13 research outputs found
Scintillation light in SBND: simulation, reconstruction, and expected performance of the photon detection system
SBND is the near detector of the Short-Baseline Neutrino program at Fermilab. Its location near to the Booster Neutrino Beam source and relatively large mass will allow the study of neutrino interactions on argon with unprecedented statistics. This paper describes the expected performance of the SBND photon detection system, using a simulated sample of beam neutrinos and cosmogenic particles. Its design is a dual readout concept combining a system of 120 photomultiplier tubes, used for triggering, with a system of 192 X-ARAPUCA devices, located behind the anode wire planes. Furthermore, covering the cathode plane with highly-reflective panels coated with a wavelength-shifting compound recovers part of the light emitted towards the cathode, where no optical detectors exist. We show how this new design provides a high light yield and a more uniform detection efficiency, an excellent timing resolution and an independent 3D-position reconstruction using only the scintillation light. Finally, the whole reconstruction chain is applied to recover the temporal structure of the beam spill, which is resolved with a resolution on the order of nanoseconds
Curvature-bias corrections using a pseudomass method
Momentum measurements for very high momentum charged particles, such as muons from electroweak vector boson decays, are particularly susceptible to charge-dependent curvature biases that arise from misalignments of tracking detectors. Low momentum charged particles used in alignment procedures have limited sensitivity to coherent displacements of such detectors, and therefore are unable to fully constrain these misalignments to the precision necessary for studies of electroweak physics. Additional approaches are therefore required to understand and correct for these effects. In this paper the curvature biases present at the LHCb detector are studied using the pseudomass method in proton-proton collision data recorded at centre of mass energy √(s)=13 TeV during 2016, 2017 and 2018. The biases are determined using Z→μ + μ - decays in intervals defined by the data-taking period, magnet polarity and muon direction. Correcting for these biases, which are typically at the 10-4 GeV-1 level, improves the Z→μ + μ - mass resolution by roughly 18% and eliminates several pathological trends in the kinematic-dependence of the mean dimuon invariant mass
Study of CP violation in B0 → DK⋆(892)0 decays with D → Kπ(ππ), ππ(ππ), and KK final states
A measurement of CP-violating observables associated with the interference
of B0 → D0K⋆
(892)0 and B0 → D¯ 0K⋆
(892)0 decay amplitudes is performed in the
D0 → K∓π
±(π
+π
−), D0 → π
+π
−(π
+π
−), and D0 → K+K− fnal states using data collected
by the LHCb experiment corresponding to an integrated luminosity of 9 fb−1
. CP-violating
observables related to the interference of B0
s → D0K¯ ⋆
(892)0 and B0
s → D¯ 0K¯ ⋆
(892)0 are also
measured, but no evidence for interference is found. The B0 observables are used to constrain
the parameter space of the CKM angle γ and the hadronic parameters r
DK⋆
B0 and δ
DK⋆
B0 with
inputs from other measurements. In a combined analysis, these measurements allow for four
solutions in the parameter space, only one of which is consistent with the world average
Role of gluconeogenesis in epinephrine-stimulated hepatic glucose production in humans.
To evaluate the contribution of gluconeogenesis to epinephrine-stimulated glucose production, we infused epinephrine (0.06 micrograms X kg-1 X min-1) for 90 min into normal humans during combined hepatic vein catheterization and [U-14C]alanine infusion. Epinephrine infusion produced a rise in blood glucose (50-60%) and plasma insulin (30-40%), whereas glucagon levels increased only at 30 min (19%, P less than 0.05). Net splanchnic glucose output transiently increased by 150% and then returned to base line by 60 min. In contrast, the conversion of labeled alanine and lactate into glucose increased fourfold and remained elevated throughout the epinephrine infusion. Similarly, epinephrine produced a sustained increase in the net splanchnic uptake of cold lactate (four- to fivefold) and alanine (50-80%) although the fractional extraction of both substrates by splanchnic tissues was unchanged. We conclude that a) epinephrine is a potent stimulator of gluconeogenesis in humans, and b) this effect is primarily mediated by mobilization of lactate and alanine from extrasplanchnic tissues. Our data suggest that the initial epinephrine-induced rise in glucose production is largely due to activation of glycogenolysis. Thereafter, the effect of epinephrine on glycogenolysis (but not gluconeogenesis) wanes, and epinephrine-stimulated gluconeogenesis becomes the major factor maintaining hepatic glucose production
Effect of counterregulatory hormones on kinetic response to ingested glucose in dogs.
The disposal of ingested glucose was quantitated in dogs during individual and combined infusion of glucagon, epinephrine, and cortisol. Initial splanchnic extraction of ingested glucose, endogenous glucose production, and glucose uptake were quantitated using a double-tracer technique. Glucagon or cortisol individually had no effect on the kinetic response to glucose ingestion, whereas epinephrine increased glucose levels by 50-100 mg/dl. Epinephrine caused a reduced suppression of glucose production and a marked inhibition of the initial rise in glucose uptake. Initial splanchnic glucose extraction, plasma insulin, and glucagon were not significantly altered. The addition of glucagon and cortisol to epinephrine did not accentuate hyperglycemia, except after 150 min when glucose production increased. We conclude that a) epinephrine produces glucose intolerance when infused individually, b) this effect is primarily dependent on inhibition of glucose uptake and, to a lesser extent, on a reduction in suppression of endogenous glucose output, and c) addition of glucagon and cortisol has only a minor effect on epinephrine-induced changes in glucose disposal. Our data suggest an important role of epinephrine in stress-induced glucose intolerance