Labels

Wednesday, 23 May 2012

A list of articles about amazing bubble world

Here, a list of articles published on this blog are given, sorted and updated for reader's convenience.

Fundamentals

Classifications of cavitation
Rectified diffusion
Bubbles in micro- or zero- gravity
Antibubbles
Sonochemistry
Sonoluminescence
Bubble collapse near boundaries
Bubble dynamics in da Vinci’s manuscript: Leonardo's paradox

Daily life

Supersonic phenomenon in the kitchen
Soap bubbles

Technologies
Cavitation-effect lithotripsy
The use of ultrasonic cavitation for kidney stone crush
Ultrasound contrast agent
Magnetic bubbles
Ultrasonic degassing in molten alloys
Cavitation in fluid machinery
Super-cavitation
Marine life
Dolphins and bubbles
Cavitation induced by snapping shrimp
Humpback whale's bubble net
Whales' stranding: the role of bubbles


Others

Write with bubbles
Bubbles in galleries and poems



Cavitation-effect lithotripsy

Chinese version

Extracorporeal shock wave lithotripsy (SWL) is a currently widely used non-invasive treatment of kidney-, gall- and bladder- stones, using thousands of focused shock waves generated outside body to smash stones into small fragments which can naturally pass through the urethra. The shock wave source with a water-filled coupling cushion contacts the body directly. This technique was initially developed in 1980 by Dornier Medizintechnik GmbH (now Dornier MedTech Systems GmbH), Germany and has been widely spread since the introduction of the first commercial lithotriptor Dornier HM3 in 1983. There are many mechanisms for the stone fragmentation during SWL, e.g. direct stress, cavitation and fatigue. In this article, only cavitation effect during lithotripsy is briefly introduced. The drawbacks of SWL are also discussed and some alternative techniques for stone crush are introduced.

Numerous studies have confirmed the cavitation effect during lithotripsy. Generally speaking, cavitation plays an important role for the generation of small stone fragments during lithotripsy. Micro-size gas bubbles can be generated due to the presence of the weak spots within biological systems or the passage of the previous strong shock waves. The bubble nucleus are compressed by the compressive part of the shock waves and then expand dramatically generating an intense spherical shock wave, which may significantly influence the behavior of surrounding bubbles and stones. Finally, the bubbles near the stone interface collapse, forming high-speed micro jet with strong erosion ability to fragment the stones.


From left to right: a typical shock wave profile for ESWL; kidney stone before and after ESWL. Adapted from Crum et al. (2008, Fig.1).


Details of bubble cluster collapse at the proximal face of a stone. From Pishchalnikov (2003, Fig.3)

It should be emphasized that if the deliver rate of the shock wave is too fast corresponding to high pulse repetition frequency, energy of shock waves could not be delivered to the stones because of the shielding effects of the bubble cloud, i.e. dissipations of energy through bubble oscillations, generated by previous shock waves.


Fragments of stones after ESWL with different pulse repetition frequency. Adapted from Crum et al. (2008, Fig.2c).

Drawbacks of shock wave lithotripsy are:
  1. SWL could cause many adverse effects e.g. haemorrhages, hypertension, thrombi. It may also lead to long-term damage of the kidney.
  2. The treatment may be uncomfortable and cause pain to the patient if the stone is positioned near a bone or rib because of a mild resonance caused by the shock waves.
  3. The further development of this technique is limited during the past several decades. Comparing with the first commercial lithotriptor Dornier HM3, the other lithotriptors do not show remarkable extra effectiveness.
  4. For large stones (e.g. >10mm), the fragments after SWL are still too large to pass urethra naturally.
  5. Although SWL is effective to treat kidney stones, it has not received general acceptance for treatment of other types of stones (e.g. gallstone, salivary stone).
Nowadays, the use of SWL is waning especially in Europe and USA and many other techniques have been developed e.g. pyeloscopy. As a minimally invasive technique, pyeloscopy inserts a flexible thin fibre-optic telescope (diameter less then 3mm) into the kidney from the bladder via the urethra. The whole kidney system can be visualized. The laser fibers can efficiently smash stones and micro-baskets retrieves the resulting stone fragments. This technique is applicable to the kidney stones up to 20mm in size.


The passage of pyeloscopy. Source

An emerging non-invasive technique using the cavitation generated by the carefully controlled focused ultrasonic waves is being developed (Link in this blog). The strong erosion ability of cavitation cloud during collapse can shatter the stones into much fine powder (approximately <1mm), which can be easily put out of human body.

References
Crum et al. (2008). Cavitation and Therapeutic Ultrasound, Proceedings of WIMRC Cavitation Forum 2008, University of Warwick, UK, pp.10-14.
Leighton, T.G. and Cleveland, R.O. (2009). Lithotripsy, Proc. IMechE Part H: J. Engineering in Medicine, vol. 224, 317-342.
Matsumoto, Y. (2006). Therapeutic application of acoustic cavitation, Proceedings of WIMRC Cavitation Forum 2006, University of Warwick, UK, Chap.3, pp.27-35.
Pishchalnikov (2003). Cavitation Bubble Cluster Activity in the Breakage of Kidney Stones by Lithotripter Shock Waves, J Endourol.September, 17(7): 435–446.

Sunday, 20 May 2012

Dolphins and bubbles

Chinese version

Playing with bubbles is an important part of dolphins' life. It is well known that dolphins enjoy riding waves (e.g. those generated by boats) and jumping between the two bow waves of a moving catamaran.


Bottlenose Dolphin surfs the wake of a research boat on the Banana River near the Kennedy Space Center.From Wikimedia Commons.

Dolphins can also create and manipulate bubbles and show a complex behavior during their play with bubbles. The bubbles generated by dolphins  mainly include: bubble stream, bubble burst, bubble cloud, single bubble trail, (sing or double) bubble ring (McCowan et al., 2000). Dolphins can play interactively with those bubble through biting bubbles, swimming through the bubble rings and manipulating the bubble ring using their rostrum (e.g. turning the ring in a vertical fashion). More sophisticated behaviors has been observed during dolphin's play with bubbles, e.g. generation of a second bubble ring which joins the first bubble ring to form a larger bubble ring; generation of the third bubble ring passing through the second ring to catch and join the first ring.


Bubble ring generated by a dolphin. Source


Bubble ring made by a dolphin in the aquarium. From YouTube.



Bubble stream generated by a dolphin. From YouTube.


A burst of bubbles from dolphin blow hole. Source.

Both wild and captive dolphins can blow bubble rings. Sometimes, the size of the bubble ring can be large enough for dolphin to swim through. More interestingly, blowing bubble rings takes practice i.e. those dolphins who can not blow bubble rings can learn it after watching others and taking experiments (Walke, 2008, p.30video). How smart dolphins are! It has been reported by BBC that two beached whales in New Zealand were rescued by a bottlenose dolphin. 


A dolphin passing through the bubble ring. Source.

Although dolphins are talented swimmers, it has been observed that the swim speed of dolphin is below 54 kilometers per hour near the surface. According to a recent study by Iosilevskii and Weihs (2008) (also reported by New Scientist), it is cavitation which limits the speed of the dolphin. Based on a series of calculations, they found that cavitation bubbles could be formed near the tail of dolphin due to the movement of the fins. When the generated bubbles collapse, they will cause damage to the dolphins. Cavitation happens when the speeds of dolphins reach 36 to 54 kilometers per hour near a few meters of the water surface. Different with bony tail of tuna without nerve endings, dolphin can feel the pain if they swim too fast. 

References
Iosilevskii, G. and Weihs, D. (2008). Speed limits on swimming of fishes and cetaceans, J. R. Soc. Interface, 5, 329-338. doi: 10.1098/rsif.2007.1073
McCowan et al. (2000). Bubble Ring Play of Bottlenose Dolphins (Tursiops  truncatus): Implications for Cognition, Journal of Comparative Psychology, 2000, Vol. l14, No.1, pp.98-106.pdf
Walke, S.M. (2008). Dolphins, Lerner Publishing Group.

Friday, 18 May 2012

2013 International conference on multiphase flow (May, 2013, Jeju Island, South Korea)


The 2013 ICMF will take place during the last week of May in Jeju Island in South Korea. Professor Moo Hwan Kim of the Pohang University of Science and Technology will be the conference chair.

The details of this conference will be updated on my blog.

ICMF 2010

Thursday, 17 May 2012

Cavitation induced by snapping shrimp

Snapping shrimp (Alpheus heterochaelis), also called pistol shrimp, is usually 3–5 cm in length but it has a remarkably  disproportionate large claw, which sometimes is even larger than half of the shrimp's main body. The claw has a pistol-like feature, containing two parts: a protruding plunger (marked as 'pl' in the following figure) and a matching socket (marked as 's' in the following figure). The claw can be rapidly closed, resulting in a high-speed liquid jet containing cavitation bubbles and very loud noise generated during the collapse of the above bubbles. The emitted powerful cavitation bubbles is capable of stunning or kill preys.


Snapping shrimp. YouTube



The structure of claw of snapping shrimp. Reproduced from Versluis,et al (2000).

The process of snapping captured by high-speed camera. Reproduced from Versluis,et al (2000).


The source levels of emitted noise is as high as 190 to 210 dB (peak to peak; referenced to 1 mPa at a distance of 1 m). This severe noise also limit the usage of active or passive sonar underwater. Therefore, snapping shrimp is one of the loudest animals in the sea.

The cavitation bubbles generated by snapping shrimp is so powerful that they can also emit intense flash of light during bubble collapse, termed as shrimpoluminescence. The temperatures inside bubbles during collapse is estimated to be at least 5,000 K.

References
Michel Versluis,et al (2000). How Snapping Shrimp Snap: Through Cavitating bubbles, Science, 289, 2114. DOI: 10.1126/science.289.5487.2114
Detlef Lohse, Barbara Schmitz, Michel Versluis (2001). Snapping shrimp make flashing bubbles, Nature, 413, 477-8.



Wednesday, 16 May 2012

13th Modern Mathmatics and Mechanics (Oct 6-8, 2012, Shanghai, China)

http://siamm.shu.edu.cn/Default.aspx?tabid=16919&ctl=Detail&mid=30783&Id=85714

Language: Chinese

100th anniversary of the birth of Wei-zang Chien (钱伟长) will be also celebrated during this conference.

This series conference is mainly organized by Shanghai Institute of Applied Mathematics and Mechanics Link.


Humpback whale's bubble net

The humpback whale (Megaptera novaeangliae) is a species of baleen whale. The adult ranges in length from 12–16 metres (39–52 ft) and weight approximately 36,000 kilograms (79,000 lb). 



humpback whale shot in water. From Wikimedia Commons.

One of the attractive feeding techniques of humpback whales is the bubble net. A group of whales swim in a shrinking circle and blow bubbles below a school of prey. The formed bubble net confines the school of fish within a limited volume. The diameter of the bubble net could be up to 30 metres (98 ft). 


Humpback whale's hunting technique. Video from YouTube.


Bubble ring created by humpback whale. Adapted from National Marine Mammal Laboratory.

Using a crittercam attached to a whale's back, the secret of the talented feeding method of humpback whale has been revealed by National Geography. Firstly, a group of whales dive deep under a school of fish and form a circle. Then they blow their breath out to form a bubble net. Finally, the whales suddenly swim upward through the bubble net with mouths open and swallow a large amount of fish in one gulp. During the process, each humpback has a specialized task, e.g. blowing the bubbles, going down and herding the prey towards the surface and screaming sound to force the prey into the confines of the bubble net. 

A recent study by Wiley et al. (2011) (also introduced in ScienceDaily) found more information about the bubble net. Three-dimensional images of whale swimming behavior and bubble release are recreated based on collected data (e.g. depth and orientation in 3-D) using digital suction cup tags attached to whales. They identified a new novel behavior called "double-loops", which consist of one upward spiral to corral the prey and a second upward lunge to capture the corralled prey. The study also reported that at least two individual humpback whales are necessary for bubble net feeding. Furthermore, the humpback whales do not rob the prey from other's bubble nets.


Bubble net formed by humpback whale. Courtesy of Brill.

Humpback whale is not the only talent on the use of bubbles. Dolphins can also make amazing vortex ring, a toroidal shape of a cloud of bubbles moving along the fluids.


Vortex ring by a dolphin. YouTube.



References and further readings

David Wiley, Colin Ware, Alessandro Bocconcelli, Danielle Cholewiak, Ari Friedlaender, Michael Thompson, Mason Weinrich. Underwater components of humpback whale bubble-net feeding behaviour. Behaviour, 2011; 148 (5): 575 DOI: 10.1163/000579511X570893
Mercado E III, Herman LM & Pack AA (2003). "Stereotypical sound patterns in humpback whale songs: Usage and function," Aquatic Mammals 29 (1): 37–52. doi:10.1578/016754203101024068. Retrieved 3 April 2007.