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<article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" article-type="research-article">
  <front>
    <journal-meta>
      <journal-id journal-id-type="nlm-ta">Spanish Journal of  Agricultural Research</journal-id>
      <journal-id journal-id-type="publisher-id"> e0203</journal-id>
      <journal-title>Instituto Nacional de Investigación y  Tecnología  Agraria y  Alimentaria (INIA)</journal-title><issn pub-type="ppub">2171-9292</issn><issn pub-type="epub">2171-9292</issn><publisher>
      	<publisher-name>Instituto Nacional de Investigación y  Tecnología  Agraria y  Alimentaria (INIA)</publisher-name>
      </publisher>
    </journal-meta>
    <article-meta>
      <article-id pub-id-type="doi">https://doi.org/10.5424/sjar/2020182-15296</article-id>
      <article-categories>
        <subj-group subj-group-type="heading">
          <subject>Research Article</subject>
        </subj-group>
        <subj-group><subject>computer program</subject><subject>single hitch point</subject><subject> transport productivity</subject><subject>fuel economy index</subject></subj-group>
      </article-categories>
      <title-group>
        <article-title>Effect of hitch distance on haulage performance for  2WD tractors: A theoretical analysis</article-title><subtitle>Effect of hitch distance on haulage performance for  2WD tractors: A theoretical analysis</subtitle></title-group>
      <contrib-group><contrib contrib-type="author">
	<name name-style="western">
	<surname>Kumar</surname>
		<given-names>Sonu </given-names>
	</name>
	<aff>North Eastern Regional Institute of Science and Technology, Dept.  Agric. Eng., Nirjuli-Arunachal Pradesh. India</aff>
	</contrib><contrib contrib-type="author">
	<name name-style="western">
	<surname>Pranav</surname>
		<given-names>Prabhanjan K</given-names>
	</name>
	<aff>Dr. Rajendra Prasad Central  Agricultural University, College of  Agricultural Engineering, Pusa, Bihar. India</aff>
	</contrib><contrib contrib-type="author">
	<name name-style="western">
	<surname>Pal </surname>
		<given-names>Anubhab</given-names>
	</name>
	<aff>North Eastern Regional Institute of Science and Technology, Dept.  Agric. Eng., Nirjuli-Arunachal Pradesh. India</aff>
		  <author-notes>
        <corresp id="c1">should be addressed to Sonu Kumar:  <email xlink:href="snu4ucau@gmail.com   ">snu4ucau@gmail.com   </email>
        </corresp>
	 </author-notes>
	</contrib></contrib-group>		
      <pub-date pub-type="ppub">
        <month>05</month>
        <year>2020</year>
      </pub-date>
      <pub-date pub-type="epub">
        <day>18</day>
        <month>05</month>
        <year>2020</year>
      </pub-date>
      <volume>18</volume>
      <issue>2</issue>
		<history>
        <date date-type="received" iso-8601-date="2019-06-12">
          <day>12</day>
          <month>06</month>
          <year>2019</year>
        </date>
        <date date-type="accepted" iso-8601-date="2020-05-18">
          <day>18</day>
          <month>05</month>
          <year>2020</year>
        </date>
      </history>
      <permissions>
        <copyright-statement>© 2020 This is an open access article  distributed under the terms of the Creative Commons  Attribution 4.0 International (CC-by 4.0) License.</copyright-statement>
        <copyright-year>2020</copyright-year>
        <license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by/2.5/"><p>This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</p></license>
      </permissions>
      <related-article related-article-type="companion" vol="2" page="e235" id="RA1" ext-link-type="pmc">
			<article-title>Effect of hitch distance on haulage performance for  2WD tractors: A theoretical analysis</article-title>
      </related-article>
	  <abstract abstract-type="toc">
		<p>
			<italic>Aim of study:</italic> A  computer  program was developed in  Visual  Basic  10 environment  for predicting  the  haulage  performance  of 2WD tractors using various empirical and theoretical equations.
		</p>
		  <p>
			<italic>Methodology:</italic>Three types of inputs related  to tractor, trailer  and operating parameters were used to calculate  the performance parameters  through  empirical  and  theoretical  equations.  The  performance  parameters  included  mainly  draft,  slip,  transport  efficiency,  transport productivity, fuel economy index, rear and front axle dynamic weight, etc.  The program was used to evaluate  the haulage performance  by varying hitch distance (HD) at various operating conditions.
		</p>
		  <p>
			<italic>Main results:</italic> On  one  hand  lower  HD  was  beneficial  in  increasing  the  maximum  payload,  transport  productivity  as  well  as  the  maximum slope; but at the same time, it reduced the rear axle dynamic load, fuel economy index and actual engine power requirement.
		</p>
		  <p>
			<italic>Research  highlights:</italic>  There  was  a  markable  effect  of  HD  over  tractor  performance  which  can  play  a  role  to  optimize  traction  and  stability.
		</p>
		</abstract>
		<kwd-group>
				<title>Abbreviations used</title>
				<kwd>BrixMob  (brixius  mobility  number)</kwd>
				<kwd>CG (centre  of  gravity)</kwd>
				<kwd>CI  (cone  index)</kwd>
				<kwd>Coeff  (coefficient)</kwd>
				<kwd>Dia  (diameter)</kwd>
				<kwd>FEI (fuel  economy  index)</kwd>
				<kwd>GBL_g (global  acceleration  due  to  gravity)</kwd>
				<kwd>HD (hitch  distance)</kwd>
				<kwd>Ht (height)</kwd>
				<kwd>Pt  (point)</kwd>
				<kwd>Pwr (power)</kwd>
				<kwd>Rad  (radian)</kwd>
				<kwd>Sec (Section)</kwd>
				<kwd>TrP  (transport prouctivity)</kwd>
				<kwd>WD (wheel drive)</kwd>
				<kwd>Wt (weight)</kwd>
			</kwd-group>
			<funding-group>
				
				<award-group>
					<funding-source>  The authors did not receive any specific funding for this work. </funding-source>
					
				</award-group>
			</funding-group>
    </article-meta>
	  <notes>
			<p>
				<bold>Authors’ contributions:</bold>Development  of  computer  program  and  preparation  of  manuscript:  SK.  Testing  of  the  developed  program  and analysis of output: PKP. Guidance in computer program development:  AP.  All authors read and approved the final manuscript.</p>
			<p>
				<bold>Citation</bold>   Kumar,  S;  Pranav,  PK;  Pal, A (2019).  Effect  of  hitch  distance  on  haulage  performance  for  2WD  tractors: A theoretical  analysis. Spanish Journal of  Agricultural Research,  Volume 18, Issue 2, e0203.  https://doi.org/10.5424/sjar/2020182-15296. <a xlink:href="https://doi.org/10.5424/sjar/2020182-15296"></a>https://doi.org/10.5424/sjar/2020182-15296.</p>
			<p>
				<bold>Competing interests:</bold> The authors have declared that no competing interests exist.</p>
		</notes>
  </front>
  <body><sec>
			<title>Introduction</title>
				<p>Tractor is a well-accepted power source for agricultural activities as well as for transport deeds in rural areas. Tractors have two main power outlets, drawbar and power take-off. Use of drawbar power is more convenient but less efficient and possible through either single or three-point hitch system. The hitching system significantly affects the tractor performance. There are several studies (Bentaher et al., 2008; Čupera &amp; Šmerda, 2010; Čupera et al., 2011; Molari et al., 2014; Prasanna Kumar, 2015) on three-point hitch system to improve the tractor performance. Single hitch point (Fig. 1a) is largely used in transport/haulage activities, which are more than 50% of total tractor use in India (Kumar, 1994; Tiwari, 2017). The tractor performance in haulage is influenced mainly by the location of the hitch point, i.e. the horizontal distance from the center line of the rear axle and the vertical height from the ground(Fig. 1b). There have been few research studies on vertical height (Sahay &amp; Tiwari, 2004; Šmerda &amp; Bauer, 2007; Pranav et al., 2012, 2015; Kumar &amp; Raheman, 2015) of single hitch point, but no attempt has been made for the hitch distance (HD) on haulage performance. Theoretically, the HD also affects the weight transfer (Eq. 1), especially in case of inclined pull which ultimately plays the role between traction and stability.</p><graphic xlink:href="e0203_for_1" xmlns:xlink="http://www.w3.org/1999/xlink"/><p>Further, based on the data of 23 tractor’s models as given in Table 1, it has been observed that there is no strong correlation between tractor power with hitch location. Again, no relation was found between HD and hitch height (Fig. 2). This clearly indicates that manufactures arbitrarily fix the hitch location as per the convenience of available space irrespective of tractor power, location of centre of gravity (CG), etc. The lack of studies in this as-pect sacrifices either traction or stability. Therefore, this study was undertaken to theoretically analyze the effect of HD on tractor performance. It is well proven that theo-retical analysis becomes fast, accurate and exhaustive by developing the computer program as performed by many researchers (Al-Hamed &amp; Al-Janobi, 2001; Abu-Hamdeh &amp; Al-Jalil, 2004; Pranav &amp; Pandey, 2008; Kumar &amp; Pan-dey, 2009; Kumar Prasanna, 2012; Dhruv et al., 2018). Keeping this aspect in mind the study was planned with the following specific objectives: (i) to develop a compu-ter program for predicting haulage performance of 2WD tractors, and ii) to analyze the importance of HD on hau-lage performance.</p>
	  <fig id="F1">
     <label>Figure 1.</label>
     <caption>
             <title>Tractor single hitch system: a) single hitch point, b) representation of a single hitch point.</title>
   </caption>
   <graphic xlink:href="e0203_fig_1" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	  <fig id="T1">
     <label>Table 1.</label>
     <caption>
             <title> Hitch location of rear wheel drive tractors.</title>
   </caption>
   <graphic xlink:href="e0203_tab_1" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	   <fig id="F2">
     <label>Figure 2.</label>
     <caption>
             <title> Relation of hitch distance in existing tractor models with a) maximum PTO power; b) hitch height.</title>
   </caption>
   <graphic xlink:href="e0203_fig_2" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>

	  		</sec><sec>
			<title>Methodology</title>
				<p><bold>Theoretical considerations</bold></p>
	  			<p>The theoretical and empirical equations used in this study for developing the computer program are presented in this section.</p>
	  			<p>—Pull force</p><graphic xlink:href="e0203_for_2_3" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Rolling radius:</italic></p><graphic xlink:href="e0203_for_4_5_6" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Aspect ratio.</italic>It is defined as the ratio of section height to the section width of tyre:</p><graphic xlink:href="e0203_for_7" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Coefficient of rolling resistance</italic>(CRR) (Brixius, 1987)</p><graphic xlink:href="e0203_for_8_9_10_11" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Eccentricity:</italic></p><graphic xlink:href="e0203_for_12" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Gross/Net traction ratio:</italic></p><graphic xlink:href="e0203_for_13_14_!5" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Reaction at trailer wheel.</italic>The dynamic weight of the trailer was calculated by taking moment about hitch point from the trailer’s free body diagram as shown in Fig. 3a.</p><graphic xlink:href="e0203_for_16" xmlns:xlink="http://www.w3.org/1999/xlink"/><graphic xlink:href="e0203_for_17_18_19" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Reaction  at  front/rear  wheel.</italic>The  dynamic  weight  of the trailer was calculated by taking moment about hitch point from the tractor’s free body diagram in dynamic condition as shown in Fig. 3b</p><graphic xlink:href="e0203_for_20" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Front wheel utilisation factor.</italic>Front  wheel  utilization factor is the ratio of dynamic weight on the axle to the total weight of the tractor.</p><graphic xlink:href="e0203_for_21" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Actual  engine  power required.</italic>The  actual  engine  power used  is  defined  as  the  ratio  of  axle  power  to  transmission efficiency.</p><graphic xlink:href="e0203_for_22" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Transport productivity.</italic>Transport productivity  is the product of payload transported and the forward velocity.</p><graphic xlink:href="e0203_for_23_24" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Transport  efficiency.</italic>Transport  efficiency  is  the  ratio  of transport productivity to the input power.</p><graphic xlink:href="e0203_for_25" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Fuel  economy  index.</italic>Fuel  economy  index  is the  amount of fuel consumed per unit payload over a unit distance.</p><graphic xlink:href="e0203_for_26" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Gradient resistance</italic></p><graphic xlink:href="e0203_for_27" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><italic>—Power utilisation factor</italic></p><graphic xlink:href="e0203_for_28" xmlns:xlink="http://www.w3.org/1999/xlink"/>
	  			<p><bold>Development of the computer  program</bold></p>
	  			<p>A program was  written in  Visual Basic 10 environment for evaluating  the  haulage  performance  of rear  wheel  drive  tractor  with  an  unbalanced  trailer  at  different  operating conditions  by  varying  the  HD.  The  flow  chart  of  the  developed program is shown  in Fig. 4, where the sequence of calculations  and equations used are indicated.  The program gives a warning sign if either  stability  or engine power fails.  A  warning sign for stability performs when the  front  utilization  factor  is  lower  than  0.2  as  per  the  minimum load requirement  for longitudinal  stability  (Horton &amp;  Crolla,  1984).The  input  and  output  windows  of  the  developed program are shown in Fig. 5.</p>
	  
	   <fig id="F3">
     <label>Figure 3.</label>
     <caption>
             <title>   Free body diagram in dynamic  condition  of: (a) unbalanced  trailer (h,  hitch  point;  O,  hitch  height;  e,  eccentricity_trailer;  T,  tractor  CG_X;  U (payload  Wt  +  trailer  empty  Wt)  ×  (acceleration/GBL_g);  V  (payload  Wt  + trailer  empty  Wt)  ×  sin  (slope);  W  (payload  Wt  +  trailer  empty  Wt)  ×  cos (slope);  X,  trailer  wheel  axis  dist  from  hitch  Pt;  Y,  Dia  Trailer;  Z,  Trailer  CG with  material_Y;  RR,  rolling  resistance  at  trailer;  Ɵ,  road  slope;  ρ,  dynamic Wt_Trailer);  (b) rear  wheel  drive  tractor  (A, DiaFront;  B, rolling  resistance at  front;  C,  dynamic  Wt_Front;  D,  Eccentricity_Front;  E,  wheel  base;  F,  rolling  resistance  at  rear;  G,  total  Wt  ×  cos  (slope);  H,  tractor  CG_Y;  I,  total Wt  ×  (Acceleration/GBL_g);  J,  total  Wt  ×  sin  (slope);  K,  tractor  CG_X;  L, DiaRear;  M,  draft;  N,  pull;  O,  hitch  height;  P,  hitch  distance;  Q,  pull_Y;  R, dynamic  Wt_Rear; S, eccentricity_rear). </title>
   </caption>
   <graphic xlink:href="e0203_fig_3" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	  
	   <fig id="F4">
     <label>Figure 4.</label>
     <caption>
             <title> Flow chart of the developed program</title>
   </caption>
   <graphic xlink:href="e0203_fig_4" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	 
	   <fig id="F5">
     <label>Figure 5.</label>
     <caption>
             <title> Windows of the developed program for parameters:  a) tractor input;  b) trailer  input;  c) output</title>
   </caption>
   <graphic xlink:href="e0203_fig_5" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	  
	  
			</sec><sec>
			<title>Results and discussion</title>
				<bold>Prediction of haulage performance</bold><p>The developed program was used to estimate the haula-ge performance of a tractor with an unbalanced trailer for different operating conditions. Input parameters to run the program are given in Table 2 and output parameters are lis-ted in Table 3. The predicted haulage performance is very close to the performance predicted by Kumar &amp; Pandey (2009) and Pranav et al. (2015). Therefore, the developed program was used to examine the effect of HD on tractor performance and their stability.</p>
	  			<p><bold>Benefits of smaller hitch distance</bold></p>
	  			<p>Effect of HD on maximum payload, transport produc-tivity, and maximum slope is shown in Fig. 6. The Fig. 6a reveals that there was a significant increase in payload of 5700 kg at 00 slope when HD was reduced from 0.8 to 0.2 m, whereas the change in payload at slopes 5 and 100 was marginal of 1340 and 370 kg, respectively. This clearly indicates that lower HD is advantageous at lower slope, because the slope has a more prominent effect on maxi-mum payload compared to HD.</p><p>The effect of HD on transport productivity was similar to maximum payload because transport productivity is the product of payload and speed of operation. It was observedthat transport productivity increased to 66.05, 14.89 and 4.2 ton.km/h at 0, 5 and 100 slopes, respectively (Fig. 6b).</p><p>Further, Fig. 6c indicates that there was an advantage in achieving the maximum slope by reducing the HD at all payloads. It was observed that the increase in maximum slope was 55, 106, 205, and 445% by reducing the HD from 0.8 to 0.2 m for the payloads of 1000, 1500, 2000 and 2500 kg, respectively. This is because of the moment caused by the vertical force on the hitch point, which is directly proportional to HD. This moment is the source of weight transfer which results in limited slope.</p>
	  			<p><bold>Benefits of bigger hitch distance</bold></p>
	  			<p>The effect of HD on rear and front axle dynamic weight is shown in Fig. 7a. It is observed that rear axle dynamic weight increases with the increase in HD because of hi-gher weight transfer due to the vertical component of pull force at hitch point. It was predicted that the increase in rear axle dynamic load was 6.67, 7.55 and 8.49% when HD increased from 0.2 to 0.8 m at 1000, 1500 and 2000 kg payloads, respectively. The increase in rear axle dynamic weight is due to the reduction in front axle dynamic wei-ght, which was about 21, 27 and 34% for the same level of change in HD at 1000, 1500 and 2000 kg payloads.</p><p>Actual engine power and fuel economy index increased with increase in HD up to 0.7 m. After 0.7 m of HD, both parameters started reducing. This clearly indicates that theHD beyond 0.7 m improves the traction and as a result, saves the fuel consumption. This is because of the higher dynamic load, which creates higher rolling resistance at bigger HD compared to lower HD as shown in Fig. 7b.</p><p>It is well understood from the above results that lower HD is beneficial in increasing the maximum payload, transport productivity as well as maximum slope. At the same time, it reduces the rear wheel dynamic load, the fuel economy index and the actual engine power requirement. This clearly indicates that when maximum payload or slope is limited by longitudinal stability and having suf f icient engine power as well as traction, the reduced HD is advantageous. Further, if longitudinal stability is intact and traction or engine power is limited, higher HD will be beneficial. In one go of haulage operation, all the three limitations, traction, longitudinal stability and power arises due to variation in road slope and conditions. Therefore, a variable HD in the tractor will help in increasing the work output as well as the efficiency of the existing tractor.</p>
	   <fig id="T2">
     <label>Table 2.</label>
     <caption>
             <title> Input parameters used for program run.</title>
   </caption>
   <graphic xlink:href="e0203_tab_2" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	   <fig id="T3">
     <label>Table 3.</label>
     <caption>
             <title> Output parameters of the program based used input parameters.</title>
   </caption>
   <graphic xlink:href="e0203_tab_3" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	   <fig id="F6">
     <label>Figure 6.</label>
     <caption>
             <title> Effect of hitch distance at hitch height of 0.61 m on: a) maximum payload; b) transport productivity; c) maximum road slope.</title>
   </caption>
   <graphic xlink:href="e0203_fig_6" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	  <fig id="F7">
     <label>Figure 7.</label>
     <caption>
             <title> Effect of hitch distance at hitch height <sup>0</sup>.<sup>61</sup> m on: a) dynamic load; b) engine power and FEI (fuel economy index).</title>
   </caption>
   <graphic xlink:href="e0203_fig_6" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</fig>
	  
	  
	  
			</sec><sec>
			<title>References</title>
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