3.2 Gefahrguttanks und Unfallmechanik
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The use of glass-fiber reinforced plastic (GRP) can reduce the weight of tanks significantly. By replacing steel with GRP in tanks for gases (propane, etc.) a weight reduction of up to 50 % was reached. In this project not only the material should be optimized, but also the design. Previous tanks consist of a double-walled structure with an insulation layer between the two shells (e.g. vacuum). Goal of this project is to realize a single-walled construction of GRP with an insulation layer on the outside.
To determine the temperature dependent material values, two different experiments are performed: In the first experiment, temperature dependent material properties of liquid nitrogen found in literature research are validated in a simple setup. The level of liquid nitrogen in a small jar is measured over the experiment time. Numerical simulation shows the change of nitrogen level with sufficient precision. In the second experiment, a liquid nitrogen is applied on one side of a GRP plate. Temperature is measured with thermocouples on top and bottom of the GRP plate, as well as in the middle of the plate. By use of numerical simulation, temperature dependent thermal conductivity is determined.
In the third experiment, a test stand is designed to examine different insulation materials. In this test stand, the insulation material can easily be changed. A numerical simulation, in which the determined material data is used, is performed as well for this test stand.
The experiments show, that GRP can be used in cryogenic environments. Multiphase simulations are a suitable tool to describe the energy absorption of thermal energy due to thermal phase change. Results on different insulation materials will follow.
To reduce the emission of CO2, liquified natural gas (LNG) is used as fuel. As the pipeline network is not developed all around the globe, LNG needs to be transported via ship or truck. Double-walled tanks made of steel with a vacuum insulation are currently used to keep LNG at cryogenic temperatures (-162 °C; 111 K). The double-walled construction makes the tanks heavy and expensive. Furthermore, there are some restriction to carry out in-service inspection using a double-wall design. Main topics: Lightweight design, superior thermal properties of GRP compared to steel Aim of this project is to develop a single-walled tank made of glass-fiber reinforced plastic (GRP) and an insulator, so that the tank pressure will not exceed 5 bar within a certain time, relative, as a result of the rising fluid temperature. First, the thermal and mechanical properties of GRP and the insulator at cryogenic temperatures must be determined. Liquid nitrogen (-196 °C; 77 K) is used for all experiments at cryogenic temperatures for safety reasons. Mechanical properties are analyzed by performing 3-point bending tests on cooled specimen. The tests show, that there are now significant changes on the mechanical properties of GRP, so that this material can be used in a cryogenic environment. To examine the thermal conductivity of GRP, a test rig is designed, in which one side of a GRP-laminate plate is cooled down while the other side is at room temperature at the beginning. Temperature is measured on both sides of the plate as well as inside the laminate. The temperature curves are then implemented in a ANSYS simulation to calculate thermal material properties. The experiments show, that the thermal conductivity of GRP is much lower than the one of steel, but still not low enough to design a single walled tank without an additional insulation. Therefore, a closed GRP pipe with insolation inside is immersed in liquid nitrogen for a defined time. Sensors record the surface temperatures inside and outside the specimen, as well as between insulation and GRP. With the data gained in this experiment, another ANSYS model is done. For correct simulation of the heat transfer between insulation and liquid nitrogen (or LNG later), a fluid simulation is necessary, which simulates the phase change from liquid to gaseous nitrogen. After validation of the model, a parameter study in the material properties of the insulation is performed, until a satisfying setup is achieved.
Motivation:
- Reduktion der CO 2 Emissionen von Verbrennungsmotoren durch den Einsatz von LNG als alternativer Kraftstoff
- Aktuell werden doppelwandige Edelstahltanks mit Vakuumisolation für den Transport eingesetzt
- Reduktion des Tankgewichts und Vereinfachung der Konstruktion soll durch die Substitution mit GFK inklusive einer Isolationsschicht erreicht werden
- Leichtere Überprüfung von einwandigen Tankkonstruktionen
- Günstiges Versagensverhalten von GFK im Brandfall
Zusammenfassung:
- Thermische Performance kann mit Isolation aus PU Schaum erreicht werden
- Messung der Abdampfrate bildet einfache Möglichkeit zur Bestimmung der thermischen Performance
- Mikrorisse in der Matrix führen zur Leckage -> Liner notwendig
- Biegemodul bis 30 MPa vergleichbar, danach Abfall um ca. 50 % bei tiefen Temperaturen
Ausblick:
- Prüfung von GFK Proben mit Fasern in 0°-Orientierung
- Prüfung der thermischen Performance mit Demonstratoreinheiten verschiedene Größen
- Entwicklung einer Skalierungsfunktion, um Ergebnisse von druckloser Prüfung auf Druckanstieg zu übertragen
Präsentation im Rahmen eines BAM-internen Kolloquiums über den aktuellen Stand der Forschung im ZIM-Vorhaben "Tieftemperatzr-Transporteinheit aus Faserverbundkunststoffen"
To reduce the emission of carbondyoxide (CO2) of combustion engines, liquefied natural gas (LNG) is used as an alternative fuel. LNG is transported via truck, ship or railway for long distances. Double walled stainless steel tanks are used for transportation, which are heavy and expensive. The vacuum insulation between the two walled structure ensures that the LNG stays liquid over the transportation time (boiling point of LNG: -162 ◦C). This causes a high temperature difference between the transported good and the ambient air.
A simplified tank construction is used to reduce the weight and price of the tank. Instead of stainless steel, glass fiber reinforced plastic (GFRP) is used. The design is changed to a single walled construction with a solid insulation material outside on the GFRP structure.
Goal of this work is the characterization of a suitable insulation material and configuration as well as the analysis of the mechanical properties of GFRP under cryogenic conditions. Several experiments are carried out. Numerical models of these experiments can then be used for parameter studies.
To reduce the global emission of CO2, liquified natural gas (LNG) is increasingly used as fuel. As the pipeline network is not developed all around the globe, LNG needs to be transported via ship or truck. Double-walled tanks made of steel with a vacuum insulation are currently used to keep LNG at cryogenic temperatures (-162 °C; 111 K). The double-walled construction makes the tanks heavy and expensive. The vacuum insulation between the two walled structure ensures that the LNG stays liquid over the transportation time (boiling point of LNG: -162 ◦C). This causes a high temperature difference between the transported good and the ambient air. Furthermore, there are some restrictions in carrying out in-service inspection using a double-wall design. Therefore, alternative tank designs, such as single wall glass fiber reinforced plastics (GFRP), are of growing interest.
The material properties of GFRP and tank insulation at cryogenic temperatures are investigated. Liquified nitrogen (-196 °C; 77 K) is used for all experiments at cryogenic temperatures for safety reasons. Thermal conductivity of different layers are investigated and compared. Mechanical properties are analyzed by performing 3-point bending tests on cooled specimen. When cooled, the specimens fail at a higher force, but all layers of the laminate fail at once. Further investigations into the characterization of material properties, such as CT scans are currently in preparation.
Evaluation is done by FEM and in approximation via analytical solutions.
This paper describes the testing methods used to determine the thermal properties of insulation materials and mechanical properties of materials used for the load-bearing structure for pressure tanks (up to 4 bar, relative) and cryogenic liquids (LNG, −166 °C to -157 °C at atmospheric pressure). Goal is to design a transportation tank that does not exceed 4 bars (relative) within 10 h, starting at atmospheric pressure. PUR-foam is a suitable material for the insulation. A 12,5 l small scale tank prototype reached 4 bar (relative) within 87 minutes, which is, regarding the influence of the size, a satisfying result. The mechanical properties change significantly at cryogenic temperatures. The bending modulus is similar at first, but decreases at a certain point by appr. 50 %. However, the maximum stress is much higher and could not be reached within this testing setup.
Wasserstoff wird als ein potenzieller alternativer Energieträger gesehen, mit dem die für 2050 gesetzten Klimaziele erreicht werden könnten. Der Transport von Wasserstoff ist mittels verschiedener Speichertechniken möglich, von denen der kryogene Transport mit den größten volumetrischen Energiedichten einhergeht. Hierdurch eignen sich diese Speicher besonders für die energieintensiven Verkehrsmittel im Land-, See- und Flugverkehr.
Im Vortrag werden Speichertechniken, Gefahren im Umgang mit kryogenen Gasen sowie bisherige Störfälle dargestellt. Darauf aufbauend wird ein Teil der aktuellen Forschungsarbeit an der BAM vorgestellt, die die Sicherheit dieser Speicher unter außergewöhnlichen Belastungen adressiert.
The volumetric energy density of a gas can be increased by liquefaction, which occurs when the gas is cooled below the saturation point. Liquefied gases of great importance to the energy transition are Liquefied Hydrogen (LH2) and Liquefied Natural Gas (LNG), which can be liquefied at temperatures below 160°C. Systems for storing these gases typically must be overpressure resistant and require thermal super insulations (TSI) to hold cryogenic conditions and minimize boil-off losses from evaporation. TSI with vacuum and MLI or perlites are suitable for many applications involving LNG and LH2. Such systems are typically double-walled structures where the inner wall is in contact with the cryogenic liquefied gas. MLI or perlites are located in the gap between the inner and the outer wall, that is kept under vacuum conditions. This combination of insulations strongly reduces the heat transfer between the environment and the cryogenic liquefied gas. From an economic point of view the systems are well sophisticated. However, knowledge of the behavior of this kind of systems in a typical event such as a fire is limited, but necessary to evaluate the safety of the increasing number of applications.
The objective of the research is to determine how TSI behaves at different fire temperatures during fire exposure and afterwards. Special attention is paid to changes in the heat flux, the material properties and vacuum state over time. For this purpose, thermogravimetric analysis (TGA) studies have been carried out. In addition, a test rig was developed that allows testing of TSI at temperatures up to 1000°C under realistic integration conditions and subsequent analysis of the TSI samples. In the test rig the double-wall with vacuum and MLI or perlites inside is simulated. The fire conditions are simulated on one side of the double-wall by adjustable electrical heating elements. This process allows the implementation of repeatable heat flows of up to 100 kW/m². On the other side of the double-wall, cold or cryogenic conditions are simulated with a heat exchanger through which water or the vapor of liquid nitrogen (approx. -196°C) flows. The heat exchanger is also used to determine the heat flux through the double-wall. Thus, the test rig allows thermal loading and performance analysis of TSI samples at the same time.
Compared to tests with real cryogenic systems, tests with this experimental setup have the advantage that, first, the instrumentation is easier to realize, and a higher repeatability is ensured. Second, the local heat flow can be determined over time, and the sample of a TSI can be taken non-destructively and thus analyzed. Third, the tests are less risky as well as time+ and material intensive, so that more tests and variants can be investigated with the same budget.
Preliminary results obtained considering several types of MLI under vacuum show that all observed typs of MLI can be damaged under strong thermal loading. The damages observed were outgassing, melting, shrinkage, cracking, lump formation, and concomitant local loss of the MLI's function as a radiation shield. However, the study also shows that a damage does not always have an extreme effect on the insulating performance.