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  <front>
    <journal-meta />
    <article-meta>
      <title-group>
        <article-title>Formalization of Low-frequency Rectangular Electrical Connectors Design Method</article-title>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author">
          <string-name>V.I. Averchenkov</string-name>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <contrib contrib-type="author">
          <string-name>A.V. Viluykha</string-name>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <contrib contrib-type="author">
          <string-name>M.Yu. Rytov</string-name>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <contrib contrib-type="author">
          <string-name>aver@tu-bryansk.ru</string-name>
        </contrib>
        <contrib contrib-type="author">
          <string-name>alex-viluha@yandex.ru</string-name>
        </contrib>
        <contrib contrib-type="author">
          <string-name>rmy@tu-bryansk.ru</string-name>
        </contrib>
        <aff id="aff0">
          <label>0</label>
          <institution>Bryansk State Technical University</institution>
          ,
          <addr-line>Bryansk</addr-line>
          ,
          <country country="RU">Russia</country>
        </aff>
      </contrib-group>
      <abstract>
        <p>The article deals with the design process of low-frequency rectangular electrical connectors and determining the position CAD/CAE-systems in it. The review of the actual literature shows that development trends of design and technological preparation of low-frequency rectangular electrical connectors production mean using CAD/CAM/CAE-systems. But at the moment these systems are used for solving partial issues. The authors formalize the empirical method of the design and systemize the factors, which influence the design process. As a result of the mentioned above actions, the working algorithm of the multipurpose CAD/CAE electrical connectors design system was obtained. The results of the research were applied to automize the design process of connectors housings.</p>
      </abstract>
      <kwd-group>
        <kwd>rectangular electrical connectors</kwd>
        <kwd>CAD</kwd>
        <kwd>design</kwd>
        <kwd>design stages</kwd>
        <kwd>CAD algorithms</kwd>
      </kwd-group>
    </article-meta>
  </front>
  <body>
    <sec id="sec-1">
      <title>1. Introduction</title>
      <p>
        Electrical connector is an electrical device designed for
mechanical connection and disconnection of electrical circuits
consisting of two or more parts (plug, socket) forming a
detachable contact joint [
        <xref ref-type="bibr" rid="ref7">7</xref>
        ]. These devices are part of modern
technical control systems in computer equipment, industrial
equipment, automobiles, etc.
      </p>
      <p>According to estimates given in [20, 21] the main
development direction in the industry at present is the
improvement of connector design characteristics (contact density
increase, new original design types use), as well as improved
reliability indicators (e.g. increasing the average service life from
12... 15 years to 30 years).</p>
      <p>
        Research in the field of design automation in relation to
electrical connectors conducted by foreign colleagues is aimed at
solving the following tasks: study of the contact process for a pair
of connectors using models simulating the surface layer of
materials [
        <xref ref-type="bibr" rid="ref3">3</xref>
        ]; use of numerical methods for the development of
models meeting actual-use environmental conditions and
external influences [
        <xref ref-type="bibr" rid="ref13 ref9">9, 13</xref>
        ].
      </p>
      <p>At the same time, according to [20, 21], the main objectives
of domestic research in the field of electrical connectors design
and production are: development of technologies for the
production of new materials with improved characteristics, as
well as their introduction into technological processes; increase
of finished products resistance to external factors;
implementation of modern means of computer-aided design and
production planning.</p>
      <p>Recent Russian research in the field of instrument
manufacturing design automation include the works by A.L.
Safonov [17] where the author proposes a computer-aided design
system for rectangular electrical connectors developed on the
basis of domestic Compas 3D CAD-system allowing to optimize
the mass and dimensional parameters of Lira-type terminals, and
also analyze the stationary temperature field of electrical
connectors by finite element method. However, to calculate
mechanical and electrical characteristics the author uses
formalized empirical methods of calculation.</p>
      <p>
        Also, G.Kh. Irzaev in his works [
        <xref ref-type="bibr" rid="ref10 ref11">10, 11</xref>
        ] offers solutions for
evaluation automation and instrumental products design
manufacturability optimization. The issues of automation
equipment introduction in the process of design and calculation
of instrumental products are touched upon in the works from the
perspective of product manufacturability automation.
      </p>
      <p>
        Other areas of domestic research in the field of design and
production of electrical connectors are: development of software
and hardware complexes for testing operational characteristics of
the object of study [
        <xref ref-type="bibr" rid="ref1 ref2">1, 2</xref>
        ], as well as issues of quality assurance
of products and their components [
        <xref ref-type="bibr" rid="ref16">16, 19</xref>
        ].
      </p>
      <p>Thus, the task of developing an integrated automation system
for electrical connectors design is relevant in the view of modern
CAD/CAE-systems functional capabilities development and will
reduce time and labor costs for new types of products design and
launch.</p>
    </sec>
    <sec id="sec-2">
      <title>2. Low-frequency rectangular connectors design process analysis electrical</title>
      <p>Based on the analysis of low-frequency rectangular electrical
connectors empirical design methods, the authors developed a
design algorithm which includes several stages (Fig. 1).</p>
      <p>Fig. 1. Electrical connectors design stages</p>
      <p>
        The design process for electrical connectors begins with the
analysis of technical specification requirements. Based on [
        <xref ref-type="bibr" rid="ref8">8</xref>
        ],
these requirements have been formalized (Table 1).
      </p>
      <sec id="sec-2-1">
        <title>Specifications</title>
        <p>Current rating
Voltage rating</p>
        <p>The specified requirements from technical specification
define the type of contact pair. Typical solutions are in most use.</p>
        <p>At the next stage, the options for fixing the contact pair in the
dielectric are studied and the materials are selected to ensure the
required electromechanical parameters as stated in the technical
specification.</p>
        <p>
          The next stage is to check the developed design using design
calculations. Design calculations are carried out in two ways:
1. Using analytical methods [
          <xref ref-type="bibr" rid="ref12">12</xref>
          ].
2. Using numerical methods.
        </p>
        <p>At the next stage, specialists check the manufacturability of
the components design which determines the possibility of
making them at the manufacturing unit.</p>
        <p>If the designed components of the connector meet the
requirements of the technical specification, the performance
characteristics of the connector shall be calculated.</p>
        <p>Based on the algorithm, the authors developed a SADT
model of the future integrated system (Fig. 2).
according to the technical requirements
50, 100, 150, 250, 400, 500, 700, 1000, 1250, 1500 (according to
GOST 23784-98, p.5.3.7)
according to the technical requirements
according to the technical requirements
100, 250, 500, 1000, 1500, 2000 (according to GOST 23784-98,
p.5.2.17)
according to the technical requirements
according to GOST 9.303-84
according to the technical requirements
according to the technical requirements
according to the technical requirements
according to the technical requirements
according to the technical requirements
500, 1000, 5000, 10000 (according to GOST 23784-98, p.5.3.5)
according to the technical requirements
5, 6, 8, 10, 12, 15 (according to GOST 23784-98, p.5.4.4)
5000, 7500, 10000, 15000, 20000, 25000, 50000 (according to
GOST 23784-98, p.5.4.3)</p>
      </sec>
    </sec>
    <sec id="sec-3">
      <title>3. Development of integrated CAD/CAE system of low-frequency rectangular electrical connectors design algorithm</title>
      <p>
        Analyzed [
        <xref ref-type="bibr" rid="ref4">4</xref>
        ] CAD- and CAE-systems allow to implement
low-frequency rectangular electrical connectors design
processes. However, in order to perform automated design
calculations, product designers need to convert models for CAE
systems or modules manually, which significantly increases the
design period. The solution to the problem described above is to
use parameterized 3D models with pre-defined scenarios for
calculating the required characteristics.
      </p>
      <p>To implement this task, systems with the following tools are
required: means of calculation of mechanical, electrical, thermal
characteristics of connectors by finite elements method; API
interface. These tools can be found in such foreign systems as
Autodesk Inventor, SolidWorks, Creo Parametric, Catia, and in
such domestic systems as Compas 3D, T-Flex CAD, therefore
the proposed computer-assisted design algorithm (Fig. 3) can be
implemented in any of these systems.</p>
      <sec id="sec-3-1">
        <title>Formalized data of technical specification Unit of Permissible values measure</title>
        <p>The algorithm of computer-assisted design system includes
several stages.</p>
        <p>At the first stage, the user (design engineer) enters data from
the technical specification mentioned in Table 1.</p>
        <p>At the next stage, an optimal contact pair satisfying the
requirements of the technical specification is selected and its
design parameters are calculated. The most appropriate option is
offered to the designer to continue the design procedures
interactively.</p>
        <p>Case dimensions are calculated for the selected contact pair.
If the results of the calculations are consistent with the
requirements of the technical specification, the values of the
basic parameters are entered into the database together with the
initial data, as a new project. If necessary, this data can be used
again.</p>
      </sec>
    </sec>
    <sec id="sec-4">
      <title>4. Example of parameterized 3D connectors components development model for</title>
      <p>To implement the above algorithm of the integrated system,
parameterized 3D models are required, which are the basis for
the generation of the product meeting the requirements of the
technical specification.</p>
      <p>The first stage is to develop case-type components. The key
feature of these components is high variability of the overall
dimensions. Figure 4 shows a parametric 3D model of the
component developed in SolidWorks (the implementation
program was selected according to the potential consumer of the
system being developed).</p>
      <p>The key parameter which defines the component design, is
the number of pins. The value of this parameter is stored in the
Equations menu and indicated by the word "Quantity of
terminals".</p>
      <p>
        To connect to SolidWorks environment, we create an object
of SldWorks swApp class [
        <xref ref-type="bibr" rid="ref14">14</xref>
        ]. The parameterized model is
accessed through an object of the ModelDoc2 class. The loop and
GetEquationMgr () function were used to find the necessary
parameter to change the model structure.
      </p>
      <p>The view of the implemented WindowsForms interface for
user interaction is shown in Figure 5.</p>
    </sec>
    <sec id="sec-5">
      <title>6. References</title>
      <p>The numeric value of the parameter is changed by typing text
in the "Value" field. The quantity of terminals was changed from
10 to 20. Next, model parameters are updated. The results of the
application operation are presented in Fig. 6.</p>
      <p>The operation of changing the number of terminals using
developed application takes less than 30 seconds, while a
designer would need at least 30 minutes to develop a new model.
The implementation of this technology within the proposed
system will significantly reduce the design period.</p>
    </sec>
    <sec id="sec-6">
      <title>5. Conclusion</title>
      <p>The design of low-frequency rectangular electrical
connectors is a complex, iterative and multi-factor process each
stage of which involves a number of tasks that can be formalized
and converted to algorithms.</p>
      <p>To reduce the technological gap of the domestic instrument
manufacturing industry, it is necessary to take full advantage of
modern multifunctional CAD/CAM/CAE systems.</p>
      <p>However, the electrical connectors design process includes a
simultaneous work on several specific problems from various
subject areas that are not currently taken into account in large
CAD/CAM/CAE systems.</p>
      <p>This contradiction can be solved by using the proposed
CAD/CAE system which will reduce the time spent on design
calculations and optimize the new products development
process.
Applied Problems of Engineering and Technology. 2017.
№ 6 (326). P. 172-180
[17] Safonov A.L. Automation of electrical connectors design
based on formalization and standardizing of design
procedures: Dissertation abstract in candidacy for an
academic degree of Ph.D. in technical sciences: 05.13.12/
Safonov Alexander Leonidovich; BSTU. - Bryansk, 2010.
22 p.
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structural elements / Software products and systems. -2009.
-№4 [Electronic resource]. URL:
https://cyberleninka.ru/article/v/optimizatsiya-elementovkonstruktsii-elektricheskih-soediniteley (date of access:
25.08.2019).
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G.I. Utkin// Fundamental and applied problems of
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    </sec>
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