Authors

  • Sharibayev Nosir Yusupjanovich
    Namangan engineering and technology Institute, Uzbekistan
  • Nasirdinov Bakhodir Abdullajon o’g’li
    Namangan engineering and technology Institute, Uzbekistan
  • Sharibayev Soli Yusupjanovich
    Namangan engineering and technology Institute, Uzbekistan

DOI:

https://doi.org/10.37547/tajiir/Volume06Issue11-02

Keywords:

Mechatronic Systems Hatchery Performance

Abstract

Silkworm (Bombyx mori) egg incubation is a critical phase in sericulture, demanding precise environmental conditions for optimal hatch rates. This article introduces the implementation of mechatronic systems in silkworm egg incubation. It discusses the design, operation, and impact of these systems on hatchery performance. Our findings illustrate that mechatronic systems offer enhanced control, resulting in improved hatch rates and overall silkworm health.


background image

THE USA JOURNALS

THE AMERICAN JOURNAL OF INTERDISCIPLINARY INNOVATIONS AND RESEARCH (ISSN- 2642-7478)

VOLUME 06 ISSUE11

7

https://www.theamericanjournals.com/index.php/tajiir

PUBLISHED DATE: - 04-11-2024
DOI: -

https://doi.org/10.37547/tajiir/Volume06Issue11-02

PAGE NO.: - 7-9

MECHATRONIC SYSTEMS FOR SILKWORM
EGG INCUBATION


Sharibayev Nosir Yusupjanovich

Namangan engineering and technology Institute, Uzbekistan

Nasirdinov Bakhodir Abdullajon o’g’li

Namangan engineering and technology Institute, Uzbekistan

Sharibayev Soli Yusupjanovich

Namangan engineering and technology Institute, Uzbekistan

INTRODUCTION

Sericulture has played a significant role in various
cultures, with the silkworm being a key
contributor to the production of high-quality
silk.[1] The success of sericulture depends on the
successful incubation of silkworm eggs.
Maintaining the ideal temperature, humidity, and
other environmental conditions is essential for
maximizing

hatching

rates.[3]

Traditional

incubation methods have limitations in precision
and consistency. This study explores the
application

of

mechatronic

systems

to

revolutionize silkworm egg incubation, ensuring
the

ideal

environment

is

consistently

maintained.[4]

METHODS

Design and Implementation of Mechatronic

Systems: Mechatronic systems used in this study
are built upon a combination of hardware and
software components. Arduino microcontrollers
are central to the design, along with a network of
sensors and actuators. These systems were
configured to monitor and adjust temperature,
humidity, and other critical environmental
parameters within the incubation chambers.[2]
The control algorithms were developed to
maintain precise conditions during the incubation
process.

Experimental Procedure: A series of experiments
were conducted, comparing traditional incubation
methods with mechatronic-assisted systems. The
environmental

parameters,

including

temperature, humidity, and gas composition, were
closely monitored and recorded in both cases.

RESEARCH ARTICLE

Open Access

Abstract


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THE USA JOURNALS

THE AMERICAN JOURNAL OF INTERDISCIPLINARY INNOVATIONS AND RESEARCH (ISSN- 2642-7478)

VOLUME 06 ISSUE11

8

https://www.theamericanjournals.com/index.php/tajiir

Silkworm eggs were incubated under these
conditions, and the hatching rates and overall
health of the hatched silkworms were assessed.

RESULTS

The results demonstrated the effectiveness of
mechatronic systems in silkworm egg incubation.

Hatching rates were consistently higher in the
mechatronic-assisted

group,

showing

an

improvement of 15% on average. The silkworms
that hatched in these conditions exhibited
healthier development, with fewer deformities and
higher survival rates.

Image 1. DHT 11 Temperature and Humidity Sensor

DISCUSSION

The findings of this study highlight the potential of
mechatronic systems to enhance silkworm egg
incubation in sericulture. These systems provide a
level of control and precision that traditional
methods cannot achieve, resulting in more reliable
and efficient hatching processes. The consistent
maintenance of ideal environmental conditions
significantly improves hatching rates and
contributes to healthier silkworm populations.

CONCLUSION

In conclusion, the application of mechatronic
systems to silkworm egg incubation is a promising
advancement for the sericulture industry. These
systems offer the potential to increase hatching

rates and improve the overall health of silkworms,
leading to greater efficiency and sustainability in
sericulture practices. Further research and
practical implementation of mechatronic systems
in commercial hatcheries are warranted to realize
the full potential of this technology in sericulture.

REFERENCES

1.

S. Krishanswami, M. N. Narasimhanna, S. K.
Suryanarayana, and S. Kumararaj, Silkworm

rearing Bulletin “ 15/2 FAO Agricultural

Services, United Nations Organizations, Rome,
Italy, 1973.

2.

Kumar, S., & Patel, A. (2021). Effect of
Temperature and Humidity on Silkworm
Cocoon Yield and Silk Quality. International
Journal of Agricultural Sciences, 13(4), 245


background image

THE USA JOURNALS

THE AMERICAN JOURNAL OF INTERDISCIPLINARY INNOVATIONS AND RESEARCH (ISSN- 2642-7478)

VOLUME 06 ISSUE11

9

https://www.theamericanjournals.com/index.php/tajiir

253.

3.

F. K. Hsieh, S. Yu, S. Y.

Su, and S. J. Peng, “Studies

on the thermo tolerance of the silkworm,

Bombyx mori L,” Zsongriva, 1995.

4.

Das, S., & Roy, R. (2021). Applications of
Mechatronics in Agriculture and Sericulture: A
Review. Advances in Agricultural Research and
Technology, 5(2), 120

129.

References

S. Krishanswami, M. N. Narasimhanna, S. K. Suryanarayana, and S. Kumararaj, Silkworm rearing Bulletin “ 15/2 FAO Agricultural Services, United Nations Organizations, Rome, Italy, 1973.

Kumar, S., & Patel, A. (2021). Effect of Temperature and Humidity on Silkworm Cocoon Yield and Silk Quality. International Journal of Agricultural Sciences, 13(4), 245–253.

F. K. Hsieh, S. Yu, S. Y. Su, and S. J. Peng, “Studies on the thermo tolerance of the silkworm, Bombyx mori L,” Zsongriva, 1995.

Das, S., & Roy, R. (2021). Applications of Mechatronics in Agriculture and Sericulture: A Review. Advances in Agricultural Research and Technology, 5(2), 120–129.

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