Forms

  • sylius_add_to_cart
    • cartItem
    • _token

sylius_add_to_cart

Form type:
"Sylius\Bundle\CoreBundle\Form\Type\Order\AddToCartType"

Errors

This form has no errors.

Default Data

Property Value
Model Format same as normalized format
Normalized Format
Sylius\Bundle\OrderBundle\Controller\AddToCartCommand {#120597
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              Revision Standard - Inactive-Reserved.<br />\n
              Design information for the methods historically and typically applied by substation designers to reduce direct lightning strokes to equipment and buswork within substations is provided. Two approaches, the classical empirical method and the electrogeometric model, are presented in detail. A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed.<br />\n
              \t\t\t\t<br />\n
              This guide identifies and discusses design procedures to provide direct stroke shielding of outdoor distribution, transmission, and generating plant substations. Known methods of shielding from direct strokes were investigated during the preparation of this guide, and information is provided on two methods found to be widely used: a) The classical empirical method b) The electrogeometric model A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed. This guide does not purport to include all shielding methods that may have been developed. The guide also does not address protection from surges entering a substation over power or communication lines or the personnel safety issues. Users of this guide should thoroughly acquaint themselves with all factors that relate to the design of a particular installation and use good engineering judgment in the application of the methods given here, particularly with respect to the importance and value of the equipment being protected.<br />\n
              Direct strokes from lightning can damage substation equipment and bus work. To protect equipment, substation engineers can install direct stroke lightning shielding. This guide is intended to provide engineers with information pertaining to the interception of damaging direct lightning strokes to outdoor substations.<br />\n
              This guide includes methods that have been utilized for decades as well as some that have been developed more recently. The general nature of lightning is discussed, and the problems associated with providing shielding from direct strokes are described. Tables, formulas, and examples are provided to calculate whether substation equipment is effectively shielded from direct lightning strokes.<br />\n
              Because of the unpredictability of lightning and the costs associated with damage from direct lightning strokes, research into lightning phenomenon is ongoing. This guide includes descriptions of four nonconventional modeling methods for lightning interception, as well as a review of active lightning terminals. The four non-conventional methods are in various stages of development and are presented as a sample of the continuing research in direct lightning stroke shielding. These methods have potential to be used as design models for substation direct lightning stroke shielding in the future.<br />\n
              A bibliography for further study is included to provide the substation shielding engineer with additional lightning research.
              """
            #metaKeywords: null
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      }
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      #enabled: true
      #translations: Doctrine\ORM\PersistentCollection {#8268 …}
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View Format same as normalized format

Submitted Data

This form was not submitted.

Passed Options

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data
Sylius\Bundle\OrderBundle\Controller\AddToCartCommand {#120597
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            #locale: "en_US"
            #translatable: App\Entity\Product\Product {#7311}
            #id: 39069
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            #description: """
              Revision Standard - Inactive-Reserved.<br />\n
              Design information for the methods historically and typically applied by substation designers to reduce direct lightning strokes to equipment and buswork within substations is provided. Two approaches, the classical empirical method and the electrogeometric model, are presented in detail. A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed.<br />\n
              \t\t\t\t<br />\n
              This guide identifies and discusses design procedures to provide direct stroke shielding of outdoor distribution, transmission, and generating plant substations. Known methods of shielding from direct strokes were investigated during the preparation of this guide, and information is provided on two methods found to be widely used: a) The classical empirical method b) The electrogeometric model A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed. This guide does not purport to include all shielding methods that may have been developed. The guide also does not address protection from surges entering a substation over power or communication lines or the personnel safety issues. Users of this guide should thoroughly acquaint themselves with all factors that relate to the design of a particular installation and use good engineering judgment in the application of the methods given here, particularly with respect to the importance and value of the equipment being protected.<br />\n
              Direct strokes from lightning can damage substation equipment and bus work. To protect equipment, substation engineers can install direct stroke lightning shielding. This guide is intended to provide engineers with information pertaining to the interception of damaging direct lightning strokes to outdoor substations.<br />\n
              This guide includes methods that have been utilized for decades as well as some that have been developed more recently. The general nature of lightning is discussed, and the problems associated with providing shielding from direct strokes are described. Tables, formulas, and examples are provided to calculate whether substation equipment is effectively shielded from direct lightning strokes.<br />\n
              Because of the unpredictability of lightning and the costs associated with damage from direct lightning strokes, research into lightning phenomenon is ongoing. This guide includes descriptions of four nonconventional modeling methods for lightning interception, as well as a review of active lightning terminals. The four non-conventional methods are in various stages of development and are presented as a sample of the continuing research in direct lightning stroke shielding. These methods have potential to be used as design models for substation direct lightning stroke shielding in the future.<br />\n
              A bibliography for further study is included to provide the substation shielding engineer with additional lightning research.
              """
            #metaKeywords: null
            #metaDescription: null
            #shortDescription: "IEEE Guide for Direct Lightning Stroke Shielding of Substations"
            -notes: "Inactive-Reserved"
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        #reviews: Doctrine\ORM\PersistentCollection {#7613 …}
        #averageRating: 0.0
        #images: Doctrine\ORM\PersistentCollection {#7645 …}
        -supplier: Proxies\__CG__\App\Entity\Supplier\Supplier {#7324 …}
        -subscriptionCollections: Doctrine\ORM\PersistentCollection {#7321 …}
        -apiLastModifiedAt: DateTime @1743289200 {#7317
          date: 2025-03-30 00:00:00.0 Europe/Paris (+01:00)
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        -lastUpdatedAt: DateTime @1684447200 {#7292
          date: 2023-05-19 00:00:00.0 Europe/Paris (+02:00)
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        -publishedAt: DateTime @1367272800 {#7318
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        -documents: Doctrine\ORM\PersistentCollection {#7465 …}
        -favorites: Doctrine\ORM\PersistentCollection {#7500 …}
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      }
      #updatedAt: DateTime @1755611995 {#8125
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      }
      #enabled: true
      #translations: Doctrine\ORM\PersistentCollection {#8268 …}
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}
same as passed value
product
App\Entity\Product\Product {#7311
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  #code: "IEEE00005438"
  #attributes: Doctrine\ORM\PersistentCollection {#7701 …}
  #variants: Doctrine\ORM\PersistentCollection {#7744 …}
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    -owner: App\Entity\Product\Product {#7311}
    -association: [ …21]
    -em: ContainerHAOxQ06\EntityManagerGhostEbeb667 {#775 …}
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    -typeClass: Symfony\Component\VarDumper\Caster\CutStub {#230341 …}
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  #associations: Doctrine\ORM\PersistentCollection {#7900 …}
  #createdAt: DateTime @1751039426 {#7274
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  }
  #updatedAt: DateTime @1753969918 {#7322
    date: 2025-07-31 15:51:58.0 Europe/Paris (+02:00)
  }
  #enabled: true
  #translations: Doctrine\ORM\PersistentCollection {#7922 …}
  #translationsCache: [
    "en_US" => App\Entity\Product\ProductTranslation {#7921
      #locale: "en_US"
      #translatable: App\Entity\Product\Product {#7311}
      #id: 39069
      #name: "IEEE 998:2012"
      #slug: "ieee-998-2012-ieee00005438-242667"
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        Revision Standard - Inactive-Reserved.<br />\n
        Design information for the methods historically and typically applied by substation designers to reduce direct lightning strokes to equipment and buswork within substations is provided. Two approaches, the classical empirical method and the electrogeometric model, are presented in detail. A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed.<br />\n
        \t\t\t\t<br />\n
        This guide identifies and discusses design procedures to provide direct stroke shielding of outdoor distribution, transmission, and generating plant substations. Known methods of shielding from direct strokes were investigated during the preparation of this guide, and information is provided on two methods found to be widely used: a) The classical empirical method b) The electrogeometric model A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed. This guide does not purport to include all shielding methods that may have been developed. The guide also does not address protection from surges entering a substation over power or communication lines or the personnel safety issues. Users of this guide should thoroughly acquaint themselves with all factors that relate to the design of a particular installation and use good engineering judgment in the application of the methods given here, particularly with respect to the importance and value of the equipment being protected.<br />\n
        Direct strokes from lightning can damage substation equipment and bus work. To protect equipment, substation engineers can install direct stroke lightning shielding. This guide is intended to provide engineers with information pertaining to the interception of damaging direct lightning strokes to outdoor substations.<br />\n
        This guide includes methods that have been utilized for decades as well as some that have been developed more recently. The general nature of lightning is discussed, and the problems associated with providing shielding from direct strokes are described. Tables, formulas, and examples are provided to calculate whether substation equipment is effectively shielded from direct lightning strokes.<br />\n
        Because of the unpredictability of lightning and the costs associated with damage from direct lightning strokes, research into lightning phenomenon is ongoing. This guide includes descriptions of four nonconventional modeling methods for lightning interception, as well as a review of active lightning terminals. The four non-conventional methods are in various stages of development and are presented as a sample of the continuing research in direct lightning stroke shielding. These methods have potential to be used as design models for substation direct lightning stroke shielding in the future.<br />\n
        A bibliography for further study is included to provide the substation shielding engineer with additional lightning research.
        """
      #metaKeywords: null
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      #shortDescription: "IEEE Guide for Direct Lightning Stroke Shielding of Substations"
      -notes: "Inactive-Reserved"
    }
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  #variantSelectionMethod: "match"
  #productTaxons: Doctrine\ORM\PersistentCollection {#7534 …}
  #channels: Doctrine\ORM\PersistentCollection {#7628 …}
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  #reviews: Doctrine\ORM\PersistentCollection {#7613 …}
  #averageRating: 0.0
  #images: Doctrine\ORM\PersistentCollection {#7645 …}
  -supplier: Proxies\__CG__\App\Entity\Supplier\Supplier {#7324 …}
  -subscriptionCollections: Doctrine\ORM\PersistentCollection {#7321 …}
  -apiLastModifiedAt: DateTime @1743289200 {#7317
    date: 2025-03-30 00:00:00.0 Europe/Paris (+01:00)
  }
  -lastUpdatedAt: DateTime @1684447200 {#7292
    date: 2023-05-19 00:00:00.0 Europe/Paris (+02:00)
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  -author: ""
  -publishedAt: DateTime @1367272800 {#7318
    date: 2013-04-30 00:00:00.0 Europe/Paris (+02:00)
  }
  -releasedAt: null
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  -canceledAt: DateTime @1680127200 {#7316
    date: 2023-03-30 00:00:00.0 Europe/Paris (+02:00)
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  -coreDocument: "998"
  -bookCollection: ""
  -pageCount: 227
  -documents: Doctrine\ORM\PersistentCollection {#7465 …}
  -favorites: Doctrine\ORM\PersistentCollection {#7500 …}
}
same as passed value

Resolved Options

Option Value
action
""
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attr_translation_parameters
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data
Sylius\Bundle\OrderBundle\Controller\AddToCartCommand {#120597
  -cart: App\Entity\Order\Order {#13408 …}
  -cartItem: App\Entity\Order\OrderItem {#120585
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    #order: null
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    #version: 1
    #variant: App\Entity\Product\ProductVariant {#8108
      #id: 5764
      #code: "IEEE00005438PDF"
      #product: App\Entity\Product\Product {#7311
        #id: 11015
        #code: "IEEE00005438"
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        #options: Doctrine\ORM\PersistentCollection {#7916
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          "en_US" => App\Entity\Product\ProductTranslation {#7921
            #locale: "en_US"
            #translatable: App\Entity\Product\Product {#7311}
            #id: 39069
            #name: "IEEE 998:2012"
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              Revision Standard - Inactive-Reserved.<br />\n
              Design information for the methods historically and typically applied by substation designers to reduce direct lightning strokes to equipment and buswork within substations is provided. Two approaches, the classical empirical method and the electrogeometric model, are presented in detail. A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed.<br />\n
              \t\t\t\t<br />\n
              This guide identifies and discusses design procedures to provide direct stroke shielding of outdoor distribution, transmission, and generating plant substations. Known methods of shielding from direct strokes were investigated during the preparation of this guide, and information is provided on two methods found to be widely used: a) The classical empirical method b) The electrogeometric model A third approach, which involves the use of non-conventional lightning terminals and related design methods, is also reviewed. This guide does not purport to include all shielding methods that may have been developed. The guide also does not address protection from surges entering a substation over power or communication lines or the personnel safety issues. Users of this guide should thoroughly acquaint themselves with all factors that relate to the design of a particular installation and use good engineering judgment in the application of the methods given here, particularly with respect to the importance and value of the equipment being protected.<br />\n
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