DEVICE FOR CONTROLLING THE TEMPERATURE OF A TEST SAMPLE
20190041344 ยท 2019-02-07
Inventors
Cpc classification
G01N25/50
PHYSICS
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2013/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/0251
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01N25/50
PHYSICS
Abstract
In a device for controlling the temperature of a test sample in a measuring device for measuring material properties of the test sample, comprising a measuring cell for receiving the test sample, at least one temperature controlling element, and a thermal storage element coupled to the temperature controlling element to transfer heat, wherein means are provided for changing the thermal resistance between the thermal storage element and the measuring cell in order to selectively couple or decouple the thermal storage element and the measuring cell in terms of heat transfer, the ratio of the thermal capacity of the thermal storage element to the thermal capacity of the measuring cell is greater than 1:1, preferably at least 2:1, preferably at least 5:1.
Claims
1.-7. (canceled)
8. A method for measuring material properties of a test sample and subsequently cooling the test sample using a device for controlling the temperature of a test sample in a measuring unit for measuring material properties of the test sample, comprising a measuring cell for receiving the test sample, at least one temperature controlling element, and a thermal storage element coupled to the temperature controlling element to transfer heat, wherein means are provided for changing the thermal resistance between the thermal storage element and the measuring cell in order to selectively couple or decouple the thermal storage element and the measuring cell in terms of heat transfer, wherein the ratio of the thermal capacity of the thermal storage element to the thermal capacity of the measuring cell is greater than 1:1, comprising the steps of: a) measuring the material properties of the test sample at a measuring temperature; b) before and/or during step a): cooling the thermal storage element in the state decoupled from the measuring cell in terms of heat transfer, by using the temperature controlling element; c) after steps a) and b): reducing the thermal resistance between the thermal storage element and the measuring cell in order to couple the thermal storage element and the measuring cell to transfer heat; d) continuously transferring heat from the measuring cell to the thermal storage element, whereby the test sample is cooled from the measuring temperature to a temperature suitable for removing the test sample; and e) removing the test sample.
9. The method according to claim 8, wherein the ratio of the thermal capacity of the thermal storage element to the thermal capacity of the measuring cell is greater than at least 2:1.
10. The method according to claim 9, wherein the ratio of the thermal capacity of the thermal storage element to the thermal capacity of the measuring cell is greater than at least 5:1.
11. The method according to claim 8, wherein the ratio of the thermal capacity of the thermal storage element to the thermal capacity of the measuring cell is selected such that the temperature of the thermal storage element at the end of step d) does not exceed approximately 200 C.
12. The method according to claim 11, wherein the temperature of the thermal storage element at the end of step d) does not exceed approximately 160 C.
13. The method according to claim 12, wherein the temperature of the thermal storage element at the end of step d) does not exceed approximately 120 C.
14. The method according to claim 8, wherein the means for changing the thermal resistance comprise a drive for moving the thermal storage element, the measuring cell and/or an interposed heat transfer element between a first position, in which the thermal storage element and the measuring cell are in thermoconductive contact, and a second position, in which the thermal storage element and the measuring cell are thermoconductively separated from each other.
15. The method according to claim 11, wherein the means for changing the thermal resistance comprise a drive for moving the thermal storage element, the measuring cell and/or an interposed heat transfer element between a first position, in which the thermal storage element and the measuring cell are in thermoconductive contact, and a second position, in which the thermal storage element and the measuring cell are thermoconductively separated from each other.
16. The method according to claim 8, wherein a fluid cycle connecting the thermal storage element and the measuring cell is provided as heat transfer element, and that the means for changing the thermal resistance comprise a pump disposed in the fluid cycle.
17. The method according to claim 11, wherein a fluid cycle connecting the thermal storage element and the measuring cell is provided as heat transfer element, and that the means for changing the thermal resistance comprise a pump disposed in the fluid cycle.
18. The method according to claim 14, wherein a fluid cycle connecting the thermal storage element and the measuring cell is provided as heat transfer element, and that the means for changing the thermal resistance comprise a pump disposed in the fluid cycle.
19. The method according to claim 8, wherein the temperature controlling element comprises a thermoelectric element, a Peltier element, or is designed as such an element.
20. The method according to claim 8, wherein the device is designed for measuring a flash point of a fluid or solid test sample, wherein the measuring cell comprises a measuring chamber for receiving the test sample, and wherein a control device for controlling the temperature controlling element is further provided.
21. The method according to claim 20, wherein the device is designed for measuring the flash point of a petroleum product.
22. The method according to claim 20, wherein the measuring chamber comprises a measuring tub and a lid and which is provided with an electric igniter including spark gap, at least one temperature sensor, and a pressure measuring device, and wherein the control device is configured to control the temperature controlling element, the electric igniter, and a contacting device and to detect measurements of the at least one temperature sensor and the pressure measuring device.
Description
[0041] In the following, the invention will be explained in more detail by way of an exemplary embodiment schematically illustrated in the drawing. Therein,
[0042]
[0043]
[0044]
[0045]
[0046] The heat transport between the measuring cell 1 and the thermal storage element 3 can be accomplished by heat conduction via solid bodies. In this case, a mechanical contact must be established between the measuring cell 1 and the thermal storage element 3. This may be effected either by moving a plate or wedges, or by rotating an ellipse. In any case, a mechanical part with good thermal conductivity (e.g. metal) has to be moved and brought into contact with both elements. Another option is to directly bring into contact the measuring cell 1 and the thermal storage element 3 by an appropriate movement of one or both of these components.
[0047] In the exemplary embodiment according to
[0048] In the alternative embodiment according to
[0049] In a manner similar to liquids, gases (air) can also be used for the transport. However, a significantly higher volume flow would be necessary because of the lower thermal capacity of gases, which would call for large cooling bodies on the individual components.
[0050] All of the described embodiments have in common that the thermal storage element 3 has a high thermal capacity such that the ratio of the thermal capacity of the thermal storage element 3 to the thermal capacity of the measuring cell 1 is greater than 1:1, preferably at least 2:1, preferably at least 5:1. With the thermal storage element 3 being appropriately precooled, it will be possible to rapidly cool the measuring cell 1 without the thermal storage element 3 reaching a temperature above the limit temperature of the Peltier element 2.