Suitable methods of water lifting and distribution are the most important aspects that determine the efficiency and success of an irrigation system. The rope and washer pump, a water-lifting device made with appropriate technology, has been effectively used in a number of developing nations all over the world. Engine operated rope pumps are one application of the “rope and washer” pumping principle, driven or powered by an electrical, petrol or small diesel motor. The aim of this study was to modify the rope and washer pump to engine operated for small-scale irrigation applications in southwestern Oromia, Ethiopia. The modification of the rope and washer water pump was undertaken with the intention of solving the suction head problem that rural people are facing during the dry season for crops and vegetable farming at the group or household level. Engine-operated rope and washer pump efficiency is mainly affected by engine horsepower for the used head and pipe diameter. The performance of the modified rope and washer pump was conducted using two different diameters of PVC pipe (2" and 4 “), as well as two discharge heads (6 m and 8 m). Using a 5 hp engine, the maximum head and pipe diameters achieved for this study were 8 m and 4 inches, respectively. The maximum efficiency of the pump was 2.532 l/sec and 12.178 l/sec using 2 and 4 inch pipe diameters, respectively, at an 8 m head.
Published in | Industrial Engineering (Volume 9, Issue 2) |
DOI | 10.11648/j.ie.20250902.12 |
Page(s) | 42-47 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2025. Published by Science Publishing Group |
Engine Operated, Head, Irrigation, PVC Pipe, Pump, Rope and Washer
Variable | Mean | SD | C.V | Minimum | Maximum |
---|---|---|---|---|---|
PD1 | 2.0000 | 0.0000 | 0.0000 | 2.0000 | 2.0000 |
H1 | 6.0000 | 0.0000 | 0.0000 | 6.0000 | 6.0000 |
H2 | 8.0000 | 0.0000 | 0.0000 | 8.0000 | 8.0000 |
T1 | 17.830 | 1.1286 | 6.3297 | 16.500 | 19.500 |
T2 | 23.776 | 1.5038 | 6.3250 | 22.000 | 26.000 |
Q1 | 3.3740 | 0.2136 | 6.3311 | 3.0700 | 3.6400 |
Q2 | 2.5320 | 0.1574 | 6.2158 | 2.3100 | 2.7300 |
Variable | Mean | SD | C.V | Minimum | Maximum |
---|---|---|---|---|---|
PD2 | 4.0000 | 0.0000 | 0.0000 | 4.0000 | 4.0000 |
H1 | 6.0000 | 0.0000 | 0.0000 | 6.0000 | 6.0000 |
H2 | 8.0000 | 0.0000 | 0.0000 | 8.0000 | 8.0000 |
T1 | 3.6940 | 0.0956 | 2.5867 | 3.5900 | 3.8500 |
T2 | 4.9300 | 0.1290 | 2.6173 | 4.7900 | 5.1400 |
Q1 | 16.698 | 0.5814 | 3.4821 | 16.300 | 17.700 |
Q2 | 12.178 | 0.3157 | 2.5924 | 11.670 | 12.530 |
Variable | Mean | SD | C.V | Minimum | Maximum |
---|---|---|---|---|---|
H1 | 6.0000 | 0.0000 | 0.0000 | 6.0000 | 6.0000 |
PD1 | 2.0000 | 0.0000 | 0.0000 | 2.0000 | 2.0000 |
PD2 | 4.0000 | 0.0000 | 0.0000 | 4.0000 | 4.0000 |
T1 | 17.830 | 1.1286 | 6.3297 | 16.500 | 19.500 |
T2 | 3.6940 | 0.0956 | 2.5867 | 3.5900 | 3.8500 |
Q1 | 3.3740 | 0.2136 | 6.3311 | 3.0700 | 3.6400 |
Q2 | 16.698 | 0.5814 | 3.4821 | 16.300 | 17.700 |
Variable | Mean | SD | C.V | Minimum | Maximum |
---|---|---|---|---|---|
H2 | 8.0000 | 0.0000 | 0.0000 | 8.0000 | 8.0000 |
PD1 | 2.0000 | 0.0000 | 0.0000 | 2.0000 | 2.0000 |
PD2 | 4.0000 | 0.0000 | 0.0000 | 4.0000 | 4.0000 |
T1 | 23.776 | 1.5038 | 6.3250 | 22.000 | 26.000 |
T2 | 4.9300 | 0.1290 | 2.6173 | 4.7900 | 5.1400 |
Q1 | 2.5320 | 0.1574 | 6.2158 | 2.3100 | 2.7300 |
Q2 | 12.178 | 0.3157 | 2.5924 | 11.670 | 12.530 |
GTP | Growth and Transformation Plan |
H | Head |
hp | Horse power |
PD | Pipe Diameter |
PVC | Polyvinyl Chloride |
Q | Discharge |
RPM | Revolution per minute |
T | Time |
V | Volume of water |
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APA Style
Adugna, R., Tibesso, A., Dedo, A. (2025). Modification of Rope and Washer Pump to Engine Operated for Irrigation in South Western Oromia, Ethiopia. Industrial Engineering, 9(2), 42-47. https://doi.org/10.11648/j.ie.20250902.12
ACS Style
Adugna, R.; Tibesso, A.; Dedo, A. Modification of Rope and Washer Pump to Engine Operated for Irrigation in South Western Oromia, Ethiopia. Ind. Eng. 2025, 9(2), 42-47. doi: 10.11648/j.ie.20250902.12
AMA Style
Adugna R, Tibesso A, Dedo A. Modification of Rope and Washer Pump to Engine Operated for Irrigation in South Western Oromia, Ethiopia. Ind Eng. 2025;9(2):42-47. doi: 10.11648/j.ie.20250902.12
@article{10.11648/j.ie.20250902.12, author = {Roba Adugna and Adem Tibesso and Abu Dedo}, title = {Modification of Rope and Washer Pump to Engine Operated for Irrigation in South Western Oromia, Ethiopia }, journal = {Industrial Engineering}, volume = {9}, number = {2}, pages = {42-47}, doi = {10.11648/j.ie.20250902.12}, url = {https://doi.org/10.11648/j.ie.20250902.12}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ie.20250902.12}, abstract = {Suitable methods of water lifting and distribution are the most important aspects that determine the efficiency and success of an irrigation system. The rope and washer pump, a water-lifting device made with appropriate technology, has been effectively used in a number of developing nations all over the world. Engine operated rope pumps are one application of the “rope and washer” pumping principle, driven or powered by an electrical, petrol or small diesel motor. The aim of this study was to modify the rope and washer pump to engine operated for small-scale irrigation applications in southwestern Oromia, Ethiopia. The modification of the rope and washer water pump was undertaken with the intention of solving the suction head problem that rural people are facing during the dry season for crops and vegetable farming at the group or household level. Engine-operated rope and washer pump efficiency is mainly affected by engine horsepower for the used head and pipe diameter. The performance of the modified rope and washer pump was conducted using two different diameters of PVC pipe (2" and 4 “), as well as two discharge heads (6 m and 8 m). Using a 5 hp engine, the maximum head and pipe diameters achieved for this study were 8 m and 4 inches, respectively. The maximum efficiency of the pump was 2.532 l/sec and 12.178 l/sec using 2 and 4 inch pipe diameters, respectively, at an 8 m head. }, year = {2025} }
TY - JOUR T1 - Modification of Rope and Washer Pump to Engine Operated for Irrigation in South Western Oromia, Ethiopia AU - Roba Adugna AU - Adem Tibesso AU - Abu Dedo Y1 - 2025/09/23 PY - 2025 N1 - https://doi.org/10.11648/j.ie.20250902.12 DO - 10.11648/j.ie.20250902.12 T2 - Industrial Engineering JF - Industrial Engineering JO - Industrial Engineering SP - 42 EP - 47 PB - Science Publishing Group SN - 2640-1118 UR - https://doi.org/10.11648/j.ie.20250902.12 AB - Suitable methods of water lifting and distribution are the most important aspects that determine the efficiency and success of an irrigation system. The rope and washer pump, a water-lifting device made with appropriate technology, has been effectively used in a number of developing nations all over the world. Engine operated rope pumps are one application of the “rope and washer” pumping principle, driven or powered by an electrical, petrol or small diesel motor. The aim of this study was to modify the rope and washer pump to engine operated for small-scale irrigation applications in southwestern Oromia, Ethiopia. The modification of the rope and washer water pump was undertaken with the intention of solving the suction head problem that rural people are facing during the dry season for crops and vegetable farming at the group or household level. Engine-operated rope and washer pump efficiency is mainly affected by engine horsepower for the used head and pipe diameter. The performance of the modified rope and washer pump was conducted using two different diameters of PVC pipe (2" and 4 “), as well as two discharge heads (6 m and 8 m). Using a 5 hp engine, the maximum head and pipe diameters achieved for this study were 8 m and 4 inches, respectively. The maximum efficiency of the pump was 2.532 l/sec and 12.178 l/sec using 2 and 4 inch pipe diameters, respectively, at an 8 m head. VL - 9 IS - 2 ER -