution. Hemodynamic values, blood gases as well as various biochemical measures did not show any difference between the groups. At the end of the sedation period triglyceride concentrations were significantly higher in patients receiving Propofol (166 + 79 mg/dl) compared to the control group (97 + 60 mg/dl). Significant and relevant differences were found for the times of recovery after discontinuation of the sedative. These times were very short in the Propofol group. Furthermore, in view of a longer recovery time after lytic solution in this group the respiratory rate was significantly slower up to the end of the observation period. We conclude that a major advantage of Propofol in the present study was the rapid recovery after 6 hour sedation. Patients gain vigilance rapidly and sufficient spontaneous respiration within minutes. Not at least thanks to these facts patient's safety can be improved in the recovery period.

Abdomen↗

[Registration and analysis of airway pressure and gas flow in ventilated patients. The "Hyper-DAQ Respiration Mechanics Recorder"].

Respiratory data monitored in ventilated patients commonly consists of monitoring some inspiratory and expiratory pressures and volumes. For a more sophisticated analysis of respiratory mechanics in ventilated patients, a combined hardware and software system is presented that allows for continuous monitoring of airway pressure and gas flow. Gas flow is measured using a pneumotach. The "Hyper-DAQ" is an 8-channel 12-bit analog to a digital converter that can be connected to IBM PCs as well as to Macintosh computers using a standard RS 232 link. A special module consisting of three pressure transducers (airway pressure, differential pressure for a Fleisch head and ambient pressure) and five additional analog inputs is used for recording respiratory data. Once set up, the Hyper-DAQ records all the data in real time, independently of the host system that can query the data via the RS 232 link. The software runs on IBM and compatible PCs, as well as on Macintosh computers. The software simulates a strip-chart recorder and can be controlled by the keyboard and the mouse. We developed special software for the calibration of pressure and flow. Using models of the gas distribution in the lung compliance, resistance and lung time constants can be calculated from the raw data. For special purposes the data can be transferred to spread-sheet software. A mainstream CO2-detector connected to one of the additional analog inputs allows for additional data: alveolar ventilation, series deadspace, etc. The system presented can be recommended in routine work as well as for scientific studies in ventilated patients.

Anesthesiology↗

Assessment of pulmonary mechanics and gastric inflation pressure during mask ventilation.

INTRODUCTION: Mask ventilation is a procedure routinely used in emergency medicine. Potential hazards are inadequate alveolar ventilation and inflation of the stomach with air, leading to subsequent regurgitation and aspiration. The aim of this study was to measure lung function and gastric inflation pressures during mask ventilation. METHODS: For this purpose, 31 patients scheduled for routine urological procedures were studied during induction of anesthesia. Lung function was assessed by recording respiratory flow and pressure directly at the face mask. Gastric inflation was observed with a microphone taped to the epigastric area. RESULTS: Gastric inflation occurred in 22 of the 31 patients. Mean gastric inflation pressure was 27.5 +/- 6.55 cm H2O, mean compliance was 67 +/- 24.1 ml/cm H2O, mean resistance was 17.4 +/- 6.41 cm H2O/L/sec, and the mean respiratory time constant was 1.1 +/- 0.26 seconds. CONCLUSIONS: These data suggest that inspiratory pressure be limited to 20 cm H2O, and that an inspiratory time of at least four times the respiratory time constant be allowed. Monitoring airway pressure and gastric inflation is a simple technique that may improve the safe-ty of patients during mask ventilation.

Adult↗