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TALAT Lecture 4102: Clinching

Description

This lecture describes the detailed processes of single-step and multiple-step clinching; it shows the differences of the various clinching methods concerning the amount of shearing; it illustrates the major differences in mechanical properties of clinch joints compared with resistance spot welds. General mechanical engineering background and familiarity with the subject matter covered in TALAT This lecture 4101 is assumed.

Subjects

aluminium | aluminum | european aluminium association | EAA | Training in Aluminium Application Technologies | training | metallurgy | technology | lecture | joining | fastening | mechanical | clinching | local incision | classification | tools | single-step clinching | two-step clinching | multi-step clinching | geometry | spot welded joints | properties | die with movable parts | die without movable parts | flat clinch element | formed parts | holding systems | stripping systems | corematerials | ukoer

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TALAT Lecture 4102: Clinching

Description

This lecture describes the detailed processes of single-step and multiple-step clinching; it shows the differences of the various clinching methods concerning the amount of shearing; it illustrates the major differences in mechanical properties of clinch joints compared with resistance spot welds. General mechanical engineering background and familiarity with the subject matter covered in TALAT This lecture 4101 is assumed.

Subjects

aluminium | aluminum | european aluminium association | eaa | talat | training in aluminium application technologies | training | metallurgy | technology | lecture | joining | fastening | mechanical | clinching | local incision | classification | tools | single-step clinching | two-step clinching | multi-step clinching | geometry | spot welded joints | properties | die with movable parts | die without movable parts | flat clinch element | formed parts | holding systems | stripping systems | corematerials | ukoer | Engineering | H000

License

Attribution-Noncommercial-Share Alike 2.0 UK: England & Wales Attribution-Noncommercial-Share Alike 2.0 UK: England & Wales http://creativecommons.org/licenses/by-nc-sa/2.0/uk/ http://creativecommons.org/licenses/by-nc-sa/2.0/uk/

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20.109 Laboratory Fundamentals in Biological Engineering (MIT) 20.109 Laboratory Fundamentals in Biological Engineering (MIT)

Description

This course introduces experimental biochemical and molecular techniques from a quantitative engineering perspective. Rigorous quantitative data collection, statistical analysis, and conceptual understanding of instrumentation design and application form the underpinnings of this course. The four discovery based modules include DNA Engineering, Protein Engineering, Systems Engineering, and Biomaterials Engineering. Additional information is available on the course Wiki (hosted on OpenWetWare.) Teaching Fellows Reshma Shetty Maria Foley Eileen Higham Yoon Sung Nam This course introduces experimental biochemical and molecular techniques from a quantitative engineering perspective. Rigorous quantitative data collection, statistical analysis, and conceptual understanding of instrumentation design and application form the underpinnings of this course. The four discovery based modules include DNA Engineering, Protein Engineering, Systems Engineering, and Biomaterials Engineering. Additional information is available on the course Wiki (hosted on OpenWetWare.) Teaching Fellows Reshma Shetty Maria Foley Eileen Higham Yoon Sung Nam

Subjects

biological engineering | biological engineering | biology | biology | bioengineering | bioengineering | DNA | DNA | PCR | PCR | RNA | RNA | polymerase chain reaction | polymerase chain reaction | systems engineering | systems engineering | DNA engineering | DNA engineering | protein engineering | protein engineering | bio-material engineering | bio-material engineering | restriction map | restriction map | lipofection | lipofection | screening library | screening library | bacterial photography | bacterial photography | device characterization | device characterization | biological parts | biological parts | openwetware | openwetware

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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16.810 Engineering Design and Rapid Prototyping (MIT) 16.810 Engineering Design and Rapid Prototyping (MIT)

Description

This course provides students with an opportunity to conceive, design and implement a product, using rapid protyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline.AcknowledgmentsThis course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teaching, Class of '72 Fund for Educationa This course provides students with an opportunity to conceive, design and implement a product, using rapid protyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline.AcknowledgmentsThis course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teaching, Class of '72 Fund for Educationa

Subjects

engineering design | engineering design | rapid prototyping | rapid prototyping | manufacturing | manufacturing | testing | testing | system components | system components | complex structural parts | complex structural parts | hand sketching | hand sketching | CAD | CAD | CAD modeling | CAD modeling | CAE | CAE | CAE analysis | CAE analysis | CAM programming | CAM programming | CNC | CNC | CNC machining | CNC machining | computer aided design | computer aided design | computer aided | computer aided | structual testing | structual testing | multiobjective design | multiobjective design | optimization | optimization | computational methods | computational methods | tools | tools | design process | design process | design competition | design competition | active learning | active learning | hands-on | hands-on | human creativity | human creativity | holistic | holistic | solidworks | solidworks | finite element | finite element | FEM | FEM | FEM analysis | FEM analysis | COSMOS | COSMOS | omax | omax | presentation | presentation | CDIO | CDIO

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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16.810 Engineering Design and Rapid Prototyping (MIT) 16.810 Engineering Design and Rapid Prototyping (MIT)

Description

Includes audio/video content: AV special element video. This course provides students with an opportunity to conceive, design and implement a product, using rapid prototyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline. Acknowledgements This course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teaching, Includes audio/video content: AV special element video. This course provides students with an opportunity to conceive, design and implement a product, using rapid prototyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline. Acknowledgements This course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teaching,

Subjects

engineering design | engineering design | rapid prototyping | rapid prototyping | manufacturing | manufacturing | testing | testing | system components | system components | complex structural parts | complex structural parts | hand sketching | hand sketching | CAD | CAD | CAD modeling | CAD modeling | CAE | CAE | CAE analysis | CAE analysis | CAM programming | CAM programming | CNC | CNC | CNC machining | CNC machining | computer aided design | computer aided design | computer aided | computer aided | structual testing | structual testing | multiobjective design | multiobjective design | optimization | optimization | computational methods | computational methods | tools | tools | design process | design process | design competition | design competition | active learning | active learning | hands-on | hands-on | human creativity | human creativity | holistic | holistic | solidworks | solidworks | finite element | finite element | FEM | FEM | FEM analysis | FEM analysis | COSMOS | COSMOS | omax | omax | presentation | presentation | CDIO | CDIO

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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16.810 Engineering Design and Rapid Prototyping (MIT) 16.810 Engineering Design and Rapid Prototyping (MIT)

Description

Includes audio/video content: AV special element video. This course provides students with an opportunity to conceive, design and implement a product, using rapid prototyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline. Acknowledgements This course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teachin Includes audio/video content: AV special element video. This course provides students with an opportunity to conceive, design and implement a product, using rapid prototyping methods and computer-aid tools. The first of two phases challenges each student team to meet a set of design requirements and constraints for a structural component. A course of iteration, fabrication, and validation completes this manual design cycle. During the second phase, each team conducts design optimization using structural analysis software, with their phase one prototype as a baseline. Acknowledgements This course is made possible thanks to a grant by the alumni sponsored Teaching and Education Enhancement Program (Class of '51 Fund for Excellence in Education, Class of '55 Fund for Excellence in Teachin

Subjects

engineering design | engineering design | rapid prototyping | rapid prototyping | manufacturing | manufacturing | testing | testing | system components | system components | complex structural parts | complex structural parts | hand sketching | hand sketching | CAD | CAD | CAD modeling | CAD modeling | CAE | CAE | CAE analysis | CAE analysis | CAM programming | CAM programming | CNC | CNC | CNC machining | CNC machining | computer aided design | computer aided design | computer aided | computer aided | structual testing | structual testing | multiobjective design | multiobjective design | optimization | optimization | computational methods | computational methods | tools | tools | design process | design process | design competition | design competition | active learning | active learning | hands-on | hands-on | human creativity | human creativity | holistic | holistic | solidworks | solidworks | finite element | finite element | FEM | FEM | FEM analysis | FEM analysis | COSMOS | COSMOS | omax | omax | presentation | presentation | CDIO | CDIO | structural testing | structural testing

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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16.682 Prototyping Avionics (MIT) 16.682 Prototyping Avionics (MIT)

Description

In the past building prototypes of electronic components for new projects/products was limited to using protoboards and wirewrap. Manufacturing a printed-circuit-board was limited to final production, where mistakes in the implementation meant physically cutting traces on the board and adding wire jumpers - the final products would have these fixes on them! Today that is no longer the case, while you will still cut traces and use jumpers when debugging a board, manufacturing a new final version without the errors is a simple and relatively inexpensive task. For that matter, manufacturing a prototype printed circuit board which you know is likely to have errors but which will get the design substantially closer to the final product than a protoboard setup is not only possible, but desirable In the past building prototypes of electronic components for new projects/products was limited to using protoboards and wirewrap. Manufacturing a printed-circuit-board was limited to final production, where mistakes in the implementation meant physically cutting traces on the board and adding wire jumpers - the final products would have these fixes on them! Today that is no longer the case, while you will still cut traces and use jumpers when debugging a board, manufacturing a new final version without the errors is a simple and relatively inexpensive task. For that matter, manufacturing a prototype printed circuit board which you know is likely to have errors but which will get the design substantially closer to the final product than a protoboard setup is not only possible, but desirable

Subjects

engineering design | engineering design | rapid prototyping | rapid prototyping | manufacturing | manufacturing | testing | testing | system components | system components | complex structural parts | complex structural parts | hand sketching | hand sketching | CAD | CAD | CAD modeling | CAD modeling | CAE | CAE | CAE analysis | CAE analysis | CAM programming | CAM programming | CNC | CNC | CNC machining | CNC machining | computer aided design | computer aided design | computer aided | computer aided | structual testing | structual testing | multiobjective design | multiobjective design | optimization | optimization | computational methods | computational methods | tools | tools | design process | design process | design competition | design competition | active learning | active learning | hands-on | hands-on | human creativity | human creativity | holistic | holistic | solidworks | solidworks | finite element | finite element | FEM | FEM | FEM analysis | FEM analysis | COSMOS | COSMOS | omax | omax | presentation | presentation | CDIO | CDIO

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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20.109 Laboratory Fundamentals in Biological Engineering (MIT) 20.109 Laboratory Fundamentals in Biological Engineering (MIT)

Description

This course introduces experimental biochemical and molecular techniques from a quantitative engineering perspective. Experimental design, rigorous data analysis, and scientific communication form the underpinnings of this subject. Three discovery-based experimental modules focus on genome engineering, expression engineering, and biomaterial engineering.This OCW site is based on the source OpenWetWare class Wiki, found at 20.109(F07): Laboratory Fundamentals of Biological Engineering. This course introduces experimental biochemical and molecular techniques from a quantitative engineering perspective. Experimental design, rigorous data analysis, and scientific communication form the underpinnings of this subject. Three discovery-based experimental modules focus on genome engineering, expression engineering, and biomaterial engineering.This OCW site is based on the source OpenWetWare class Wiki, found at 20.109(F07): Laboratory Fundamentals of Biological Engineering.

Subjects

biological engineering | biological engineering | biology | biology | bioengineering | bioengineering | DNA | DNA | PCR | PCR | RNA | RNA | polymerase chain reaction | polymerase chain reaction | systems engineering | systems engineering | DNA engineering | DNA engineering | protein engineering | protein engineering | bio-material engineering | bio-material engineering | restriction map | restriction map | lipofection | lipofection | screening library | screening library | bacterial photography | bacterial photography | device characterization | device characterization | biological parts | biological parts | openwetware | openwetware

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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21M.301 Harmony and Counterpoint I (MIT) 21M.301 Harmony and Counterpoint I (MIT)

Description

In this subject we will study the basic harmonic, melodic, and formal practices of western music, principally the classical music of central Europe during the eighteenth century. Topics will include diatonic harmony, simple counterpoint in two parts, and tones of figuration. The coursework will combine composition, listening, analysis, and work in sight-singing and keyboard musicianship. In this subject we will study the basic harmonic, melodic, and formal practices of western music, principally the classical music of central Europe during the eighteenth century. Topics will include diatonic harmony, simple counterpoint in two parts, and tones of figuration. The coursework will combine composition, listening, analysis, and work in sight-singing and keyboard musicianship.

Subjects

Music | Music | harmony | harmony | counterpoint | counterpoint | melody | melody | formal practices | formal practices | western music | western music | classical music | classical music | central Europe | central Europe | eighteenth century | eighteenth century | diatonic harmony | diatonic harmony | tow parts | tow parts | tones of figuration | tones of figuration | composition | composition | listening | listening | analysis | analysis | sight-singing | sight-singing | keyboard musicianship | keyboard musicianship

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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TALAT Lecture 4705: Quality Assurance

Description

This lecture describes the factors important for the quality assurance of adhesive joining; it gives information about the destructive and non-destructive testing methods for the quality control of adhesive joining. General background in production engineering and material science, some knowledge of mechanics and polymer science is assumed.

Subjects

aluminium | aluminum | european aluminium association | EAA | Training in Aluminium Application Technologies | training | metallurgy | technology | lecture | joining | fastening | mechanical | adhesive bonding | quality assurance | control of adhesive | control of joining parts | control of joining parts pretreatment | control of adhesive joint | test methods | test procedures | corematerials | ukoer

License

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TALAT Lecture 4705: Quality Assurance

Description

This lecture describes the factors important for the quality assurance of adhesive joining; it gives information about the destructive and non-destructive testing methods for the quality control of adhesive joining. General background in production engineering and material science, some knowledge of mechanics and polymer science is assumed.

Subjects

aluminium | aluminum | european aluminium association | eaa | talat | training in aluminium application technologies | training | metallurgy | technology | lecture | joining | fastening | mechanical | adhesive bonding | quality assurance | control of adhesive | control of joining parts | control of joining parts pretreatment | control of adhesive joint | test methods | test procedures | corematerials | ukoer | Engineering | H000

License

Attribution-Noncommercial-Share Alike 2.0 UK: England & Wales Attribution-Noncommercial-Share Alike 2.0 UK: England & Wales http://creativecommons.org/licenses/by-nc-sa/2.0/uk/ http://creativecommons.org/licenses/by-nc-sa/2.0/uk/

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Gun Inspection Department, Elswick Works

Description

View inside the Gun Inspection Department, Elswick Works, Newcastle upon Tyne, c1905 (TWAM ref. 5484). After completion in the manufacturing shops each gun was sent there. Checks included examination of the bore, rifling, outside dimensions of the gun, ease of working of the breech mechanism and the fitting of spare parts. ?Workshop of the World? is a phrase often used to describe Britain?s manufacturing dominance during the Nineteenth Century. It?s also a very apt description for the Elswick Works and Scotswood Works of Vickers Armstrong and its predecessor companies. These great factories, situated in Newcastle along the banks of the River Tyne, employed hundreds of thousands of men and women and built a huge variety of products for customers around the globe. The Elswick Works was established by William George Armstrong (later Lord Armstrong) in 1847 to manufacture hydraulic cranes. From these relatively humble beginnings the company diversified into many fields including shipbuilding, armaments and locomotives. By 1953 the Elswick Works covered 70 acres and extended over a mile along the River Tyne. This set of images, mostly taken from our Vickers Armstrong collection, includes fascinating views of the factories at Elswick and Scotswood, the products they produced and the people that worked there. By preserving these archives we can ensure that their legacy lives on. (Copyright) We're happy for you to share this digital image within the spirit of The Commons. Please cite 'Tyne & Wear Archives & Museums' when reusing. Certain restrictions on high quality reproductions and commercial use of the original physical version apply though; if you're unsure please email info@twarchives.org.uk.

Subjects

elswickworks | newcastleupontyne | guns | armaments | guninspectiondepartment | factory | sirwgarmstrongwhitworthcoltd | blackandwhitephotograph | c1905 | industrialheritage | industry | spareparts | bore | rifling | breechmechanism | manufacturing | workshopoftheworld | nineteenthcentury | scotswoodworks | vickersarmstrong | rivertyne | products | collection | elswick | scotswood | williamgeorgearmstrong | lordarmstrong | hydrauliccranes | locomotives | shipbuilding | interesting | unusual | builing | beam | floor | wall | ceiling | debris | pole | rail | parts | wheel | timber | steel | metal | barrier | shield | brick | platform | window | glass | shadow | tile | engineering | construction

License

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Gun Inspection Department, Elswick Works

Description

Subjects

shadow | brick | industry | window | glass | wheel | metal | wall | tile | interesting | construction | factory | floor | timber | steel | parts | debris | platform | engineering | rail | ceiling | pole | beam | collection | guns | barrier | shield | products | unusual | locomotives | newcastleupontyne | spareparts | bore | nineteenthcentury | rivertyne | shipbuilding | manufacturing | industrialheritage | builing | rifling | elswick | armaments | blackandwhitephotograph | c1905 | scotswood | lordarmstrong | vickersarmstrong | elswickworks | williamgeorgearmstrong | workshopoftheworld | breechmechanism | sirwgarmstrongwhitworthcoltd | hydrauliccranes | scotswoodworks | guninspectiondepartment

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Inside 5 Shop, Elswick Works Inside 5 Shop, Elswick Works

Description

Subjects

blur | blur | brick | brick | industry | industry | wall | wall | stand | stand | construction | construction | war | war | industrial | industrial | factory | factory | russia | russia | britain | britain | parts | parts | military | military | debris | debris | pipe | pipe | platform | platform | machine | machine | ground | ground | tools | tools | beam | beam | doorway | doorway | worldwarii | worldwarii | pile | pile | weapon | weapon | cylinder | cylinder | ww2 | ww2 | works | works | marker | marker | artillery | artillery | guns | guns | worker | worker | products | products | ladder | ladder | pathway | pathway | global | global | worldwar2 | worldwar2 | newcastleupontyne | newcastleupontyne | fascinating | fascinating | admiralty | admiralty | digitalimage | digitalimage | wartime | wartime | secondworldwar | secondworldwar | manufacture | manufacture | worldwartwo | worldwartwo | rivertyne | rivertyne | industrialheritage | industrialheritage | elswick | elswick | armaments | armaments | blackandwhitephotograph | blackandwhitephotograph | scotswood | scotswood | 5shop | 5shop | lordarmstrong | lordarmstrong | vickersarmstrong | vickersarmstrong | elswickworks | elswickworks | williamgeorgearmstrong | williamgeorgearmstrong | workshopoftheworld | workshopoftheworld | glbal | glbal | 4inchguns | 4inchguns | scotswoodworks | scotswoodworks | vickersarmstrongcollection | vickersarmstrongcollection | 27july1942 | 27july1942 | 5118inchguns | 5118inchguns

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Fitting breech blocks at the Elswick Works Fitting breech blocks at the Elswick Works

Description

Subjects

man | man | men | men | industry | industry | face | face | hat | hat | wheel | wheel | metal | metal | female | female | standing | standing | hair | hair | chalk | chalk | workers | workers | women | women | iron | iron | industrial | industrial | factory | factory | floor | floor | post | post | arm | arm | head | head | mark | mark | steel | steel | parts | parts | military | military | debris | debris | leg | leg | pipe | pipe | platform | platform | rope | rope | tools | tools | ceiling | ceiling | beam | beam | shade | shade | bolt | bolt | cylinder | cylinder | ww2 | ww2 | artillery | artillery | blocks | blocks | products | products | ladder | ladder | unusual | unusual | stool | stool | striking | striking | shoulder | shoulder | cog | cog | attentive | attentive | impressive | impressive | lever | lever | newcastleupontyne | newcastleupontyne | digitalimage | digitalimage | factories | factories | customers | customers | wartime | wartime | fitting | fitting | secondworldwar | secondworldwar | worldwartwo | worldwartwo | artificiallight | artificiallight | rivertyne | rivertyne | manufacturing | manufacturing | industrialheritage | industrialheritage | breech | breech | elswick | elswick | armaments | armaments | blackandwhitephotograph | blackandwhitephotograph | womenworkers | womenworkers | 5shop | 5shop | lordarmstrong | lordarmstrong | vickersarmstrong | vickersarmstrong | femalelabour | femalelabour | elswickworks | elswickworks | williamgeorgearmstrong | williamgeorgearmstrong | workshopoftheworld | workshopoftheworld | scotswoodworks | scotswoodworks | breechblocks | breechblocks | 2december1942 | 2december1942

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Valentine Tanks on the Assembly Line Valentine Tanks on the Assembly Line

Description

Subjects

door | door | blur | blur | clock | clock | industry | industry | wheel | wheel | wall | wall | standing | standing | bench | bench | cord | cord | vent | vent | belt | belt | construction | construction | gun | gun | industrial | industrial | factory | factory | tank | tank | time | time | unitedkingdom | unitedkingdom | body | body | path | path | mark | mark | parts | parts | military | military | debris | debris | wwii | wwii | pipe | pipe | structures | structures | ground | ground | line | line | pole | pole | beam | beam | pile | pile | frame | frame | bolt | bolt | cylinder | cylinder | ww2 | ww2 | intriguing | intriguing | vehicle | vehicle | opening | opening | worker | worker | products | products | attentive | attentive | industriallandscape | industriallandscape | tanks | tanks | lever | lever | newcastleupontyne | newcastleupontyne | digitalimage | digitalimage | customers | customers | secondworldwar | secondworldwar | worldwartwo | worldwartwo | assemblyline | assemblyline | rivertyne | rivertyne | manufacturing | manufacturing | industrialheritage | industrialheritage | elswick | elswick | armaments | armaments | northeastengland | northeastengland | blackandwhitephotograph | blackandwhitephotograph | scotswood | scotswood | lordarmstrong | lordarmstrong | vickersarmstrong | vickersarmstrong | elswickworks | elswickworks | williamgeorgearmstrong | williamgeorgearmstrong | workshopoftheworld | workshopoftheworld | scotswoodworks | scotswoodworks | valentinetank | valentinetank | tankshop | tankshop | vickersarmstrongcollection | vickersarmstrongcollection | 28september1942 | 28september1942

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Greenwell's Dry Docks, Sunderland Greenwell's Dry Docks, Sunderland

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Mooring the tanker 'Spinanger' after launch Mooring the tanker 'Spinanger' after launch

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roof | roof | chimney | chimney | sky | sky | cloud | cloud | building | building | men | men | industry | industry | window | window | glass | glass | hat | hat | metal | metal | stone | stone | wall | wall | standing | standing | river | river | boat | boat | cabin | cabin | iron | iron | industrial | industrial | ship | ship | hand | hand | arm | arm | crane | crane | head | head | timber | timber | steel | steel | parts | parts | flag | flag | coat | coat | debris | debris | pipe | pipe | platform | platform | bank | bank | rail | rail | plate | plate | vessel | vessel | rope | rope | cargo | cargo | structure | structure | riverwear | riverwear | pole | pole | suit | suit | deck | deck | soil | soil | crew | crew | pile | pile | frame | frame | porthole | porthole | mooring | mooring | letter | letter | trousers | trousers | mast | mast | identification | identification | shipyard | shipyard | waving | waving | attentive | attentive | tanker | tanker | fascinating | fascinating | digitalimage | digitalimage | sunderland | sunderland | bending | bending | shipbuilding | shipbuilding | moored | moored | shiplaunch | shiplaunch | wearside | wearside | unsual | unsual | blackandwhitephotograph | blackandwhitephotograph | northeastofengland | northeastofengland | maritimeheritage | maritimeheritage | northsands | northsands | northsandsshipyard | northsandsshipyard | jlthompsonsonsltd | jlthompsonsonsltd | northsandssunderland | northsandssunderland | spinanger | spinanger | 22october1957 | 22october1957

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The bulk carrier 'Argonaut' ready for launch The bulk carrier 'Argonaut' ready for launch

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Work in progress on two Clark-Sulzer engines Work in progress on two Clark-Sulzer engines

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The tanker 'Eastgate' on sea trials The tanker 'Eastgate' on sea trials

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The 43rd length in place on Roker Pier, 1891 The 43rd length in place on Roker Pier, 1891

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28 March 1920 28 March 1920

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'Empire Crown' on sea trials 'Empire Crown' on sea trials

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'Trojan Prince' nearing completion 'Trojan Prince' nearing completion

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