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    Varadia amboliensis Bhosale, Thackeray, Muley & Raheem 2021, gen. et sp. nov.

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    <i>Varadia amboliensis</i> Bhosale, Thackeray, Muley & Raheem gen. et sp. nov. <p>urn:lsid:zoobank.org:act: 5C93F719-2DEF-4A9A-8973-06B7FE6E6528</p> <p>Figs 3–12</p> Diagnosis <p>As genus-level diagnosis.</p> Etymology <p>Named after the type locality, Amboli, in the Sindhudurg District of southern Maharashtra, India. In recent years, Amboli has emerged as a hotspot for the discovery of new species (particularly reptiles and amphibians) in the northern Western Ghats.</p> Type material <p> <b>Holotype</b></p> <p>INDIA • Maharashtra State, Sindhudurg District, Amboli, Hiranyakeshi temple; 15°57′17.8″ N, 74°01′39.1″ E; 839 m a.s.l.; 2019; A. Bhosale leg.; BNHS GAS 113.</p> <p> <b>Paratypes</b></p> <p>INDIA • 21 specimens (17 whole preserved specimens and 4 shells); same locality data as for holotype; 2019; A. Bhosale leg.; BNHS GAS 114–127, ZSI Moll/1820–1826 • 3 preserved specimens; same locality data as for holotype; 2020; A. Bhosale leg.; BNHS GAS 136–138.</p> Other material examined <p> INDIA – <b>Maharashtra State</b> • 1 specimen (sampled for DNA analysis); Sindhudurg District, Amboli Forest Park; 15°57′37.4″ N, 73°59′58.1″ E; 724 m a.s.l.; 2017; A. Bhosale leg.; BNHS GAS 129 • 9 preserved specimens; Sindhudurg District, near Amboli waterfall; 15°56′26.9″ N, 73°59′41.2″ E; 645 m a.s.l.; 2020; A. Bhosale leg.; BNHS GAS 130–135, BNHS GAS 139–141 • 1 shell; Kolhapur District, Kodali; 15°46′42.4″ N, 74°10′40.0″ E; 620 m a.s.l.; 2019; A. Bhosale leg.; BNHS GAS 128.</p> Description <p>SHELL.Adult shell thin, depressed, glossy and appearing non-umbilicate, with ca 4–4.5 rapidly increasing whorls and colour ranging from golden-brown to reddish yellow (Fig. 3). Shell measurements (n = 35): width 20.2–26.3 mm; height 10.2–15.0 mm. Spire only slightly raised with flat apex and suture only slightly impressed. Body whorl disproportionately large, rounded at periphery, gently convex beneath. Aperture large, crescent-shaped, with width greater than height (Fig. 3A, E). Apertural margin simple, thin and delicate; in lateral view angled forward, with upper apertural margin noticeably anterior to the lower margin. When shell is viewed from below, basal margin curved (not straight) and expanded columellar margin reflected over, covering umbilical region. Shell surface smooth and glossy to naked eye, with irregular, faint collabral striae; under SEM, seen to be finely and closely sculptured with well-defined spiral lines on protoconch (first 1.5–2 whorls) and indistinct and irregular oblique lines on teleoconch (Fig. 4).</p> <p>BODY AND MANTLE. Total adult body length, excluding extended tentacles, ranges from 4.8 to 6.9 cm (n = 5). Living snail glossy grey or greyish white with irregular dark mottling; head and tail dark grey or blackish with tentacles tending to be paler at their tips (Fig. 5–6). Surface of mantle densely and conspicuously covered by small, irregular tubercles that appear lighter on top. Sole tripartite with welldefined sole furrows dividing it into three distinct longitudinal tracts; central tract paler than lateral ones. Tail with large slit-like caudal pit (sensu Hausdorf 1998: 51); caudal horn prominent when extended (Fig. 6A) but when retracted gives tail truncated and blunt appearance (Fig. 6B). Mantle consists of two broad shell lobes (right and left) and two dorsal lobes (right and left) (Fig. 7). Shell lobes may cover nearly all of dorsal surface of shell (Fig. 5), but individuals have also been observed with shell lobes largely retracted and much of shell exposed (Fig. 6). Left dorsal lobe extends as far as base of tentacles when snail is resting (i.e., body not fully extended) and tentacles are retracted.</p> <p>REPRODUCTIVE SYSTEM. Male genitalia consist of proximally penis and distally epiphallic caecum (= epiphallic retractor caecum of Hyman & Ponder 2010: 139) and epiphallus. These three regions are</p> <p>held together by a penial sheath (= penial tunica of Hausdorf 1998), which is largely independent of wall of penis, epiphallic caecum and epiphallus (Figs 8A, 9A–C). Penial sheath encloses all of penis, all of epiphallic caecum, much of epiphallus and part of flagellum; it holds proximal three quarters of epiphallus in a loop against epiphallic caecum, with remaining part of epiphallus (i.e., part closest to vas deferens and flagellum) lying outside sheath, along with a substantial part of flagellum (Fig. 9A). Proximal part of penial sheath is thick and covers penis; distal half of this sheath is thin and covers epiphallus and epiphallic caecum. Thick penial sheath attached to proximal end of penis, close to genital atrium. Thin penial sheath attached to distal end of epiphallic caecum and is open where penial retractor muscle inserts on epiphallic caecum (Fig. 9A–C); an extension of the thin penial sheath also encloses a sizeable section of flagellum (this section located about halfway along length of flagellum). Epiphallus passes through and is attached to penial sheath in region where thick penial sheath transitions into thin penial sheath.</p> <p>With penial sheath dissected open, penis seen to have noticeable S-shaped bend midway; this bend is associated with a band of muscle that extends for some distance along penis, on either side of bend (Fig. 9D–E). Distally, penis branches into wider-lumened epiphallic caecum and narrower-lumened epiphallus. Epiphallus passes into much narrower-lumened vas deferens; junction between these two regions marked by long, bluntly pointed flagellum, which is similar in length to epiphallus. Penial retractor muscle, which originates on inner lung wall, inserts in two places (Fig. 9E): subterminally on epiphallic caecum, and on apex of loop of epiphallus (i.e., about three quarters of distance from vas deferens to penis). Junction between two branches of penial retractor muscle located near most distal part of epiphallic caecum. Irregular small holes/pores visible on inner surface of thin part of penial sheath (i.e., with sheath cut open and pinned out).</p> <p>On the basis of the morphology of its inner wall, penis divisible into three morphologically distinct regions, proximal penis, mid-penis and distal penis, with S-shaped bend of penis including all of mid- and</p> <p>distal penial regions (Fig. 10). Proximal penis shows one major and several minor longitudinal pilasters; close study at low magnification (4 ×) of holotype and one paratype (BNHS GAS 114) showed that pilasters are interspersed by fine, obliquely longitudinal ridges that are close and irregular. Mid-penis ornamented by several thin longitudinal pilasters. Distal penis also with thin longitudinal pilasters, but here they are fewer in number and are contiguous with uniform, widely spaced transverse ridges that extend outwards on either side of each pilaster. Opening of epiphallus into most proximal part of epiphallic caecum clearly visible (Fig. 10). Inner wall of epiphallic caecum (Fig. 10) has one major longitudinal pilaster (surface marked by irregular, fine longitudinal and/or transverse ridges; not shown in Fig. 10) running along its length; a large, reticulate mass of ridges proximally; and several short longitudinal pilasters distally. The short pilasters tend to be crenulated proximally and are smoother distally. Lumen of vas deferens widens with increasing distance from epiphallus, with part of vas deferens nearest to epiphallus being noticeably narrower-lumened than remaining two thirds (Fig. 8A). Right eye retractor muscle passes between male and female genitalia. Amatorial organ absent. Genital atrium cylindrical, well defined but short, with junction between male genitalia and vagina located at a short distance from genital orifice. Vagina cylindrical and shorter in length than genital atrium (Fig. 8A). Proximal part of oviduct, near junction with gametolytic gland, consists of pale yellowish, indistinctly-defined region, which is most likely the capsular gland (see Dasen 1933); inner wall of this gland irregularly marked by papillate ridges and papillae (Fig. 8). Gametolytic gland (Fig. 8A) comprises narrow gametolytic duct and long, voluminous sac that is ca 3–3.5 times length of duct; duct noticeably constricted at its junction with sac and has 1–3 longitudinal ridges on its inner wall.</p> <p>One or two spermatophores (i.e., only one wholly intact; the rest damaged/ partially digested) present in gametolytic gland of each of six specimens (Fig. 11A). Intact spermatophore consists of elongated, soft capsule with long tail-pipe. Sharply-angled, U-shaped bend at junction of capsule and tail-pipe; apex of bend noticeably hooked towards tail-pipe. Capsule wider-lumened than tail-pipe and twisted spirally (Fig. 11B). Tail-pipe flexible, internally hollow and externally sculptured obliquely along its length with four fine ribs. Tail-pipe in vicinity of tip hollow centrally and this passes into funnel-like opening (perforation) (Fig. 11D); surface of spermatophore near tip of tail-pipe has short, hair-like spines that point towards capsule (Fig. 11C).</p> <p>RADULA AND JAW. Central tooth tricuspid, with large mesocone, which is shorter than tooth base, and smaller, more basal ectocones (Fig. 12A–B). Inner laterals 17–21, uniformly tricuspid (Fig. 12A–B); mesocone large, equal in size to those of central tooth and shorter than tooth base, endocone barely defined and ectocone prominent but more basal than other cusps. Outer 2 lateral teeth grade into marginal teeth. Marginal teeth 45–53, uniformly bicuspid (endocone absent), with shorter, narrower and more basal ectocone (Fig. 12C–D). Formulae for the 8 specimens examined are as follows (the plus sign indicates that the outermost marginal teeth could not be counted):</p> <p>Holotype BNHS GAS 113 (+50.20.1.18.2.50+)</p> <p>Paratype BNHS GAS 114 (+49.21.1.19.2.49+)</p> <p>Paratype BNHS GAS 115 (53.19.1.17.2.53)</p> <p>Paratype BNHS GAS 116 (+45.21.1.19.2.45+)</p> <p>Paratype BNHS GAS 117 (+50.19.1.17.2.50+)</p> <p>Paratype BNHS GAS 118 (+48.23.1.21.2.48+)</p> <p>Paratype BNHS GAS 119 (+48.19.1.17.2.48+)</p> <p>Paratype BNHS GAS 120 (52.22.1.20.2.52)</p> <p>Jaw oxygnath (smooth), having a concave cutting edge with well-defined or barely evident median projection (Fig. 12E).</p> Distribution and ecology <p> <i>Varadia amboliensis</i> gen. et sp. nov. is endemic to the northern and central Western Ghats of India and is currently known from only 5 localities. These are: Hiranyakeshi temple, Amboli, Sindhudurg District, Maharashtra State (15°57′17.8″ N, 74°01′39.1″ E; 839 m a.s.l.); Amboli Forest Park, Sindhudurg District, Maharashtra State (15°57′37.4″ N, 73°59′58.1″ E; 724 m a.s.l.); near Amboli waterfall, Sindhudurg District, Maharashtra State (15°56′26.9″ N, 73°59′41.2″ E; 645 m a.s.l.); Kodali, Kolhapur District, Maharashtra State (15°46′42.4″N, 74°10′40.0″E; 620 m a.s.l.); Yana Forest, Uttara Kannada District, Karnataka State (14°35′16.4″N 74°34′00.3″E; 272 m a.s.l.) (A. Bhosale, 2018, personal observation). The species occurs at elevations ranging from 272 to 839 m. Although it has been observed among human habitation on forest edges (Fig. 13), <i>V. amboliensis</i> gen. et sp. nov. appears to be primarily a species of tropical semi-evergreen and evergreen forest (sensu vegetation classification of Pascal 1991). The range of this species, as currently known, is restricted and disjunct. While 4 of the 5 known localities are in the extreme south of Maharashtra State (northern Western Ghats), the only other known locality, Yana Forest in northern Karnataka (central Western Ghats), is ca 160 km to the south. Further surveys are required to establish if this species occurs in the intervening area.</p> <p> <i>Varadia amboliensis</i> gen. et sp. nov. is primarily a ground-living snail. It can be encountered at night in leaf litter or on rocks and the bases of trees; in rainy weather it can be seen on the exterior walls of buildings close to the forest edge (e.g., it was observed at the entrance of Amboli Forest Park in September 2017). The species can be seen throughout the monsoon (June to October) and as late as the end of November.</p> <p>A few individuals have been seen in late February (late winter) on the banks of fast-flowing streams at Amboli.</p> <p>This species appears to be omnivorous. It has been observed feeding on decaying plant matter (leaf litter, discarded banana peel) and on the remains of at least two different invertebrate taxa (a cricket and an earthworm) (A. Bhosale, personal observation) (Supp. file 1). Data on its predators are scarce,</p> <p> but a scorpion of the genus <i>Heterometrus</i> Ehrenberg, 1828 (Scorpionidae) was observed feeding on an individual of this species (Supp. file 1).</p> <p> <i>DNA analysis</i></p> <p> The three phylogenetic analyses (NJ, ML and Bayesian) yielded broadly similar results (Fig. 14), with disagreements occurring only for internal branches lacking strong support in any of the analyses. Most deeper relationships within the Limacoidea were not strongly supported, with the optimal ML and NJ trees having fewer strongly supported branches than the Bayesian tree. All three trees included a sister- group relationship between <i>Varadia</i> gen. nov. and the always maximally supported <i>Macrochlamys</i> clade (<i>Macrochlamys indica</i> Benson, 1883 + <i>M. pedina</i> (Benson, 1865)), but this was not strongly supported in any of the analyses (Bayesian: PP = 0.62; ML: BS = 60%; NJ: BS = 44%). All analyses also provided maximal support for the clade composed of five of the six helicarionid taxa, <i>Fastosarion brazieri</i> (Cox, 1873), <i>Eurychlamys platychlamys</i> (Blanford, 1880), <i>Harmogenanina argentea</i> (Reeve, 1852), <i>Plegma caelatura</i> (Férussac, 1821) and <i>Satiella</i> sp. (clade B in Fig. 14). Within clade B, support for the sistergroup relationship between <i>Fastosarion</i> Iredale, 1933 and <i>Eurychlamys</i> was consistently strong (ML: BS = 90%; NJ: BS = 96%) or maximal (Bayesian). Two of the three analyses (ML: BS = 71%; Bayesian: PP = 0.98) provided strong support for clade A, comprising clade B, <i>Rhysotina hepatzion</i> (Gould, 1848), the <i>Macrochlamys</i> clade, <i>Varadia</i> gen. nov. and <i>Mariaella dussumieri</i> Gray, 1855. All analyses provided maximal support for the monophyly of the Trochomorphidae Möllendorff, 1890, of the Dyakiidae Gude & B.B. Woodward, 1921 and of the Euconulidae H.B. Baker, 1928 (i.e., clade comprising <i>Euconulus fulvus</i> (Müller, 1774) and <i>Louisia barclayi</i> (Benson, 1850)). The monophyly of the Vitrinidae Fitzinger, 1833 and of the Oxychilidae Hesse, 1927 (1879) was also consistently strongly supported. Within the ingroup, nearly all the other branches were either strongly supported only in the Bayesian tree (e.g., clade comprising the five species of Ariophantinae sensu stricto) or were not strongly supported in any of the analyses.</p> <p> Examination of all bipartition frequencies for the ML bootstrap trees (n = 1008) showed that the best supported bipartition that is not compatible with <i>Varadia</i> gen. nov. forming a clade with the two species of <i>Macrochlamys</i> is one in which <i>Macrochlamys</i> forms a clade with the five helicarionids, <i>Fastosarion brazieri</i>, <i>Eurychlamys platychlamys</i>, <i>Harmogenanina argentea</i>, <i>Plegma caelatura</i> and <i>Satiella</i> sp. (BS = 12%). Similarly, for the NJ bootstrap trees (n = 1000), the best supported bipartition that is incompatible with the clade of <i>Varadia</i> gen. nov. + <i>Macrochlamys</i> is the clade uniting all the helicarionids and <i>Rhysotina hepatzion</i> with <i>Macrochlamys</i> (BS = 14%).</p>Published as part of <i>Bhosale, Amrut R., Saadi, Ahmed J., Wade, Christopher M., Thackeray, Tejas U., Tamboli, Asif S., Kadam, Suhas K., Muley, Dipak V. & Raheem, Dinarzarde C., 2021, Varadia, a new helicarionoidean semi-slug genus from India's Western Ghats (Stylommatophora: Helicarionoidea), pp. 50-79 in European Journal of Taxonomy 757 (1)</i> on pages 58-72, DOI: 10.5852/ejt.2021.757.1413, <a href="http://zenodo.org/record/5047645">http://zenodo.org/record/5047645</a&gt

    Challenges facing sustainable protein production: Opportunities for cereals

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    Available online 14 September 2023Rising demands for protein across the world are likely to increase livestock production, as meat provides ∼40% of dietary protein. This will come at significant environmental expense; therefore, a shift towards plant-based protein sources would provide major benefits. While legumes provide substantial plant-based proteins, cereals are the major constituents of global foods with wheat alone accounting for 15-20% of the required protein intake. Improving protein content in wheat is limited by phenotyping challenges, lack of genetic potential of modern germplasms, negative yield trade-off, and the environmental cost of nitrogen fertilisers. Presenting wheat as a case study, we discuss how increasing protein content in cereals through a revised breeding strategy combined with robust phenotyping can ensure a sustainable protein supply while minimising the environmental impact of nitrogen fertiliser.Luqman B. Safdar, M. John Foulkes, Friedrich H. Kleiner, Iain R. Searle, Rahul A. Bhosale, Ian D. Fisk, Scott A. Bode

    Thermochemical H 2 production via solar driven hybrid SrO/SrSO 4 water splitting cycle

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    This article reports the thermodynamic efficiency analysis of the strontium oxide strontium sulfate (SrO-SrS) water splitting cycle by applying the principles of the second law of thermodynamics and by utilizing the commercially available HSC Chemistry software. Initially, the thermodynamic equilibrium compositions allied with a) the thermal reduction of SrSO 4 , b) H 2 production via water splitting reaction (through SrO re-oxidation) are recognized. Moreover, the temperatures desirable for performing the thermal reduction and the water splitting steps are determined. The consequence of the molar flow rate of Ar on the thermal reduction of SrSO 4 is also examined in detail. The effect of the thermal reduction and water splitting temperatures on the total solar energy input mandatory to run the cycle, re-radiation shortfalls from the cycle, heat energy emitted by the coolers and the water splitting reactor, and the cycle and the solar-to-fuel energy conversion efficiency (with heat recuperation) is scrutinized in detail. The attained outcomes specify that the cycle and the solar-to-fuel energy conversion efficiency up to 18.9 and 22.8% can be accomplished if the thermal reduction and the water splitting steps are conducted at 2380 and 1400 K (with 30% heat recuperation).This publication was made possible by the NPRP grant ( NPRP8-370-2-154 ) from the Qatar National Research Fund (a member of Qatar Foundation).Scopu

    Solar syngas production via methanothermal reduction of strontium oxide

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    A solar methanothermal reduction of strontium oxide for the co-production of Sr and syngas is thermodynamically explored. The data required for the equilibrium and efficiency analysis is taken from a commercial HSC Chemistry 9.9 software. The efficiency analysis is conducted by investigating a) Sr-Syn open process and b) Sr-Syn semi-open process as a function of the rise in the CH4/SrO ratio from 0.1 to 1. As per the results allied with the equilibrium analysis, a temperature of 2230 K is needed for the complete conversion of SrO into Sr and CH4 into a mixture of H2 and CO (syngas). As expected, a rise in the CH4/SrO ratio is responsible for a higher yield of Sr and syngas. The process efficiency is also enhanced from 24.5% to 38.7% due to the escalation in the CH4/SrO ratio from 0.1 to 1. Application of heat recuperation considerably decreased the requirement of solar energy input, and hence the process efficiency is further amplified. The Sr-Syn open process and Sr-Syn semi-open process can attain process efficiencies equal to 42.5% and 49.8% when 50% heat recuperation is applied.Other InformationPublished in: FuelLicense: http://creativecommons.org/licenses/by/4.0/See article on publisher's website: https://dx.doi.org/10.1016/j.fuel.2020.118466</p

    7-[(4-Substituted phenyl-piperazin-1-yl)-alkoxyl]-4-methylchromene-2-ones as potential atypical antipsychotics: Synthesis and pharmacological evaluation

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    2295-23007-Hydroxy-4-methylchromene-2-one 1 when reacted respectively with 2-bromo-1-chloroethane and 3-bromo-1-chloropropane in acetonitrile and in the presence of anhydrous K2CO3 yields 7-alkoxy-4-methylchromene-2-ones 2a,b. Compounds 2a,b when refluxed with various arylpiperazines in toluene and in the presence of triethylamine yield the title compounds, 7-[(4-substituted phenyl-piperazin-1-yl)-alkoxyl]-4-methylchromen-2-ones 3a-j.Their atypical antipsychotic activity have been evaluated by their ability to inhibit apomorphine induced climbing behavior (D2 antagonism) and to inhibit the 5–HTP induced head twitches in albino mice (5-HT2A antagonism) alongwith catalepsy studies. All the compounds inhibit apomorphine induced climbing behavior and 5-HTP induced head twitches. The SAR studies reveal that methyl group in the phenyl ring of piperazine and the chain length (n=3) gives more dopaminergic and serotonergic antagonistic activity, while dichlorophenyl piperazines have less dopaminergic and serotonergic antagonistic activity. 3f and 3g have been found to have significant atypical behaviour

    Measurements of Ξ (1530) and Ξ ¯ (1530) production in proton-proton interactions at √sNN = 17.3 GeV in the NA61/SHINE experiment

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    A. Acharya, H. Adhikary, K. K. Allison, N. Amin, E. V. Andronov, T. Antićić, V. Babkin, Yuliia Balkova, M. Baszczyk, S. Bhosale, A. Blondel, M. Bogomilov, A. Brandin, A. Bravar, W. Bryliński, J. Brzychczyk, M. Buryakov, O. Busygina, A. Bzdak, H. Cherif, M. Ćirković, M. Csanad, J. Cybowska, T. Czopowicz, A. Damyanova, N. Davis, M. Deliyergiyev, M. Deveaux, A. Dmitriev, W. Dominik, P. Dorosz, J. Dumarchez, R. Engel, G. A. Feofilov, L. Fields, Z. Fodor, A. Garibov, M. Gaździcki, O. Golosov, V. Golovatyuk, M. Golubeva, K. Grebieszkow, F. Guber, A. Haesler, S. N. Igolkin, S. Ilieva, A. Ivashkin, S. R. Johnson, K. Kadija, N. Kargin, E. Kashirin, M. Kiełbowicz, V. A. Kireyeu, V. Klochkov, V. I. Kolesnikov, D. Kolev, A. Korzenev, V. N. Kovalenko, B. Kozłowski, A. Krasnoperov, W. Kucewicz, M. Kuich, A. Kurepin, D. Larsen, A. László, T. V. Lazareva, M. Lewicki, K. Łojek, V. V. Lyubushkin, M. Maćkowiak-Pawłowska, Z. Majka, B. Maksiak, A. I. Malakhov, A. Marcinek, A. D. Marino, K. Marton, H.-J. Mathes, T. Matulewicz, V. Matveev, G. L. Melkumov, A. O. Merzlaya, B. Messerly, Ł. Mik, S. Morozov, Y. Nagai, M. Naskręt, V. Ozvenchuk, V. Paolone, O. Petukhov, I. Pidhurskyi, R. Płaneta, P. Podlaski, B. A. Popov, B. Porfy, M. Posiadała-Zezula, D. S. Prokhorova, D. Pszczel, J. Puzović, M. Ravonel, R. Renfordt, D. Röhrich, E. Rondio, M. Roth, B. T. Rumberger, M. Rumyantsev, A. Rustamov, M. Rybczynski, A. Rybicki, S. Sadhu, A. Sadovsky, I. Selyuzhenkov, A. Yu. Seryakov, P. Seyboth, M. Słodkowski, P. Staszel, G. Stefanek, J. Stepaniak, M. Strikhanov, H. Ströbele, T. Šuša, A. Taranenko, A. Tefelska, D. Tefelski, V. Tereshchenko, A. Toia, R. Tsenov, L. Turko, R. Ulrich, M. Unger, D. Uzhva, F. F. Valiev, D. Veberič, V. V. Vechernin, A. Wickremasinghe, O. Wyszyński, A. Zaitsev, E. D. Zimmerman, R. Zwaska.Double-differential yields of (1530)0 and (1530)0 resonances produced in p+p interactions were measured at a laboratory beam momentum of 158 GeV/c. This measurement is the first of its kind in p+p interactions below LHC energies. It was performed at the CERN SPS by the NA61/SHINEcollaboration. Double-differential distributions in rapidity and transverse momentum were obtained from a sample of 26 × 106 inelastic events. The spectra are extrapolated to full phase space resulting in mean multiplicity of (1530)0 (6.73±0.25±0.67)×10−4 and (1530)0 (2.71 ± 0.18 ± 0.18) × 10−4. The rapidity and transverse momentum spectra and mean multiplicities were compared to predictions of string-hadronic and statistical model calculations

    Measurement of the production cross section of 31  GeV/c protons on carbon via beam attenuation in a 90-cm-long target

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    pozostali autorzy: A. Acharya, H. Adhikary, A. Aduszkiewicz, K. K. Allison, E. V. Andronov, T. Antićić, V. Babkin, M. Baszczyk, S. Bhosale, A. Blonde, M. Bogomilov, A. Brandin, A. Bravar, W. Bryliński, J. Brzychczyk, M. Buryakov, O. Busygina, A. Bzdak, H. Cherif, M. Ćirković, M. Csanad, J. Cybowska, T. Czopowicz, A. Damyanova, N. Davis, M. Deliyergiyev, M. Deveaux, A. Dmitriev, W. Dominik, P. Dorosz, J. Dumarchez, R. Enge, G. A. Feofilov, L. Fields, Z. Fodor,16, A. Garibov, M. Gaździcki, O. Golosov, V. Golovatyuk, M. Golubeva, K. Grebieszkow, F. Guber, A. Haesler, S. N. Igolkin, S. Ilieva, A. Ivashkin, S. R. Johnson, K. Kadija, N. Kargin, E. Kashirin, M. Kiełbowicz, V. A. Kireyeu, V. Klochkov, V. I. Kolesnikov, D. Kolev, A. Korzenev, V. N. Kovalenko, Seweryn Kowalski, M. Koziel, B. Kozłowski, A. Krasnoperov, W. Kucewicz, M. Kuich, A. Kurepin, D. Larsen, A. László, T. V. Lazareva, M. Lewicki, K. Łojek, V. V. Lyubushkin, M. Maćkowiak-Pawłowska, Z. Majka, B. Maksiak, A. I. Malakhov, A. Marcinek, A. D. Marino, K. Marton, H.-J. Mathes, T. Matulewicz, V. Matveev, G. L. Melkumov, A. O. Merzlaya, B. Messerly, Ł. Mik, S. Morozov, Y. Nagai, M. Naskręt, V. Ozvenchuk, V. Paolone, M. Pavin, O. Petukhov, R. Płaneta, P. Podlaski, B. A. Popov, B. Porfy, M. Posiadała-Zezula, D. S. Prokhorova, D. Pszczel, Szymon Puławski, J. Puzović, M. Ravonel, R. Renfordt, D. Röhrich, E. Rondio, M. Roth, B. T. Rumberger, M. Rumyantsev, A. Rustamov, M. Rybczynski, A. Rybicki, S. Sadhu, A. Sadovsky, Katarzyna Schmidt, I. Selyuzhenkov, A. Yu. Seryakov, P. Seyboth, M. Słodkowski, P. Staszel, G. Stefanek, J. Stepaniak, M. Strikhanov, H. Ströbele, T. Šuša, A. Taranenko, A. Tefelska, D. Tefelski, V. Tereshchenko, A. Toia, R. Tsenov, L. Turko, R. Ulrich, M. Unger, D. Uzhva, F. F. Valiev, D. Veberič, V. V. Vechernin, A. Wickremasinghe, Kamil Wójcik, O. Wyszyński, A. Zaitsev, E. D. Zimmerman, R. ZwaskaThe production cross section of 30.92  GeV/c protons on carbon is measured by the NA61/SHINE spectrometer at the CERN Super Proton Synchrotron by means of beam attenuation in a copy (replica) of the 90-cm-long target of the T2K neutrino oscillation experiment. The employed method for direct production cross-section estimation minimizes model corrections for elastic and quasielastic interactions. The obtained production cross section is σprod=227.6±0.8(stat)+1.9−3.2(sys)−0.8(mod)  mb. It is in agreement with previous NA61/SHINE results obtained with a thin carbon target, while providing improved precision with a total fractional uncertainty of less than 2%. This direct measurement will reduce the uncertainty of the T2K neutrino flux prediction
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