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134 results for “LIME”
Root Biomass, Fine Root Production, Soil Mass, and Soil pH in Limed and Control Plots at the Woods Lake Watershed, Adirondack Park, NY, USA, 2021-2022
In 1989, 6.89 Mg/ha of pelletized lime (CaCO3) was applied by helicopter to two subcatchments at the Woods Lake Watershed in Adirondack Park, New York, USA to ameliorate ecosystem acidification. Two unlimed (control) subcatchments were paired with limed subcatchments. In the same year, 99 permanent plots (20 m x 20 m) were established. Between 2008 and 2010, tree inventory and soil physicochemical measurements were made in five plots in each of the four subcatchments (20 plots total). This dataset contains soil physicochemical properties (dry mass, depth, and pH); root biomass (<1 mm, 1-2 mm, and >2 mm diameter); and annual fine root production (<1 mm and 1-2 mm) measurements made between 2021 and 2022 in 19 of these same plots (5 plots per control subcatchment and 4 or 5 plots per limed subcatchment). Data include measurements for all properties for Oe, Oa, and 0-10 cm mineral soil samples collected from 5 locations within each plot.
Supplementary table 1 for 'Imperial timber? Dendrochronological evidence for large-scale road building along the Roman limes in the Netherlands' (2015)
<p>This supplementary table to Visser(2015) was not openly available. This dataset provides the supplementary table in the open ODS-format and also as XLS and CSV.</p> <div> <div>Publication: Visser, RM. 2015 Imperial timber? Dendrochronological evidence for large-scale road building along the Roman limes in the Netherlands. <em>Journal of Archaeological Science</em> 53: 243–254. DOI: <a href="https://doi.org/10.1016/j.jas.2014.10.017">https://doi.org/10.1016/j.jas.2014.10.017</a>.</div> </div>
Base images for the article "Optimization of a frosting process for soda lime silicate glass based on phosphoric acid"
<p>Raw dataset of the optimization of a frosting process for soda lime silicate glass based on phosphoric acid.</p> <p><strong>Naming scheme:</strong></p> <ul> <li>Images starting with <strong>HGr</strong> are frosted using the industrial process. These files represent the reference frosting.</li> <li>Images starting with <strong>HG</strong> are frosted manually following the industrial process.</li> <li>In all other images, the solution concentrations within the preliminary bath are noted als follows: <ul> <li><strong>[c<sub>H3PO4</sub>]-[c<sub>NH4HF2</sub>]_[specimen]_[position].jpg</strong></li> <li>For example 10-2_e_1.jpg: This specimen was treated with a preliminary bath with 10 M-% H<sub>3</sub>PO<sub>4 </sub>and 20 g/L NH<sub>4</sub>HF<sub>2</sub>. It originates from the fith specimen (e) and is the first image of this series.</li> </ul> </li> </ul> <p> </p>
Dataset: United States Lime & Minerals, Inc. (USLM) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Fig. 2 in Characteristic Growing Parameters Of Small-Leaved Lime And Norway Maple Stands In The Climatic Conditions Of Latvia
Fig. 2. Small leaved lime and Norway maple area dynamics in Latvia in 2001–2017 (http:// www.vmd.gov.lv/ Digital Forest Map Database of the State Forest Register [Accessed on March 2017]).
Fig. 3 in Characteristic Growing Parameters Of Small-Leaved Lime And Norway Maple Stands In The Climatic Conditions Of Latvia
Fig. 3. Site location of sample plots of small leaved lime and Norway maple stands (Legend: L 15 (plantation forest); L 16 (plantation forest); L 17 (plantation forest); L 80 (forest stand); L 90 (forest stand); L 115 (forest stand) – lime/age; M 12 – plantation; M 12* – forest stand; M 55 (naturally established plantation forest); M (forest stand); M (forest stand) – lime/age; maple/age).
Fig. 1 in Occurrence of the Lime Swallowtail Papilio demoleus Linnaeus, 1758 (Lepidoptera: Papilionidae) in Western Cuba
Fig. 1. Adult Papilio demoleus from Reparto Versalles, La Lisa Municipality, Havana, photographed alive in nature.
Fig. 2 in Occurrence of the Lime Swallowtail Papilio demoleus Linnaeus, 1758 (Lepidoptera: Papilionidae) in Western Cuba
Fig. 2. Geographical distribution of Papilio demoleus in Cuba: previous records (red symbols) and new records (yellow symbols). Image frame = 1,200 x 400 km. New eastern records reduced to selected but actual representative occurrences, in order to avoid an overloaded figure.
Figure 2 in Recent invasion of the Lime Swallowtail Papilio demoleus (Lepidoptera: Papilionidae) to Seychelles
Figure 2. Two male specimens of Papilio demoleus malayanus collected in the garden of Chalets d'Anse Forbans, Mahé, Seychelles: A-B) on 6 January 2020 (A – upperside; B – underside) [RMBH]; and C-D) on 13 January 2020 (C – upperside; D – underside) [RMBH]. Scale bar = 10 mm. (Photos: Yulia S. Kolosova).
Figure 3 in Recent invasion of the Lime Swallowtail Papilio demoleus (Lepidoptera: Papilionidae) to Seychelles
Figure 3. Live individual of Papilio demoleus malayanus in the garden of the Double Tree by Hilton Seychelles Hotel, Mahé, Seychelles, 8 January 2020 (Photo: Yulia S. Kolosova).
Figure 4 in Recent invasion of the Lime Swallowtail Papilio demoleus (Lepidoptera: Papilionidae) to Seychelles
Figure 4. Typical damage of citrus tree (Citrus sp., Rutaceae) leaves caused by feeding of what is thought to be Papilio demoleus malayanus larvae in the garden of Chalets d'Anse Forbans, Mahé, Seychelles, 18 January 2020 (Photo: Yulia S. Kolosova)
Figure 1 in Recent invasion of the Lime Swallowtail Papilio demoleus (Lepidoptera: Papilionidae) to Seychelles
Figure 1. Records of Papilio demoleus malayanus from Mahé, Seychelles: 1 – Anse Marie-Louise, 2 – Chalets d'Anse Forbans, 3 – Double Tree by Hilton Seychelles Hotel, 4 – Anse Royale, 5 – Pointe au Sel, 6 – Mare Anglaise, 7 – Mont Buxton, and 8 – Victoria (see Table 1 for details).
Figure 1 in No effect of liming on the Eastern Red-backed Salamander after 5 years
Figure 1. Comparison of the regressions of weight as a function of snout vent length of Eastern Red-backed Salamanders captured in control (open circles, dashed line) or limed (black circles, solid line) blocks in August 2016 in the Portneuf Wildlife Sanctuary, located approximately 100 km northwest of Québec City (Quebec, Canada).
Text-fig. 1. A. Location of the sites of Capo di Fiume, Palena and Pollenzo near Alba. B. Capo di Fiume stratigraphic section. Facies of coastal-transitional marine associations – a. Freshwater marsh and tidal creeks interval, b. Swamp interval, c1–c4. Facies of eustarine bay associations, d1–d6. Facies of open shelf marine associations. Symbols: "black star" – fossiliferous horizon with plant material studied here, 1. mottled grey to dark-brown marls and clayey marls, 2. fissile dark-grey marls and shaly marls, 3. limestones, 4. marly limestones and limey marls, 5. bio-lithoclastic calcarenites, 6. lime conglomerate, 7. massive muddy deposit produced by mass-flow mechanism, 8. diatomitic marls, 9. "terra rossa" soil (modified after Carnevale et al. 2011). in Feather Palm Foliage From The Messinian Of Italy (Capo Di Fiume, Palena And Pollenzo Near Alba) Within The Framework Of Northern Mediterranean Late Miocene Flora
Text-fig. 1. A. Location of the sites of Capo di Fiume, Palena and Pollenzo near Alba. B. Capo di Fiume stratigraphic section. Facies of coastal-transitional marine associations – a. Freshwater marsh and tidal creeks interval, b. Swamp interval, c1–c4. Facies of eustarine bay associations, d1–d6. Facies of open shelf marine associations. Symbols: "black star" – fossiliferous horizon with plant material studied here, 1. mottled grey to dark-brown marls and clayey marls, 2. fissile dark-grey marls and shaly marls, 3. limestones, 4. marly limestones and limey marls, 5. bio-lithoclastic calcarenites, 6. lime conglomerate, 7. massive muddy deposit produced by mass-flow mechanism, 8. diatomitic marls, 9. "terra rossa" soil (modified after Carnevale et al. 2011).
Figure 2 in Lower reproductive rates of Asian citrus psyllid (Hemiptera: Psyllidae) on 'Tahiti' acid lime than on 'Valencia' sweet orange
Figure 2 Frequency (%) of settling of adult Diaphorina citri on V2 shoots of 'Valencia' Sweet orange and 'Tahiti' acid lime plants inside a controlled environment chamber (or room?) (n=10; p= 0.092ns) and in a greenhouse (n=15; p= 0.28ns).
Figure 1 in Lower reproductive rates of Asian citrus psyllid (Hemiptera: Psyllidae) on 'Tahiti' acid lime than on 'Valencia' sweet orange
Figure 1 General schematic representation of set-up process of the different shoot stages of the 2-year-old potted plans of 'Valencia' sweet orange and 'Tahiti' acid lime cv. 'Quebra-Galho', both grafted on 'Cravo' Rangpur lime rootstock, for Diaphorina citri oviposition capacity and nymph survival experiments.
Figure 4 in Lower reproductive rates of Asian citrus psyllid (Hemiptera: Psyllidae) on 'Tahiti' acid lime than on 'Valencia' sweet orange
Figure 4 Mean (±SEM) nymphal duration (duration of development of nymphs from first nymphal stage to adults eclosion) (A/B), nymph viability (percentage of survival of nymphs to adult eclosion) (C/D) and male: female proportion (E/F) ofDiaphorina citri rearing on V3 shoots of 'Valencia' sweet orange and 'Tahiti' acid lime plants under greenhouse conditions. Bars with different letters differ by t test, p<0.05. First repetition n=20; Second repetition n=10.
Figure 5 in Lower reproductive rates of Asian citrus psyllid (Hemiptera: Psyllidae) on 'Tahiti' acid lime than on 'Valencia' sweet orange
Figure 5 Cumulative frequency of adult eclosion of Diaphorina citri on V3 shoots of 'Valencia' sweet orange and 'Tahiti' acid lime under greenhouse conditions. (A) First repetition (n=20); (B) Second repetition (n=10).
A comparative study of red brick powder and lime as soft soil stabilizer (Dataset)
<p>This data is the result of laboratory CBR testing in soaked and unsoaked conditions with or without additional stabilization</p>
Figure 1 in Histopathological aspects in ripe fruits of Tahiti lime Citrus citrus x latifolia (Rutaceae) affected by phytophagous mites
Figure 1. Macroscopic and microscopic lesions on the pericarps of healthy Tahiti lime fruits affected by phytophagous mites. A–C. Healthy fruit and tissue. A. Pericarp surface; B. Pericarp surface viewed under scanning electron microscopy (SEM). Stomata can be observed; C. Cross section of the pericarp, showing the exocarp (Safranina- Alcian blue). D–F. Fruit and tissues affected by Polyphagotarsonemus latus. D. Lesions on the pericarp; E. Detail of the lesions on the pericarp surface (white arrow) (SEM); F. Cross section of the pericarp, showing the lesion affecting the exocarp and the formation of the peridermis (Safranin-Alcian blue). G–I. Fruit and tissues affected by Phyllocoptruta oleivora. G. Lesions on the pericarp; H. Detail of the lesions on the pericarp surface (white arrow) (SEM); I. Cross section of the pericarp, showing the lesion affecting the exocarp and the formation of peridermis and melanin deposits (Safranin-Alcian blue); J–L. Fruit and tissues affected by Schizotetranychus hindustanicus. J. Lesions on the pericarp. Mites nests (white arrows) can be observed; K. Mites nests in SEM (white arrow). Spider web of nest formation can be clearly seen; L. Cross section of the pericarp, showing the lesion affecting the exocarpal layers (white arrow) (Safranin-Alcian blue). CU: cuticle; EN: stomata; IEX: inner exocarp; ME: melanin; OEX:
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