TDI LINE DETECTOR
20200066785 · 2020-02-27
Assignee
Inventors
Cpc classification
H04N25/711
ELECTRICITY
International classification
Abstract
The invention relates to a TDI line detector (1), comprising n TDI lines (Z1-Zn), wherein each TDI line (Z) has m pixels (P), and at least one read-out electronics (11-14), wherein the TDI line detector (1) is subdivided into x submodules (S1-S4), wherein the number of lines (Z) of a submodule (S1-S4) is n/x, wherein a discrete read-out electronics (11-14) is associated with the last line of each submodule (S1-S4), wherein the length (L1) of the read-out electronics (11-14) corresponds to an integer multiple of the length (L2) of a pixel (P), wherein x2 is, wherein the associated pixels (P) of different submodules (S1-S4) are arranged pixel to pixel relative to one another or the submodules (S1-S4) or groups of submodules (S1-S4) are laterally interlinked alternately by half a pixel (P).
Claims
1. A TDI line detector (1) comprising n TDI lines (Z1-Zn), each TDI line (Z) having m pixels (P), and at least one set of readout electronics (11-14), characterized in that the TDI line detector (1) is divided into x submodules (S1-S4), the number of lines (Z) of a submodule (S1-S4) being n/x, the last line of each submodule (S1-S4) being associated with a separate set of readout electronics (11-14), the length (L1) of the readout electronics (11-14) corresponding to an integral multiple of the length (L2) of a pixel (P), where x2, and the associated pixels (P) of different submodules (S1-S4) are positioned relative to one another with pixel-level accuracy or the submodules (S1-S4) or groups of submodules (S1-S4) are alternatingly positioned laterally offset by a half-pixel (P).
2. The TDI line detector according to claim 1, characterized in that 10x100.
3. The TDI line detector according to claim 1, characterized in that at least some of the submodules (S1-S4) have filters for various spectral ranges.
4. The TDI line detector according to claim 1, characterized in that the pixel size is the same for all lines.
5. The TDI line detector according to claim 1, characterized in that the pixels (P) are rectangular, the pixels (P) being twice as wide as they are long.
6. The TDI line detector according to claim 2, characterized in that at least some of the submodules (S1-S4) have filters for various spectral ranges.
7. The TDI line detector according to claim 2, characterized in that the pixel size is the same for all lines.
8. The TDI line detector according to claim 3, characterized in that the pixel size is the same for all lines.
9. The TDI line detector according to claim 6, characterized in that the pixel size is the same for all lines.
10. The TDI line detector according to claim 2, characterized in that the pixels (P) are rectangular, the pixels (P) being twice as wide as they are long.
11. The TDI line detector according to claim 3, characterized in that the pixels (P) are rectangular, the pixels (P) being twice as wide as they are long.
12. The TDI line detector according to claim 4, characterized in that the pixels (P) arc rectangular, the pixels (P) being twice as wide as they are long.
13. The TDI line detector according to claim 6, characterized in that the pixels (P) arc rectangular, the pixels (P) being twice as wide as they are long.
14. The TDI line detector according to claim 7, characterized in that the pixels (P) arc rectangular, the pixels (P) being twice as wide as they are long.
15. The TDI line detector according to claim 8, characterized in that the pixels (P) arc rectangular, the pixels (P) being twice as wide its they are long.
16. The TDI line detector according to claim 9, characterized in that the pixels (P) arc rectangular, the pixels (P) being twice as wide as they are long.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0013] The invention will be explained in greater detail below based on preferred exemplary embodiments. In the figures:
[0014]
[0015]
DETAILED DESCRIPTION OF THE INVENTION
[0016]
[0017] The length L1 of the readout electronics 11-14 in this case is an integral multiple of the length L2 of the pixels P. The associated pixels P are positioned relative to one another with pixel-level accuracy. The lines Z1-Zn and the readout electronics 11-14 are then synchronously clocked. This division into submodules S1-S4 reduces by a factor of 4 the time during which the position of the TDI line detector 1 has to be stable (e.g. deviation in the spatial position of less than of a pixel). This can then also be used, for example, to increase the number n of lines since the stability requirements can be easily met by means of a correspondingly high number of submodules.
[0018]
[0019] This is of interest particularly for multispectral recordings since they usually use larger pixel areas.