<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article  PUBLIC "-//NLM//DTD Journal Publishing DTD v3.0 20080202//EN" "http://dtd.nlm.nih.gov/publishing/3.0/journalpublishing3.dtd"><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" dtd-version="3.0" xml:lang="en" article-type="research article"><front><journal-meta><journal-id journal-id-type="publisher-id">IJAA</journal-id><journal-title-group><journal-title>International Journal of Astronomy and Astrophysics</journal-title></journal-title-group><issn pub-type="epub">2161-4717</issn><publisher><publisher-name>Scientific Research Publishing</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.4236/ijaa.2021.113018</article-id><article-id pub-id-type="publisher-id">IJAA-111870</article-id><article-categories><subj-group subj-group-type="heading"><subject>Articles</subject></subj-group><subj-group subj-group-type="Discipline-v2"><subject>Physics&amp;Mathematics</subject></subj-group></article-categories><title-group><article-title>
 
 
  Meridional Circulation with Latitude Bands of Long-Lived Cyclones in Jupiter’s Convective Atmosphere
 
</article-title></title-group><contrib-group><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Hans</surname><given-names>G. Mayr</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref><xref ref-type="corresp" rid="cor1"><sup>*</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Kwing</surname><given-names>L. Chan</given-names></name><xref ref-type="aff" rid="aff2"><sup>2</sup></xref></contrib></contrib-group><aff id="aff1"><addr-line>NASA Goddard Space Flight Center, Greenbelt, USA (Retired)</addr-line></aff><aff id="aff2"><addr-line>Macau University of Science and Technology, Macau, China</addr-line></aff><pub-date pub-type="epub"><day>22</day><month>07</month><year>2021</year></pub-date><volume>11</volume><issue>03</issue><fpage>392</fpage><lpage>405</lpage><history><date date-type="received"><day>3,</day>	<month>February</month>	<year>2021</year></date><date date-type="rev-recd"><day>10,</day>	<month>September</month>	<year>2021</year>	</date><date date-type="accepted"><day>13,</day>	<month>September</month>	<year>2021</year></date></history><permissions><copyright-statement>&#169; Copyright  2014 by authors and Scientific Research Publishing Inc. </copyright-statement><copyright-year>2014</copyright-year><license><license-p>This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/</license-p></license></permissions><abstract><p>
 
 
  Mayr 
  <em>et al.</em>
   [1] proposed that the vertical velocities in the global scale meridional circulation can produce distinct latitude bands where Jovian vortices like the white and brown are observed, and we present here a brief review of the mechanism. The observed life times of the ovals are much longer than the estimated spin-down times, which indicates that the vortices must be sustained through the release of internal energy. Like Jupiter’s Great Red Spot (GRS), the white/brown ovals are treated like terrestrial hurricanes or cyclones, which are generated by convection. The planetary energy Jupiter emits is transferred by convection, and under this condition the upward motions in the meridional circulation, around the equator for example, release energy from below and decrease the convective instability to suppress the formation of cyclones. But the downward motions in the circulation, near 20
  &amp;deg; latitude for example, carry energy down so that the convective instability is amplified to produce a dynamical environment that is favorable for the development of cyclones like the GRS and white/brown ovals. This picture is supported by an analysis of results from a numerical model of Jupiter’s alternating jets (Chan and Mayr 
  [2]). Generated by alternating vertical winds in the meridional circulation, the vertical temperature variations reveal distinct latitude bands with enhanced convective instability, most prominent at high latitudes where long-lived circumpolar cyclones are observed from the Juno spacecraft.
 
</p></abstract><kwd-group><kwd>Jovian Vortices Like Great Red Spot</kwd><kwd> Convection</kwd><kwd> Latitudinal Vortex Stratification</kwd><kwd> Meridional Flow</kwd><kwd> Numerical Model Results</kwd></kwd-group></article-meta></front><body><sec id="s1"><title>1. Introduction</title><p>A gaseous planet, Jupiter emits more than twice as much energy as it receives from the Sun. The planetary energy from the interior is carried by convection to the top of the atmosphere, where it is radiated away from the stable region around the clouds. Jupiter’s vortices like the Great Red Spot (GRS) and the alternating zonal jets are mainly observed in the cloud layer (e.g., Smith et al. [<xref ref-type="bibr" rid="scirp.111870-ref3">3</xref>] [<xref ref-type="bibr" rid="scirp.111870-ref4">4</xref>]; Mitchell et al. [<xref ref-type="bibr" rid="scirp.111870-ref5">5</xref>]; Simon-Miller et al. [<xref ref-type="bibr" rid="scirp.111870-ref6">6</xref>]; Porco et al. [<xref ref-type="bibr" rid="scirp.111870-ref7">7</xref>]; S&#225;nchez-Lavega et al. [<xref ref-type="bibr" rid="scirp.111870-ref8">8</xref>]; Galanti et al. [<xref ref-type="bibr" rid="scirp.111870-ref9">9</xref>]; Tabataba-Vakili et al. [<xref ref-type="bibr" rid="scirp.111870-ref10">10</xref>] ), and model simulations have been confined to that region (e.g., Marcus [<xref ref-type="bibr" rid="scirp.111870-ref11">11</xref>], Marcus et al. [<xref ref-type="bibr" rid="scirp.111870-ref12">12</xref>]; Marcus et al. [<xref ref-type="bibr" rid="scirp.111870-ref13">13</xref>]; Showman et al. [<xref ref-type="bibr" rid="scirp.111870-ref14">14</xref>]; Showman [<xref ref-type="bibr" rid="scirp.111870-ref15">15</xref>] ). On a different path, recent numerical models have been showing that convective energy transport below the clouds can generate the alternating jets (e.g., Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref16">16</xref>]; Ingersoll et al. [<xref ref-type="bibr" rid="scirp.111870-ref17">17</xref>]; Zhang and Schubert [<xref ref-type="bibr" rid="scirp.111870-ref18">18</xref>]; Christensen [<xref ref-type="bibr" rid="scirp.111870-ref19">19</xref>]; Aurnou and Olson [<xref ref-type="bibr" rid="scirp.111870-ref20">20</xref>]; Heimpel and Aurnou [<xref ref-type="bibr" rid="scirp.111870-ref21">21</xref>]; Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref2">2</xref>] ). And Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref22">22</xref>] produced Jovian type vortices purely by convection, without imposing artificial shears and flow fields in support of the mechanism Kuiper [<xref ref-type="bibr" rid="scirp.111870-ref23">23</xref>] had proposed, linking the GRS to the terrestrial hurricane.</p><p>Based on the theory developed by Charney and Eliassen [<xref ref-type="bibr" rid="scirp.111870-ref24">24</xref>] and Ooyama [<xref ref-type="bibr" rid="scirp.111870-ref25">25</xref>], the terrestrial hurricane is generated by the so-called Conditional Instability of Second Kind (CISK), which requires that the lower layer in the Earth’s tropical atmosphere is convective and conditionally unstable, i.e., unsaturated and wet-super adiabatic. When a vortex develops, convergence of the horizontal flow brings moisture into the center and forces ascension with release of latent energy, and this process in turn refuels the motions.</p><p>Considering that the observed horizontal dimension of the planetary vortex can reach as an upper limit the Rossby diameter of deformation (Holton [<xref ref-type="bibr" rid="scirp.111870-ref26">26</xref>] ), the depths, h, and spin-down times, τ, can be estimated (Holton [<xref ref-type="bibr" rid="scirp.111870-ref27">27</xref>] ) to produce h = 400 km and 200 km, and τ = 1.6 years and 4 months for the GRS and the white/brown ovals, respectively (Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref1">1</xref>] ). The long life time of the GRS, discovered centuries ago, indicates that it is rooted deep in the convective region of Jupiter’s atmosphere, and high-precision gravity measurements with the Juno mission are exploring the depth of the vortex down to more than 300 km (Gilanti et al. [<xref ref-type="bibr" rid="scirp.111870-ref9">9</xref>] ). The white and brown ovals also have live times exceeding the spin-down times, which suggests that they originate well below the clouds. These long-lived vortices are observed organized along latitude bands, and Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref1">1</xref>] propose that the downward motions in the global-scale meridional circulation can produce regions with amplified convective instability, varying with latitude, where the dynamical conditions are favorable for generating and sustaining the Jovian vortices.</p></sec><sec id="s2"><title>2. Vortex Generations</title><p>Jovian vortices and terrestrial hurricanes have in common that they produce the same flow pattern at the top of the atmosphere. This is seen for example in some of the earliest close-up observations of the Great Red Spot (GRS) and white ovals that were taken from Voyager I in March 1979 (Smith et al. [<xref ref-type="bibr" rid="scirp.111870-ref3">3</xref>] [<xref ref-type="bibr" rid="scirp.111870-ref4">4</xref>] ); and Skylab took pictures of hurricane Irah on September 24, 1973. The sense of rotation is anti-cyclonic, i.e., counter-clockwise for the GRS that is located in the southern hemisphere (20˚S), and clockwise for Irah that appeared in the northern hemisphere (18˚N, 107.8˚W). Under the influence of the Coriolis force, anti-cyclonic motions are sustained by enhanced pressure and related temperature variations inside the vortex.</p><p>In the case of the terrestrial hurricane or tropical cyclone, a low pressure system is formed near the ground to produce a cyclonic flow pattern. The spiraling winds are drawn into the center of the hurricane, and rising motions with convection fuel the high pressure system above, which generates the anti-cyclonic motions at higher altitudes.</p><p>For the GRS in contrast the picture is not that clear, because the measurements have been limited to the convectively stable atmospheric layer around the clouds. <xref ref-type="fig" rid="fig1">Figure 1</xref>(a) shows the vertical temperature variations inside and outside the GRS, which were derived from infrared measurements on Voyager I (Hanel et al. [<xref ref-type="bibr" rid="scirp.111870-ref28">28</xref>] ). Below the tropopause, the temperatures increase towards lower altitudes with gradients close to super adiabatic; convection becomes important. Within the limited altitude range of observations, there is no indication of enhanced temperatures inside the GRS. To produce the anti-cyclonic rotation of the vortex, the pressure must be built up by temperature variations further down in the convective region of the troposphere, illustrated in <xref ref-type="fig" rid="fig1">Figure 1</xref>(b). In analogy with the terrestrial hurricane mechanism, it is proposed that the upward</p><p>motions inside the GRS transfer energy up from below to increase the temperature, which in turn is building up the pressure. Due to expansion from below, the pressure continues to be enhanced at higher altitudes to maintain the anti-cyclonic vortex near the clouds. Infrared measurements from Voyager I (Hanel et al. [<xref ref-type="bibr" rid="scirp.111870-ref28">28</xref>] ) show traces of water in the troposphere of Jupiter. Condensation of water vapor with release of latent energy can contribute to generate the long-lived Jovian vortices.</p></sec><sec id="s3"><title>3. Latitudinal Vortex Stratification</title><p>The alternating zonal jets of Jupiter are in geostrophic balance, produced by latitudinal pressure and temperature variations. Evidence of that is seen for example in Voyager infrared measurements (e.g., Hanel et al., [<xref ref-type="bibr" rid="scirp.111870-ref28">28</xref>] [<xref ref-type="bibr" rid="scirp.111870-ref29">29</xref>] ) that show considerable structure in the temperature at the 0.8 bar pressure level. Plateaus are observed, which are formed by temperatures that decrease abruptly towards higher latitudes near 20˚ and 60˚. Moreover, there is some indication that the zonal-mean temperature at the 0.15 bar level has a minimum near 20˚ latitude.</p><p>The latitudinal temperature/pressure variations are generated by the internal convective energy source and in part by solar heating. The energy is mainly dissipated by the multi-cellular meridional circulation (Mayr and Harris [<xref ref-type="bibr" rid="scirp.111870-ref30">30</xref>]; Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref16">16</xref>] ) which is involved (Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref1">1</xref>] ) in the formation of the latitude bands where the long lived Jovian vortices are mainly observed.</p><p>For the purpose of this discussion, it is helpful to present in simplified form the energy equation for the zonal-mean variations of the circulation</p><p>α T + W c p ( ∂ T / ∂ z + Γ ) = Q (1)</p><p>where α is the effective cooling coefficient due to turbulent heat conduction and radiation, T temperature, W vertical velocity of meridional circulation, c<sub>p</sub> specific heat at constant pressure, z altitude, G adiabatic temperature lapse rate, and Q the energy source like solar heating. With stability S = (∂T/∂z + G), the atmosphere is convectively stable, S &gt; 0, or unstable, S &lt; 0.</p><p>With Jupiter’s internal energy source, the average global stability, S, is small. Thus relatively small changes in the temperature, ∆T, can significantly affect the latitudinal variations of the stability (S + ∆S).</p><p>In the convective troposphere (S &lt; 0), the prevailing upward motions in the meridional circulation (W &gt; 0), around the equator for example, supply from below energy to the ambient medium, which increases the temperature and stability (∆S &gt; 0), illustrated in <xref ref-type="fig" rid="fig2">Figure 2</xref>(a). Energy that otherwise may contribute to fuel a disturbance is transported to higher altitudes, and the consequence is that localized disturbances are suppressed. It is less likely that hurricane like vortices develop in the updraft regions of the large scale meridional circulation.</p><p>On the other hand, near 20˚ latitude for example, where downward motions occur in the meridional circulation, energy is removed from the surrounding ambient medium and is transported to lower altitudes. The temperature decreases, and the atmosphere becomes less stable or more convective (∆S &lt; 0),</p><p>illustrated in <xref ref-type="fig" rid="fig2">Figure 2</xref>(b). As a result, localized disturbances will be accelerated, and vortices can develop and be sustained. The Great Red Spot (GRS) and brown ovals are observed along latitude bands around −20˚ (Smith et al. [<xref ref-type="bibr" rid="scirp.111870-ref3">3</xref>] ), and the latitudinal stratifications observed in the white ovals can also be produced by the downward motions in the multi-cellular meridional circulation.</p><p>Latitudinal cross sections of the prevailing temperature and zonal wind fields are illustrated in <xref ref-type="fig" rid="fig3">Figure 3</xref>. Away from the equator, the temperature (pressure) decreases, which can produce (assuming geostrophy) the eastward equatorial jet. Around 25˚, the temperature variation reverses and can produce the westward jet. In between presumably, a temperature minimum lies, where the atmosphere is less stable, and hurricane like vortices can develop such as the GRS and white/brown ovals. The anticyclonic motions inside the Jovian hurricanes may be embedded in a zonal velocity field that is cyclonic, so that swirls and wake effects develop as illustrated in <xref ref-type="fig" rid="fig3">Figure 3</xref>.</p><p>The above discussion about the Jovian vortices in relation to the zonal circulation applies to the altitude regime where they are created. <xref ref-type="fig" rid="fig3">Figure 3</xref> does not portray the conditions at higher altitudes near the top of the visible clouds where the observations come from. The GRS was observed 70˚W and 100˚W in system</p><p>III during the Voyager I (1 February 1979) and Voyager II (23 May 1979) encounters, respectively. This produces a large 0.27/day retrograde drift of the GRS within a short period of time (<xref ref-type="fig" rid="fig1">Figure 1</xref> in Smith et al. [<xref ref-type="bibr" rid="scirp.111870-ref4">4</xref>] ), which is consistent with the 100 yr mean drift (1.05 &#215; 10<sup>4</sup> deg between 1850 and 1950). This drift direction is opposite to that of the observed zonal winds near the visible clouds and may indicate that the latitudinal structure in the prevailing circulation is changing significantly over the large depth of the GRS. Consistent with the pattern illustrated in <xref ref-type="fig" rid="fig3">Figure 3</xref>, the Voyager observations show that the white and brown ovals tend to move eastward in the direction of the zonal winds.</p><p>The Great Red Spot has been observed since its discovery by Casini in 1665, and this huge long-lived vortex is unique. Speculating about its creation, an enormous meteor might have plunged deep into the atmosphere of the southern tropical zone where the dynamical conditions are favorable for generating and sustaining Jovian hurricanes.</p></sec><sec id="s4"><title>4. Model Generated Latitude Bands of Instability</title><p>The above discussed mechanism for the formation of latitude bands with hurricane type vortices is supported by numerical results from a spectral model that generates Jupiter’s alternating zonal jets (Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref2">2</xref>] ). The model is formulated with associated vector spherical harmonics for the numerical solution of the time dependent 3D nonlinear Navier Stokes equations (Chan et al. [<xref ref-type="bibr" rid="scirp.111870-ref31">31</xref>] ). The spherical harmonics are truncated at 20 degrees (T20), and 68 radial grid levels cover the 430 km vertical depth of the atmosphere that is fully stratified and compressible. Stress-free and impenetrable boundary conditions are applied at the top and bottom of the 0.6% radial layer model domain. Jupiter’s internal energy flux is applied but the smaller Solar input is ignored. The planetary energy is carried by convection over 95% of the layer and is emitted by radiative diffusion from a stable layer at the top. A uniform kinematic viscosity is adopted to dissipate the kinetic energy generated by convection.</p><p>In <xref ref-type="fig" rid="fig4">Figure 4</xref> are shown the zonal-mean components of the zonal velocities (a) and relative temperature variations (b). Alternating winds are generated, and the velocities are within a factor of two of the observed values. In agreement with the Voyager observations (Smith et al. [<xref ref-type="bibr" rid="scirp.111870-ref6">6</xref>] ), the model reproduces the large velocity peak at the equator and steep retrograde winds at 20˚ latitudes. With Jupiter’s internal energy source applied, the zonal winds are varying in the radial direction -in contrast to the Taylor column models (e.g., Christensen [<xref ref-type="bibr" rid="scirp.111870-ref19">19</xref>]; Aurnou and Olson [<xref ref-type="bibr" rid="scirp.111870-ref20">20</xref>]; Heimpel and Aurnou [<xref ref-type="bibr" rid="scirp.111870-ref21">21</xref>] ) that are generated with unrealistic hyper-energetic energy source. In geostrophic balance, the temperature generated pressure variations with latitude produce the zonal wind velocities. The overall latitude pattern of the relative temperature variations is similar to that of the zonal winds, except for the region around the equator where the vanishing Coriolis force produces relatively small perturbations.</p><p>For the latitudinal variations of the meridional circulation the numerical results are presented in <xref ref-type="fig" rid="fig5">Figure 5</xref>. The vertical winds (a) highlight the multi-cellular pattern characteristic of Jupiter’s circulation. The meridional winds (b) show converging and diverging velocity patterns with opposite directions in the opposite hemispheres. In common with the zonal wind pattern in <xref ref-type="fig" rid="fig4">Figure 4</xref>, a single circulation cell dominates around the equator, and multi-cellular circulation bands cover the latitudinal variations. Controlled by flow continuity, the</p><p>meridional winds are much larger at higher altitudes in the atmosphere where the background densities are much smaller compared to the lower portion. In contrast to the large rotational zonal winds, the smaller meridional winds have divergence, involved in generating the temperature and pressure variations that produce the zonal winds.</p><p>In <xref ref-type="fig" rid="fig6">Figure 6</xref> are shown the computed temperature variations, ∆T, relative to the global average, T, taken from Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref2">2</xref>]. For the southern hemisphere, the temperatures are presented at different altitudes, identified with the underlying color code.</p><p>With the planetary energy source from the interior, the global-average atmosphere is convectively unstable,S = (∂T/∂z + G) &lt; 0 and the varying stability/instability across the globe, ∆S = (∂∆T/∂z + G), can be deduced from d∆T (black-top - red-bottom) that varies with the vertical temperature gradient, ∂∆T/∂z. Around the equator the model results show that the temperature increases with altitude, d∆T &gt; 0 (∂∆T/∂z &gt; 0, ∆S &gt; 0); at low latitudes, the atmosphere is more stable or less convective. The same pattern in the vertical temperature</p><p>0), opposite to the pattern of the equatorial region; the atmosphere is more unstable, more convective. A similar pattern, though much weaker, is also produced in the region around 20˚ latitude where the convective instability is amplified (∆S &lt; 0).</p><p>The vertical temperature gradients, ∂∆T/∂z, across the globe alternate direction to produce distinct latitude bands with enhanced convective instability, where long-lived cyclones can form like the GRS and white/brown ovals in the region around 20˚ latitude. The convective instability is largest and most prominent at high latitudes where circumpolar cyclones are observed from the Juno spacecraft (e.g. Tabataba-Vakili et al. [<xref ref-type="bibr" rid="scirp.111870-ref10">10</xref>] ).</p></sec><sec id="s5"><title>5. Conclusions</title><p>The present review was stimulated by a recent conference paper about a numerical simulation addressing the longevity of the Great Red Spot (Hassanzadeh and Marcus [<xref ref-type="bibr" rid="scirp.111870-ref33">33</xref>] ). In this model, the imposed vertical motions from the meridional circulation are quoted as the key for extending the life time of the Great Red Spot (GRS).</p><p>On a similar track, Mayr et al. [<xref ref-type="bibr" rid="scirp.111870-ref1">1</xref>] proposed that the vertical velocities in the global scale meridional circulation can produce the observed latitude bands where the long-lived Jovian vortices are mainly generated. Following Kuiper [<xref ref-type="bibr" rid="scirp.111870-ref23">23</xref>], the GRS and white/brown ovals are treated like terrestrial hurricanes. In this analysis, the depths and life-times of the vortices were estimated (Holton [<xref ref-type="bibr" rid="scirp.111870-ref26">26</xref>] [<xref ref-type="bibr" rid="scirp.111870-ref27">27</xref>] ) to produce spin-down times of 2 years for the GRS, and 3 months for the white/brown ovals. Discovered centuries ago, the relatively long life time of the GRS indicates that it must reside deep inside Jupiter’s convection region. And the same applies to the white and brown ovals, which have life-times far exceeding their spin-down times. Numerical experiments show that long-lived vortices can be spontaneously generated inside the fast rotating Jovian type convection zone (Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref22">22</xref>] ).</p><p>The question is what generates the latitude bands with enhanced convective instability where the white and brown ovals are observed and in broad terms, the answer can be provided by the mulita-cellular meridional circulation illustrated in <xref ref-type="fig" rid="fig3">Figure 3</xref>. As illustrated in <xref ref-type="fig" rid="fig2">Figure 2</xref>(a) more closely, the upward motions in the meridional circulation around the equator, for example, supply energy from below and increase the temperature and stability. In that environment, the convective instability is suppressed, so that the dynamical conditions are not favorable for generating hurricane like vortices. On the other hand near 20˚ latitude for example, illustrated in <xref ref-type="fig" rid="fig2">Figure 2</xref>(b), the downward motions in the meridional circulation transport the energy to lower altitudes to increase the convective instability. Under such conditions, the dynamical environment is favorable for generating and sustaining the GRS and the white/brown ovals.</p><p>The proposed mechanism for the formation of latitude bands with variable convective instability is supported by numerical results from a spectral model that simulates the global variations of the Jovian atmosphere (Chan and Mayr [<xref ref-type="bibr" rid="scirp.111870-ref2">2</xref>] ). Generated by the internal planetary energy source, the resulting variations of the temperature and zonal winds are shown in <xref ref-type="fig" rid="fig4">Figure 4</xref> for the convective model atmosphere. In geostrophic balance, the alternating zonal winds are generated by the latitudinal variations of pressure and related temperature. And the temperature variations in turn are dissipated and transformed by the global scale meridional circulation.</p><p>In <xref ref-type="fig" rid="fig6">Figure 6</xref> are shown the computed temperature perturbations relative to the global average, ∆T, presented on an expanded scale for the southern hemisphere to high-light the temperature differences with altitude, d∆T, the measure of convective instability. It shows that the temperature increases with altitude around the equator. The temperature difference between the top (black) and bottom (red) of the convective atmosphere is positive, d∆T &gt; 0; the atmosphere is more stable, less convective. And the same kind of temperature variation is produced at latitudes around 35˚. But at high latitudes, and to lesser extent around 20˚, the temperature perturbations decrease with altitude, d∆T &lt; 0; the atmosphere is less stable, more convective. Generated by the downward motions in the meridional circulation (<xref ref-type="fig" rid="fig5">Figure 5</xref>), latitude bands are generated with amplified convective instability, where the dynamical conditions are more favorable for generating Jovian type vortices.</p><p>On Earth, the hurricanes are spawned in the tropics after the summer season with elevated ocean temperatures when the upper troposphere is turning colder to increases the convective instability, analogous to the temperature decrease produced by the meridional circulation that stimulates the Jovian vortex.</p></sec><sec id="s6"><title>Acknowledgements</title><p>Funded by The Science and Technology Development Fund, Macau SAR (0045/2018/AFJ). This work was supported by the State Key Laboratory for Lunar and Planetary Sciences, Macau University of Science and Technology. The authors are grateful for the reviewer’s comments with the focus on Juno spacecraft observations.</p></sec><sec id="s7"><title>Conflicts of Interest</title><p>The authors declare no conflicts of interest regarding the publication of this paper.</p></sec><sec id="s8"><title>Cite this paper</title><p>Mayr, H.G. and Chan, K.L. (2021) Meridional Circulation with Latitude Bands of Long-Lived Cyclones in Jupiter’s Convective Atmosphere. International Journal of Astronomy and Astrophysics, 11, 392-405. https://doi.org/10.4236/ijaa.2021.113018</p></sec></body><back><ref-list><title>References</title><ref id="scirp.111870-ref1"><label>1</label><mixed-citation publication-type="other" xlink:type="simple">Mayr, H.G., Maeda, K. and Harris, I. (1985) Conjecture about a Hurricane System in the Jovian Atmosphere. 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