10 research outputs found

    Dietary fibre and available carbohydrates in Finnish cereal products

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    The contents of dietary fibre and available carbohydrates in Finnish cereal products were analysed using the Englyst total carbohydrate method. The tabulation gives the carbohydrate compositions of 44 cereal foods. The cereal-based estimated daily intakes were: total soluble sugars 14.8 g, starch 103 g and dietary fibre 11.6g (energy level 10 MJ)

    Suomalaisten elintarvikkeiden hiilihydraattitutkimus — viljavalmisteiden ravintokuitu-, tärkkelys- ja sokeripitoisuudet 

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    The contents of dietary fibre and available carbohydrates in Finnish cereal products were analysed using the Englyst total carbohydrate method. The tabulation gives the carbohydrate compositions of 44 cereal foods. The cereal-based estimated daily intakes were: total soluble sugars 14.8 g, starch 103 g and dietary fibre 11.6g (energy level 10 MJ).Suomalaisten viljavalmisteiden hiilihydraattikoostumus määritettiin tässä tutkimuksessa ns. Englystin kokonaishiilihydraattimenetelmällä. Se antaa yksityiskohtaisen kuvan sekä hyväksikäytettävien hiilihydraattien että ravintokuidun määrästä ja laadusta. Tutkimus on osa poikkileikkaustutkimusta, jonka kohteena oli tärkeimpien suomalaisten elintarvikkeiden hiilihydraattikoostumus. Menetelmän työläydestä johtui, että vain yksi kokoomanäyte kutakin nimikettä voitiin analysoida. Tutkimuksen vaikeutena olivat monimutkainen fraktiointikaavio ja pieni näytemäärä (200 mg), ja tarkistusanalyysien määrä kasvoikin ajoittain epätoivottavan suureksi. Saatujen tulosten ja kulutustietojen perusteella arvioitiin hiilihydraattien keskimääräinen päiväsaanti viljavalmisteista. Liukoisia sokereita arvioitiin saatavan yhteensä 14.8 g/d, tärkkelystä 103 g/d ja ravintokuitua 11.6 g/d (energiataso 10 MJ)

    Dietary fibre and available carbohydrates in Finnish cereal products

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    Julkaisussa on vanha ISSN 0024-8835.vokKirjasto Aj-KSuomalaisten elintarvikkeiden hiilihydraattitutkimus - viljavalmisteiden ravintokuitu-, tärkkelys- ja sokeripitoisuude

    Development of the CMS detector for the CERN LHC Run 3

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    International audienceSince the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger

    Development of the CMS detector for the CERN LHC Run 3

    No full text
    International audienceSince the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger

    Development of the CMS detector for the CERN LHC Run 3

    No full text
    Since the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger.Since the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger

    Development of the CMS detector for the CERN LHC Run 3

    No full text
    International audienceSince the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger

    Development of the CMS detector for the CERN LHC Run 3

    No full text
    International audienceSince the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger

    Development of the CMS detector for the CERN LHC Run 3

    No full text
    Since the initial data taking of the CERN LHC, the CMS experiment has undergone substantial upgrades and improvements. This paper discusses the CMS detector as it is configured for the third data-taking period of the CERN LHC, Run 3, which started in 2022. The entire silicon pixel tracking detector was replaced. A new powering system for the superconducting solenoid was installed. The electronics of the hadron calorimeter was upgraded. All the muon electronic systems were upgraded, and new muon detector stations were added, including a gas electron multiplier detector. The precision proton spectrometer was upgraded. The dedicated luminosity detectors and the beam loss monitor were refurbished. Substantial improvements to the trigger, data acquisition, software, and computing systems were also implemented, including a new hybrid CPU/GPU farm for the high-level trigger
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