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23 results for “Hebei Province”
High Speed Rail Seismic Observation in Baoding, Hebei Province of China
<p>H5 files includes all train events collected in the observation. Raw data in sac format is too big (600GB) to upload.</p> <p>To access all continuous data, please contact shiyxg@mail.iggcas.ac.cn/wenjc@pku.edu.cn/njy@pku.edu.cn</p> <p> </p> <table> <tbody> <tr> <td>File names</td> <td>Format</td> <td>date</td> </tr> <tr> <td>BSPK095*</td> <td>-100s-100s, dt=0.01</td> <td>0424-0504</td> </tr> <tr> <td>BSPKU87*</td> <td>-100s~100s, dt=0.01</td> <td>0510-0518</td> </tr> <tr> <td> <p>hsr_coor_stacked_201804*</p> </td> <td>stacked traces in different frequency bands</td> <td>0424-0504</td> </tr> <tr> <td> <p>hsr_coor_stacked_201805*</p> </td> <td>stacked traces in different frequency bands</td> <td>0510-0518</td> </tr> <tr> <td> <div>coor_all_201804_YNPK_CZ_158.npy</div> </td> <td> <p>ambient noise results at night, between 158 stations</p> <p>(S158_1804.txt)</p> </td> <td>0424-0504</td> </tr> <tr> <td> <div>coor_all_201805_YNPK_CZ_143.npy</div> </td> <td> <p>ambient noise results at night, between 143 stations</p> <p>(S143_18045txt)</p> </td> <td>0510-0518</td> </tr> <tr> <td> <div>1804_YNPK_CZ_f0.2_20_all_night.h5</div> </td> <td> <p>Continuous data at 13 nights of 4 stations for stability comparsion</p> </td> <td>0424-0504</td> </tr> <tr> <td> <div>H1.h5</div> </td> <td> <p>Correlation results of array in Baoding, 2023 March.</p> </td> <td>2023/0311-0328</td> </tr> </tbody> </table>
Fig. 1 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 1. Aggregations of orthothecide hyoliths preserved in purplish-red shales from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A. NIGPAS 166336. B. NIGPAS 166345. C. NIGPAS 166334. D. NIGPAS 166341b. E. NIGPAS 166346. Scale bars 5 mm, except E, 2 mm.
Fig. 8 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 8. Internal mould of the conch of cupithecid hyolith Cupitheca convexa sp. nov. (NIGPAS 166334) from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A. General view. B. Boundary between presumed protoconch and the rest of the shell. C. Transverse lines preserved on the surface of the conch. D. Conch covered with longitudinal to sub-radial ornament and mechanical compression forming a transverse ridge-like structure. E. Apical portion. F. Lamellar-fibrillar structure (indicated by white arrow in A). Scale bars: A, E, 200 μm; B, 20 μm; C, 2 μm; D, 50 μm; F, 5 μm.
Fig. 7 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 7. Statistical distribution of different skeletal parts, junctions of the outermost ring represent the number of data, and concentric circles represent length (in mm).
Fig. 6 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 6. Opercula of cupithecid hyolith Cupitheca convexa sp. nov. preserved as internal or external moulds, which are prepared from natural casts, collected from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A, B. Internal moulds of opercula, NIGPAS 166337 A) and NIGPAS 166342 (B); showing exteriors covered with concentric ribs, protoopercula (indicated by white arrows) and imprints of bilobate cardinal →
Fig. 5 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 5. Internal moulds of decollated segments of cupithecid hyolith Cupitheca convexa sp. nov. from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A. NIGPAS 166334, discarded apical segments with smooth surface (A1–A3, A6); bottom of the apex (A4); apical bottom covered with radial sculptures (A5); discarded segment preserves faint transverse lines on the surface of conch (A7). B. NIGPAS 166343, decollated segment displaying apical bottom, probable diagenetic artefacts on the bottom of apex (B1); branching ornamentation on the bottom of apex (B2). C. NIGPAS 166339a, decollated segments two segments preserved together the left one exhibits pits and longitudinal groove structures on the surface of terminal part (C1); detail C2); discarded apical segments with smooth surface (C3). Scale bars: A1, A3, A6, A7, B1, C3, 100 μm; A2, A4, 50 μm; C1, 200 μm; A5, B2, C2, 20 μm.
Fig. 2 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 2. Scanning electron micrographs of shell and shale fabrics as well as mineral elemental analyses of matrix from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A. NIGPAS 166334, fine grained clay minerals and hematite crystals in the matrix (A1). Tabular crystals of hematite forming rosette-shaped aggregations in the matrix (A2, A3); the cross in A2 shows the location of elemental analysis (A4). B. NIGPAS 166339a, skeleton coated with hematite. C. NIGPAS 166337, halite pseudomorphs distributed on the surface of undetermined fossil (C1), calcite imprints in the matrix (C2). Scale bars: A1, A2, C2, 2 μm; A3, 1 μm; B, 10 μm; C1, 50 μm.
Fig. 3 in Palaeobiology of orthothecide hyoliths from the Cambrian Manto Formation of Hebei Province, North China
Fig. 3. Novitatid hyolith Decoritheca cyrene (Walcott, 1905) from the Manto Formation (Cambrian Stage 4/5) in the Zuojiawu section of Tangshan, China. A. NIGPAS 166338 in dorsal view. B. NIGPAS 166335 in ventral (B1) and ventro-lateral (B3) views; detail showing transverse lines on the external surface of venter (B2). C. NIGPAS 166337 in dorsal view, conch of Decoritheca cyrene with operculum of Cupitheca convexa sp. nov. in apertural region (C1); rows of tubercles (C2), inset shows enlarged individual tubercle with nearly flat top. D. NIGPAS 166329 in ventral view. E. NIGPAS 166341b, aperture with reniform cross section. F. NIGPAS 166331 in ventral view; F1, incomplete shell showing well developed median concavity and adjacent ridges; F2, nearly complete shell with broken aperture and adapically shallowing median concavity. G. NIGPAS 166330, both shells display partial venter and partial dorsum from dorsal view. H. NIGPAS 166333 in ventral view. I. NIGPAS 166332 in dorsal view, white arrows indicate algae. Scale bars: A, D, B3, F–I, 2 mm; B1, C1, 1 mm; B2, 100 μm; C2, 20 μm; E, 200 μm.
Data from: Poor infant and young child feeding practices and sources of caregivers' feeding knowledge in rural Hebei Province, China: findings from a cross-sectional survey
Objectives: To obtain a general overview of infant and young child feeding practices in one rural county in China and identify current delivery channels and challenges. Design: A cross-sectional study. Setting: A rural county, Zhao County, in Hebei Province, China. Participants: 10 clusters were first selected within each township (16 townships in total) with proportional to population size sampling. In each cluster, a name list was used to select 13 children aged 0–23 months. We interviewed caregivers of all the selected children. Primary and secondary outcomes measures: Coverage of infant feeding practices, reasons for low coverage of infant feeding practices and current delivery channels of infant feeding practices. Results: Findings from our survey indicated that infant feeding practices were poor. Early initiation of breastfeeding was only 22.4%, exclusive breastfeeding for 6 months was less than 10% and continued breastfeeding up to the age of two was just 38.2%. Only 32.5% of children were given iron-rich or iron-fortified foods. The leading sources of infant feeding information were family members, neighbours, friends and popular media. Only around 20% of the information came from health facilities and nearly none came from communities. Household property data showed that 99.9% of households owned televisions and 99.4% owned mobile phones. In addition, 61.2% of the households owned computers, with 54.8% having access to the internet. Conclusions: Few caregivers of children in Zhao County received feeding information during pregnancy and after delivery. Moreover, their feeding knowledge and practices were poor. Multi-channel approaches, delivered through health facilities, community resources, popular media, the internet and mobile phones, hold potential to improve infant feeding practices and should be explored in future studies. Strengths and limitations: Although this study took place only within one county, a full range of globally standard feeding indicators was used to assess the feeding practices of caregivers in our study. The name lists of children in some villages may not be complete, and therefore selection bias may have occurred. Some indicators may have recall bias due to long recall time. Trial registration number: ChiCTR-PRC-11001446.
FIGURES 1–4 in New species of Platypalpus from Hebei province, China (Diptera: Empididae)
FIGURES 1–4. Platypalpus hebeiensis sp. n., male. 1. Spur on mid tibia; 2. genitalia, dorsal view; 3. right surstylus; 4. left epandrial lamella.
FIGURES 8–10 in New species of Platypalpus from Hebei province, China (Diptera: Empididae)
FIGURES 8–10. Platypalpus xiaowutaiensis sp. n., male. 8. Genitalia, dorsal view; 9. right epandrial lamella; 10. left epandrial lamella.
FIGURES 5–7 in New species of Platypalpus from Hebei province, China (Diptera: Empididae)
FIGURES 5–7. Platypalpus acutatus sp. n., male. 5. Genitalia, dorsal view; 6. right epandrial lamella; 7. left epandrial lamella.
Distribution. Disjunct locations in NE China (Liaoning, Inner Mongolia [= Nei Mongol], Hebei, Beijing, and Shandong), N & C Laos, and NE Thailand (Loei Province). There are three vagrant records in Japan, on Amami-Oshima, Kuchinoerabujima, and Yoronjima Is. in Molossidae
Distribution. Disjunct locations in NE China (Liaoning, Inner Mongolia [= Nei Mongol], Hebei, Beijing, and Shandong), N & C Laos, and NE Thailand (Loei Province). There are three vagrant records in Japan, on Amami-Oshima, Kuchinoerabujima, and Yoronjima Is.
FIGURE 2 in Application of DNA Barcoding in the Classification of Grasshoppers (Orthoptera: Acridoidea) - A Case Study of grasshoppers from Hebei Province, China
FIGURE 2. Automatic partition results of ABGD in 384 samples based on prior intraspecific divergence range of 0.001-0.1
FIGURE 1 in Application of DNA Barcoding in the Classification of Grasshoppers (Orthoptera: Acridoidea) - A Case Study of grasshoppers from Hebei Province, China
FIGURE 1. Condensed tree of ML analysis, and color bars for ABGD result and MOTU result (marks for consistent with morphospecies, others for inconsistent with morphospecies)
Data from: Poor infant and young child feeding practices and sources of caregivers’ feeding knowledge in rural Hebei Province, China: findings from a cross-sectional survey
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Figure 5 from: Jiang N, Liang L-Y, Tian C-M (2020) Gnomoniopsis chinensis (Gnomoniaceae, Diaporthales), a new fungus causing canker of Chinese chestnut in Hebei Province, China. MycoKeys 67: 19-32. https://doi.org/10.3897/mycokeys.67.51133
Figure 5 Lesions resulting from inoculation of Gnomoniopsis chinensis onto detached Castanea mollissima branches, and wound response on the negative control aCFCC 52288 bCFCC 52286 c negative control.
Figure 6 from: Jiang N, Liang L-Y, Tian C-M (2020) Gnomoniopsis chinensis (Gnomoniaceae, Diaporthales), a new fungus causing canker of Chinese chestnut in Hebei Province, China. MycoKeys 67: 19-32. https://doi.org/10.3897/mycokeys.67.51133
Figure 6 Lesions resulting from inoculation of Gnomoniopsis chinensis onto 3-year-old Castanea mollissima seedlings, and wound response on the negative control a, dCFCC 52288 b, eCFCC 52286 c, f negative control. Row 1: lesions on the bark; row 2: lesions beneath the bark.
Figure 3 from: Jiang N, Liang L-Y, Tian C-M (2020) Gnomoniopsis chinensis (Gnomoniaceae, Diaporthales), a new fungus causing canker of Chinese chestnut in Hebei Province, China. MycoKeys 67: 19-32. https://doi.org/10.3897/mycokeys.67.51133
Figure 3 Conidiomata of Gnomoniopsis chinensis from Castanea mollissima (BJFC-S1380, holotype) a–c habit of conidiomata on the chestnut stem d transverse sections through conidiomata e longitudinal sections through conidiomata. Scale bars: 1 mm (b–e).
Figure 4 from: Jiang N, Liang L-Y, Tian C-M (2020) Gnomoniopsis chinensis (Gnomoniaceae, Diaporthales), a new fungus causing canker of Chinese chestnut in Hebei Province, China. MycoKeys 67: 19-32. https://doi.org/10.3897/mycokeys.67.51133
Figure 4 Morphology of Gnomoniopsis chinensis from PDA (CFCC 52286, ex-type culture) a colonies on PDA b conidiomata formed on PDA c, f conidia d, e conidiogenous cells. Scale bars: 1 mm (b); 10 μm (c–f).
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.