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In this work the influence of shock waves on organic liquids with and without bubbles is investigated. The experiments were performed in a new experimental setup with the help of high speed photography and pressure measurements. The apparatus consisted of a cylindrical autoclave with a bubble generator at its bottom. For the creation of a detonation wave a tube was installed on the top of the autoclave. The following parameters were varied: The distance between neighboring bubbles, the composition of the gaseous mixture inside the bubbles, the initial pressure of the system, the initial bubble size, and the organic liquid (cyclohexane, 2-ethylhexanal, cumene, and methanol). Two different types of bubble explosion were observed. Their main difference is the length of their ignition delay. The bubble explosion type I takes place during the first oscillation after the shock wave impact. Further important results about this type of explosion refer to: - the explosion range in relation to the composition of the gas mixture within the bubble as well as to the initial bubble size. - the direct ignition of a bubble by a shock wave emitted by a nearby bubble explosion. Such a phenomenon is experimentally observed for the first time. - the shock induced ignition of gas bubbles containing an initially non explosive fuel-lean gas mixture. Optical recordings of jet penetration into the bubble prove that shock wave induced enrichment in vapor of the surrounding liquid is an important stage before the ignition. - the observation of bubble explosion type I in all the investigated liquids. - the mechanism of bubble explosion type I. The bubble explosion type II takes place with much longer ignition delay. It was observed under certain conditions only. An explosion mechanism is proposed on the basis of the experimental results. According to this mechanism, even non explosive fuel-rich gaseous bubbles can become explosive due to partial condensation of the fuel. A further group of results refer to cavitation phenomena inside the liquid and to shock induced phenomena on the surface. Additionally, the explosion limits of gaseous cyclohexane in pure oxygen at elevated pressures and temperatures were determined. The safety engineering aspects of the experimental results are discussed.