Encounter 14 (2022-12-06 - 2022-12-16, with limited additional data 2022-12-03 - 2022-12-18)
Solar Features
2022-12-07 01:30 Streamer Blob
2022-12-07 16:15 Streamer Blob
2022-12-08 00:15 Streamer Blob
2022-12-08 21:37 CME with highly visible helical structure
2022-12-09 04:52 Streamer Blob
2022-12-09 12:45 CME
2022-12-10 03:37 CME
2022-12-10 12:00 Streamer Blob
2022-12-11 02:00 CME
2022-12-11 08:07 CME
2022-12-11 17:52 CME
2022-12-11 22:37 Streamer Blob
2022-12-12 00:52 CME
2022-12-12 13:30 Streamer Blob
2022-12-13 08:30 Streamer Blob
2022-12-13 20:52 Streamer Blob
2022-12-14 20:00 CME
2022-12-15 00:15 CME
2022-12-15 15:45 Streamer Blob
2022-12-15 17:45 CME
2022-12-16 06:30 CME
Miscellaneous Notes:
- On 03 and 04 December, a bias image commanded at the wrong gain level was used to remove the bias on board the inner telescope images. The bias level subtracted off was below the proper amount, leaving a remnant column to column signal in the L1 files for all these images. Using the remaining signal in the masked columns of the affected images, a new, additional bias image was created on the ground and subtracted from each image, creating a corrected Level 2 image in which the remnant pattern has been removed.
Comets
Two Kreutz-group sungrazing comets can be seen during this encounter, on Dec 7 and Dec 8 2023. These are both known SOHO comet discoveries (SOHO-4590 and SOHO-4591).
Planets
The following planets were visible in the encounter, all moving left-to-right. The following dates refer to their visibility only in the WISPR-Inner camera, and assumes they transit the outer camera too:
- Venus, beginning approx. 2022-12-11 07UT
- Saturn, beginning approx. 2022-12-11 17UT (above Mercury)
- Mercury, beginning approx. 2022-12-11 17UT (below Saturn)
- Jupiter, beginning approx. 2022-12-12 08UT
Encounter 14 Data Products
- Encounter 14 Level-2 FITS (11.0 GB zip file)
- Encounter 14 Level-2b FITS, Background Models (9.8 GB zip file)
- Encounter 14 Level-3 FITS (9.9 GB zip file)
- Encounter 14 L1 and L2 Summary Files (<1 MB zip file)
- Encounter 14 Level-3 PNGs, Inner camera (1.2 GB zip file)
- Encounter 14 Level-3 PNGs, Outer camera (1.4 GB zip file)
- Encounter 14, Inner mpg, 480x512px (22 MB)
- Encounter 14, Inner mpg, 960x1024px (153 MB)
- Encounter 14, Outer mpg, 480x512px (113 MB)
- Encounter 14, Outer mpg, 960x1024px (624 MB)
- Encounter 14, Inner mvi, 480x512px (363 MB)
- Encounter 14, Inner mvi, 960x1024px (1.4 GB)
- Encounter 14, Outer mvi, 480x512px (357 MB)
- Encounter 14, Outer mvi, 960x1024px (1.4 GB)
Encounter 14 J-maps, R-maps, and Lat-maps
The following data products are J-maps, R-maps, and Lat-maps for this Encounter, provided by NASA/JPL/CALTECH. Some reference on the use and interpretation of elongation versus time maps (aka J-maps) are Sheeley et al., 1999 ( DOI: 10.1029/1999JA900308), Sheeley et al., 2008 ( DOI: 10.1086/529020) and Rouillard et al., 2010 ( DOI: 10.1029/2009JA014472). A reference for the creation and use of R-maps is Nindos et al., 2021 (DOI: 10.1051/0004-6361/202039414). Various ways of constructing Latitude versus Time maps are described in Poirier et al., 2020 (DOI: 10.3847/1538-4365/ab6324), Nindos et al., 2021 (DOI: 10.1051/0004-6361/202039414), and Liewer et al., 2023 (DOI: /10.3847/1538-4357/acc8c7).
[ABOVE] This 8-day WISPR J-map shows solar elongation (angle from the Sun center) versus time at a fixed latitude measured relative to the PSP-Venus orbit plane. It is created from composite LW-processed full field-of-view (FOV) composite images such as those in the LW movie above, in which the PSP-Venus orbit plane is marked with a blue line. For each image (each time), data is collected along the PSP-Venus orbit plane for the full range of elongations in the WISPR FOV. The collected data is then stacked in time (x-axis) with elongation as the y-axis. The WISPR movies at this web site can be used to identify and find the cause of the various features seen in the J-map. Below the time axis are two additional axes showing PSP’s distance to the Sun RP and its Carrington longitude at that time. The time span in this and subsequent maps is centered on the time of perihelion. [Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).]
[ABOVE] This 4-day WISPR J-map uses the same data as the 8-day J-map above, but shows only 4 days, centered on perihelion, and only includes distances to 25 R☉ to provide better resolution. See the caption above for more information. [Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).]
[ABOVE] This 8-day R-map uses the same data as the 8-day J-map (the data collected at each time/image along the PSP-Venus orbit plane), but makes the assumption that the (line-of-sight integrated) signal at each solar elongation all comes from where that line-of-sight hits the Thomson sphere, which is the location of maximum sensitivity of a white light telescope (see, e.g., Vourlidas & Howard, 2006, ApJ,642,1216; DOI: 10.1086/501122). This distance RT (the new y-axis) is related to the elongation by RT=RP*sin(elongation), where RP is PSP’s distance to the Sun. The R-map can be considered a “height-time” plot with and such maps can be used to estimate of the velocity of the observed transients. The LW composite movie above can be used to identify and find the cause of the various features seen in the R-map. Only data up to 90° has been included. [Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).]
[ABOVE] This 4-day WISPR R-map shows the same data as the 8-day R-map above, but for only 4 days, centered on perihelion, to provide better resolution. See the caption for the 8-day R-map for more information.[Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).].
[ABOVE] This 8-day Lat-map shows the evolution in latitude, measured from the PSP-Venus orbit plane, for a fixed solar elongation of 26°-28°. The map is created from L3-processed images by collecting the arc of data in the WISPR-I FOV in the range 26°-28°elongation from each image and stacking the data horizontally in time (for details, see Liewer et al, 2023; DOI: 10.3847/1538-4357/acc8c7). Near perihelion when PSP is moving faster than the Sun rotates, quasi-stationary coronal rays may show large changes in apparent latitude as they approach and pass over or under the spacecraft. The map was created using L3 processed images. The L3 movies at this web site can be used to identify features seen in the Lat-map. [Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).]
[ABOVE] This 8-day Lat-map shows the evolution in latitude, measured from the PSP-Venus orbit plane, by collecting the arc of data in the WISPR-O FOV for a fixed solar elongation range of 54°-56°. It is made in the same way as the WISPR-I Lat-map above. See that caption for more information. [Credit: NASA/JPL. Data processed by Paulo Penteado (JPL/Caltech).]
Released data for all encounters can be obtained from our WISPR Data Page. Descriptions of other encounters can be found on the Encounter Summaries Page.