SAMPLE CONTAINER ARRANGEMENT
20190224683 ยท 2019-07-25
Inventors
Cpc classification
B01L9/52
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/025
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/147
PERFORMING OPERATIONS; TRANSPORTING
B01L3/508
PERFORMING OPERATIONS; TRANSPORTING
B01L7/52
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L7/00
PERFORMING OPERATIONS; TRANSPORTING
B01L9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention provides a sample container arrangement comprising a carrier for at least one sample container and a tempering module, comprising at least one tempering element and being at least sectionally in contact with the carrier such that the at least one tempering element is suitable to temper the at least one sample container, wherein the sample container arrangement is such that the carrier is kept in contact to the tempering module by negative pressure relative to ambient pressure.
Claims
1. A sample container arrangement comprising a carrier for at least one sample container and a tempering module, comprising at least one tempering element and being at least sectionally in contact with the carrier such that the at least one tempering element is suitable to temper the at least one sample container, wherein the carrier is kept in contact to the tempering module by negative pressure relative to ambient pressure, wherein the at least one sample container is formed within the carrier, wherein at least one cavity is formed between the carrier and the tempering module, the cavity can be put under negative pressure, wherein the at least one cavity is formed by formation of adjacent sides of the carrier and the tempering module.
2. The arrangement according to claim 1, wherein the adjacent side of the carrier has a zigzag design.
3. The arrangement according to claim 2, wherein the zigzag design of the adjacent side of the carrier determines the number and arrangement of the cavities and the sample containers.
4. The arrangement according to claim 1, wherein the sample container arrangement can be rotated.
5. The arrangement according to claim 1, wherein the at least one sample container is in alignment with the at least one tempering element.
6. The arrangement according to claim 1, wherein the carrier is a disposable.
7. The arrangement according to claim 1, wherein at least one seal is provided between the carrier and the tempering module.
8. The arrangement according to claim 1, wherein at least one air connection is formed within the tempering module.
9. The arrangement according to claim 1, wherein at least one vacuum pump is provided.
10. The arrangement according to claim 9, comprising a valve system for undocking the vacuum pump.
11. The arrangement according to claim 1, wherein the arrangement is adapted for detection by fluorescence.
12. The arrangement according to claim 1, wherein the arrangement is adapted for detection by absorption.
13. The arrangement according to claim 1, wherein the tempering module comprises at least one Peltier element.
14. The arrangement according to claim 1, wherein the arrangement comprises a number of sample containers, the temperature of each sample container can be controlled individually.
15. The arrangement according to claim 1, wherein the arrangement comprises at least one temperature sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0042] In the drawings,
[0043]
[0044]
DETAILED DESCRIPTION
[0045] The figures are described cohesively and in overlapping fashion, the same reference numerals denoting identical parts.
[0046]
[0047] Within the carrier 12 a number of sample containers 16 are formed. The arrangement 10 can be rotated as illustrated with arrow 18. The arrangement 10 is such that it can be rotated in both directions.
[0048]
[0049] Furthermore, the drawing shows a vacuum pump 20, two pressure sensosr 22, particularly, differential pressure sensors, air lines 24 and a temperature sensor 26.
[0050] The carrier 12 has a first side 30 and a second side 32 which is opposite to the tempering module 14. The second side 32 is formed such that a number of sample containers 16 are formed within the carrier 12. The sample containers 16 can be formed by formation of the first side 30 as well. The second side 32 of the carrier 12 is in contact to the tempering module 14 in the range of the sample containers 16. The second side 32 can be in direct contact with the tempering module 14 or indirectly via a heat conduction medium 36 which is provided between the tempering module 14 and the second side 32 of the carrier 12. This medium 36 defines the thermal contact between the carrier 12 and the tempering module 14.
[0051] The second side 32 of the carrier and the side of the tempering module 14 opposite to this second side 32 are the adjacent sides as mentioned in claim 1.
[0052] Between the carrier 12 and the tempering element 14 a number of cavities 38 are formed. In this embodiment, the zigzag design of the carrier 12, particularly, the design of the second side 32 of the carrier 12 in the shown longitudinal section, determines the number and arrangement of the cavities 38 and the sample containers 16.
[0053] Within the tempering module 14 there are air connections 40 through which the air lines 24 are conducted to connect the vacuum pump 20 to the cavities 38 between the carrier 12 and the tempering element 14. Therefore, the cavities 38 can be put under negative pressure in comparison to ambient pressure 42.
[0054] To improve steadiness of the negative pressure in the cavities 38 a seal 44 is provided between the carrier 12 and the tempering element 14.
[0055] The negative pressure can be used for positioning and fixing of the carrier 12 in relation to the tempering module 14. The tempering can be performed only in small regions in the range of the sample containers 16 to reduce the thermal capacity. Therefore, the tempering can be performed faster and less energy is consumed.
[0056] The arrangement 10 can be designed as a point of need device being small, light, and portable. Batteries can be used as energy storage as only small areas have to be tempered. The thermal contact can be improved by using a heat conduction medium, e.g. a heat conduction film or a heat conduction adhesive.
[0057] The vacuum pump 20 can be designed for rotating or moving together with the arrangement using sliding contacts. Using a stationary pump, a valve can be used for relief of the seal and reducing the friction.
[0058] Heating can be performed with help of Peltier elements or an inductive heating. Cooling can be performed by air.
[0059] The shown arrangement 10 illustrates that there can be different zones for heat transfer and for providing a vacuum, i.e. there are tempering zones and vacuum zones.